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Clean water is fundamental to human health and ecosystem integrity. However, water quality deteriorates due to novel anthropogenic pollutants present at microgram per liter concentrations in urban water cycles (termed micropollutants). Wastewater treatment plants (WWTP) have been identified as major point sources for aquatic (micro-)pollutants. Chemical and ecotoxicological analyses have shown that conventional biological WWTPs do not fully remove micropollutants and associated toxicities, which is often because of mobile, polar and/or recalcitrant compounds and transformation products (TPs). To minimize possible environmental risks, advanced wastewater treatment (AWWT) technologies could be a promising mitigation measure. Multiple processes are therefore being developed and evaluated such as ozonation and ozonation followed by granulated activated carbon (GAC) or biological filtration. Assessing the performance of these combined AWWTs was the focus the TransRisk project. Within this project, this thesis accomplished four major goals.
Firstly, the preparation of (waste)water samples was optimised for in vitro bioassays. Acidification, filtration and solid phase extraction (SPE) were tested for their impact on environmentally relevant in vitro endocrine activities, mutagenicity, genotoxicity and cytotoxicity. Significantly different outcomes of these assays were detected comparing neutral and acidified samples. Sample filtration had a lesser impact, but in some cases retention of particle-bound compounds could have caused significant toxicity losses. Out of three SPE sorbents the Telos C18/ENV at sample pH 2.5 extracted highest toxicity, some undetected in aqueous samples. These results indicate that sample preparation needs to be optimised for specific sample matrices and bioassays to avoid false-positive or -negative detects in effect-based analyses.
Secondly, the above listed in vitro toxicities were monitored in a protected region for drinking water production in South-West Germany (2012-2015). Out of 30 sampling sites surface water and groundwater were the least polluted. Nonetheless, a few groundwater samples induced high anti-estrogenic activity that prompted further monitoring. The latter included a waterworks in which no toxicity was detected. Hospital wastewater also had elevated in vitro toxicities and hospitals are, thus, relevant intervention points for source control. The biological WWTPs were effective in removing most of the detected toxicity, and the selected bioassays proved to be pertinent tools for water quality assessment and prioritisation of pollution hotspots.
Thirdly, the in vivo bioassay ISO10872 based on Caenorhabditis elegans (C. elegans) was adapted for this thesis. Using this model, a median effect concentration (EC50) for reproductive toxicity of the polycyclic aromatic hydrocarbon β-naphthoflavone (β- NF) of 114 µg/L was computed which is slightly lower than reported in the scientific literature. β-NF induced cyp-35A3::GFP (a biomarker in transgenic animals) in a time and concentration dependent manner (≤ 21.3–24 fold above controls). β-NF spiked wastewater samples supported earlier hypotheses on particle-bound pollutants. Reproductive toxicity (96 h) and cyp-35A3 induction (24 h) of biologically treated and/or ozonated wastewater extracts and growth promoting effects of GAC/biologically filtered ozonated wastewater extracts were observed. This suggested the presence of residual bioactive/toxic chemicals not included in the targeted chemical analysis. It also highlighted the importance of integrating multiple (apical and molecular) endpoints in wastewater assessments.
Fourthly, five in vitro and the adapted C. elegans bioassay were integrated into a wastewater quality evaluation (developed within TransRisk). Out of the five AWWT options, ozonation (at 1 g O3,applied/g DOC, HRT ~ 18 min) combined with nonaerated GAC filtration was rated most effective for toxicity removal. All five AWWTs largely removed estrogenic and (anti-)androgenic activities, but not anti-estrogenic activity and mutagenicity, which even increased during ozonation. This has been observed in related studies and points towards toxic TPs. These results also emphasized the need for implementing an effective post-treatment for ozonation. The results from a parallel in vivo study with Lumbriculus variegatus and Potamopyrgus antipodarum conducted on site at the WWTP (using flow through systems) were in accordance with the C. elegans results. In this context, it is suggested to further implement C. elegans as sensitive, feasible and ecologically relevant model.
In conclusion, this thesis shows how optimised sample preparation, long-term (in vitro) environmental monitoring, sensitive and ecologically relevant (in vivo) bioassays as well as innovative evaluation concepts, are pivotal in improving the removal of micropollutants and their toxicities with AWWTs. Future research should further develop and evaluate measures at sewer systems, conventional biological, tertiary and other advanced treatment technologies, as well as sociopolitical strategies (e.g., source control or natural conservation) and restoration projects. The effect-based tools optimised in this thesis will support assessing their success.
Bacterial biosynthetic assembly lines, such as non-ribosomal peptide synthetases (NRPS) and polyketide synthases, are often subject of synthetic biology – because they produce a variety of natural products invaluable for modern pharmacotherapy. Acquiring the ability to engineer these biosynthetic assembly lines allows the production of artificial non-ribosomal peptides (NRP), polyketides, and hybrids thereof with new or improved properties. However, traditional bioengineering approaches have suffered for decades from their very limited applicability and, unlike combinatorial chemistry, are stigmatized as inefficient because they cannot be linked to the high-throughput screening platforms of the pharmaceutical industry. Although combinatorial chemistry can generate new molecules cheaper, faster, and in greater numbers than traditional natural product discovery and bioengineering approaches, it does not meet current medical needs because it covers only a limited biologically relevant chemical space. Hence, methods for high-throughput generation of new natural product-like compound libraries could provide a new avenue towards the identification of new lead compounds. To this end, prior to this work, we introduced an artificial synthetic NRPS type, referred to as type S NRPS, to provide a first-of-its-kind bicombinatorial approach to parallelized high-throughput NRP library generation. However, a bottleneck of these first two generations of type S NRPS was a significant drop in production yields. To address this issue, we applied an iterative optimization process that enabled titer increases of up to 55-fold compared to the non-optimized equivalents, restoring them to wild-type levels and beyond.
Rationale: The AMP-activated protein kinase (AMPK) is stimulated by hypoxia, and although the AMPKα1 catalytic subunit has been implicated in angiogenesis, little is known about the role played by the AMPKα2 subunit in vascular repair.
Objective: To determine the role of the AMPKα2 subunit in vascular repair.
Methods and Results: Recovery of blood flow after femoral artery ligation was impaired (>80%) in AMPKα2-/- versus wild-type mice, a phenotype reproduced in mice lacking AMPKα2 in myeloid cells (AMPKα2ΔMC). Three days after ligation, neutrophil infiltration into ischemic limbs of AMPKα2ΔMC mice was lower than that in wild-type mice despite being higher after 24 hours. Neutrophil survival in ischemic tissue is required to attract monocytes that contribute to the angiogenic response. Indeed, apoptosis was increased in hypoxic neutrophils from AMPKα2ΔMC mice, fewer monocytes were recruited, and gene array analysis revealed attenuated expression of proangiogenic proteins in ischemic AMPKα2ΔMC hindlimbs. Many angiogenic growth factors are regulated by hypoxia-inducible factor, and hypoxia-inducible factor-1α induction was attenuated in AMPKα2-deficient cells and accompanied by its enhanced hydroxylation. Also, fewer proteins were regulated by hypoxia in neutrophils from AMPKα2ΔMC mice. Mechanistically, isocitrate dehydrogenase expression and the production of α-ketoglutarate, which negatively regulate hypoxia-inducible factor-1α stability, were attenuated in neutrophils from wild-type mice but remained elevated in cells from AMPKα2ΔMC mice.
Conclusions: AMPKα2 regulates α-ketoglutarate generation, hypoxia-inducible factor-1α stability, and neutrophil survival, which in turn determine further myeloid cell recruitment and repair potential. The activation of AMPKα2 in neutrophils is a decisive event in the initiation of vascular repair after ischemia.
Neuronale Repräsentation intrinsischer cochleärer Signale im Colliculus inferior der Wüstenrennmaus
(2008)
Die vorliegende Arbeit untersucht die neuronale Repräsentation von cochleären Verzerrungsprodukten im auditorischen Mittelhirn der Wüstenrennmaus. Die hohe Sensitivität und die gute Frequenzauflösung des Hörorgans der Säugetiere basiert auf einer aktiven mechanischen Verstärkung der schallinduzierten Basilarmembranschwingung im Innenohr. Die äußeren Haarsinneszellen, die während des Transduktionsprozesses zyklisch ihre Länge ändern und dabei zusätzliche Schwingungsenergie in das System zurückführen, sind der zugrunde liegende Motor des aktiven cochleären Verstärkers. Die stark nichtlinearen Eigenschaften dieses Verstärkers führen allerdings bei gleichzeitiger Verstärkung mehrerer Frequenzkomponenten zur Generierung von Kombinationsschwingungen, welche im Ursprungssignal nicht vorhanden sind. Wird das Ohr beispielsweise durch zwei Töne mit den Frequenzen f1 und f2 stimuliert (f1<f2), so entstehen verschiedene Kombinationsschwingungen, deren prominenteste das quadratische (f2-f1) und das cubische (2 f1-f2) Verzerrungsprodukt sind. Diese Verzerrungen des Ursprungssignals breiten sich von ihrem Entstehungsort im Innenohr, dem Überlappungsbereich der Stimuluswanderwellen, im Flüssigkeitsraum der Cochlea aus und werden über das Mittelohr in den Gehörgang übertragen. Im Gehörgang sind sie mit Hilfe eines sensitiven Mikrophons als otoakustische Emissionen (DPOAE - distortion product otoacoustic emissions) messbar. Zusätzlich bilden sie an ihrem Resonanzort auf der Basilarmembran, vergleichbar mit einem externen Stimuluston gleicher Frequenz, eine eigene Wanderwelle aus und aktivieren den Transduktionsprozess. Die neuronalen Korrelate der cochleären Verzerrungsprodukte sind auf verschiedenen Stationen der Hörbahn messbar und cochleäre Verzerrungsprodukte können als separate Töne wahrgenommen werden. In der vorliegenden Arbeit wurden die neuronalen Korrelate und otoakustischen Emissionen von cochleären Verzerrungsprodukten erstmals simultan bestimmt. Durch den direkten Vergleich der neuronalen Aktivität mit der peripheren Emissionsmessung sollen eventuelle zentralnervöse Veränderungen der Repräsentation der cochleären Verzerrungsprodukte untersucht werden. Dazu wurde die elektrische Aktivität von 91 Neuronen des Colliculus inferior der Wüstenrennmaus während der Stimulation durch zwei hochfrequente Stimulustöne gemessen. Die Frequenzen der Stimulustöne waren so gewählt, dass die Frequenz eines, durch sie evozierten Verzerrungsproduktes, mit der charakteristischen Frequenz des jeweiligen Neurons übereinstimmte. In 95 % aller Messungen konnte eine robuste neuronale Aktivität während Zweitonstimulation gemessen werden, die sich auf die Stimulation durch ein spezifisches cochleäres Verzerrungsprodukt zurückführen lässt. Bei einem Teil der Versuche wurden die Verzerrungsprodukte durch direkte intracochleäre Auslöschung mit einem dritten Tonstimulus eindeutig als Quelle der neuronalen Aktivität bestätigt. Für Verzerrungsproduktfrequenzen oberhalb 1,3 kHz lassen sich die Antworten der Neurone im schwellennahen Bereich gut mit den simultan im Gehörgang bestimmten DPOAE-Pegeln erklären, was einen engen Zusammenhang zwischen intracochleärem Verzerrungsproduktpegel und DPOAE-Pegel nahe legt. Bei höheren Stimuluspegeln konnten die maximalen neuronalen Antworten auf den intracochleären Verzerrungsproduktstimulus signifikant von der Einzeltonantwort abweichen, wobei sowohl eine Erhöhung als auch eine Reduktion der Maximalantwort möglich war. Ein inhibitorischer bzw. verstärkender Einfluss der Stimulustöne auf die neuronale Verzerrungsproduktantwort wird als mögliche Ursache der Unterschiede diskutiert. Für Verzerrungsproduktfrequenzen unterhalb 1,3 kHz wurde ein deutlicher Unterschied zwischen dem intracochleären Verzerrungsproduktpegel und dem im Gehörgang gemessenen Emissionspegel deutlich. Ein Teil der getesteten tieffrequenten Neurone antwortete während Zweitonstimulation bereits für Stimuluspegel, die unterhalb der Reintonschwelle des Neurons lagen. Eine frequenzspezifische Verschlechterung der Mittelohrübertragungsleistung bei tiefen Frequenzen wird als mögliche Ursache für die unterschwelligen Antworten der Neurone diskutiert. Die Ergebnisse der vorliegenden Arbeit zeigen, dass cochleäre Verzerrungsprodukte einen substanziellen Anteil an der neuronalen Repräsentation von komplexen Stimuli haben können. Im Besonderen machen die vorgestellten Daten deutlich, dass die neuronalen Repräsentation der Grundfrequenz eines komplexen Klangs wesentlich von cochleären Verzerrungsprodukten beeinflusst sein kann. Dies bedeutet, dass bereits im Innenohr Tonhöheninformation extrahiert werden kann und damit die Relevanz in der Literatur diskutierter neuronaler Mechanismen zur Berechnung von Tonhöhe relativiert wird.
In the published article, there was an error regarding the affiliation for Diana Abondano Almeida. As well as having affiliation 2, they should also have Department of Wildlife-/Zoo-Animal-Biology and Systematics, Faculty of Biological Sciences, Goethe Universität, Frankfurt, Germany.
The authors apologize for this error and state that this does not change the scientific conclusions of the article in any way. The original article has been updated.
The epitranscriptome embodies many new and largely unexplored functions of RNA. A major roadblock in the epitranscriptomics field is the lack of transcriptome-wide methods to detect more than a single RNA modification type at a time, identify RNA modifications in individual molecules, and estimate modification stoichiometry accurately. We address these issues with CHEUI (CH3 (methylation) Estimation Using Ionic current), a new method that concurrently detects N6-methyladenosine (m6A) and 5-methylcytidine (m5C) in individual RNA molecules from the same sample, as well as differential methylation between any two conditions. CHEUI processes observed and expected nanopore direct RNA sequencing signals with convolutional neural networks to achieve high single-molecule accuracy and outperforms other methods in detecting m6A and m5C sites and quantifying their stoichiometry. CHEUI’s unique capability to identify two modification types in the same sample reveals a non-random co-occurrence of m6A and m5C in mRNA transcripts in cell lines and tissues. CHEUI unlocks an unprecedented potential to study RNA modification configurations and discover new epitranscriptome functions.
The epitranscriptome embodies many new and largely unexplored functions of RNA. A major roadblock in the epitranscriptomics field is the lack of transcriptome-wide methods to detect more than a single RNA modification type at a time, identify RNA modifications in individual molecules, and estimate modification stoichiometry accurately. We address these issues with CHEUI (CH3 (methylation) Estimation Using Ionic current), a new method that concurrently detects N6-methyladenosine (m6A) and 5-methylcytidine (m5C) in individual RNA molecules from the same sample, as well as differential methylation between any two conditions, using signals from nanopore direct RNA sequencing. CHEUI processes observed and expected signals with convolutional neural networks to achieve high single-molecule accuracy and outperform other methods in detecting m6A and m5C sites and quantifying their stoichiometry. CHEUI’s unique capability to identify two modification types in the same sample reveals a non-random co-occurrence of m6A and m5C in mRNA transcripts in cell lines and tissues. CHEUI unlocks an unprecedented potential to study RNA modification configurations and discover new epitranscriptome functions.
The epitranscriptome embodies many new and largely unexplored functions of RNA. A major roadblock in the epitranscriptomics field is the lack of transcriptome-wide methods to detect more than a single RNA modification type at a time, identify RNA modifications in individual molecules, and estimate modification stoichiometry accurately. We address these issues with CHEUI (CH3 (methylation) Estimation Using Ionic current), a new method that concurrently detects N6-methyladenosine (m6A) and 5-methylcytidine (m5C) in individual RNA molecules from the same sample, as well as differential methylation between any two conditions. CHEUI processes observed and expected nanopore direct RNA sequencing signals with convolutional neural networks to achieve high single-molecule accuracy and outperforms other methods in detecting m6A and m5C sites and quantifying their stoichiometry. CHEUI’s unique capability to identify two modification types in the same sample reveals a non-random co-occurrence of m6A and m5C in mRNA transcripts in cell lines and tissues. CHEUI unlocks an unprecedented potential to study RNA modification configurations and discover new epitranscriptome functions.
The epitranscriptome embodies many new and largely unexplored functions of RNA. A major roadblock in the epitranscriptomics field is the lack of transcriptome-wide methods to detect more than a single RNA modification type at a time, identify RNA modifications in individual molecules, and estimate modification stoichiometry accurately. We address these issues with CHEUI (CH3 (methylation) Estimation Using Ionic current), a new method that concurrently detects N6-methyladenosine (m6A) and 5-methylcytidine (m5C) in individual RNA molecules from the same sample, as well as differential methylation between any two conditions. CHEUI processes observed and expected nanopore direct RNA sequencing signals with convolutional neural networks to achieve high single-molecule accuracy and outperforms other methods in detecting m6A and m5C sites and quantifying their stoichiometry. CHEUI’s unique capability to identify two modification types in the same sample reveals a non-random co-occurrence of m6A and m5C in mRNA transcripts in cell lines and tissues. CHEUI unlocks an unprecedented potential to study RNA modification configurations and discover new epitranscriptome functions.
The epitranscriptome embodies many new and largely unexplored functions of RNA. A major roadblock in the epitranscriptomics field is the lack of transcriptome-wide methods to detect more than a single RNA modification type at a time, identify RNA modifications in individual molecules, and estimate modification stoichiometry accurately. We address these issues with CHEUI (CH3 (methylation) Estimation Using Ionic current), a new method that concurrently detects N6-methyladenosine (m6A) and 5-methylcytidine (m5C) in individual RNA molecules from the same sample, as well as differential methylation between any two conditions. CHEUI processes observed and expected nanopore direct RNA sequencing signals with convolutional neural networks to achieve high single-molecule accuracy and outperforms other methods in detecting m6A and m5C sites and quantifying their stoichiometry. CHEUI’s unique capability to identify two modification types in the same sample reveals a non-random co-occurrence of m6A and m5C in mRNA transcripts in cell lines and tissues. CHEUI unlocks an unprecedented potential to study RNA modification configurations and discover new epitranscriptome functions.
The epitranscriptome embodies many new and largely unexplored functions of RNA. A major roadblock in the epitranscriptomics field is the lack of transcriptome-wide methods to detect more than a single RNA modification type at a time, identify RNA modifications in individual molecules, and estimate modification stoichiometry accurately. We address these issues with CHEUI (CH3 (methylation) Estimation Using Ionic current), a new method that concurrently detects N6-methyladenosine (m6A) and 5-methylcytidine (m5C) in individual RNA molecules from the same sample, as well as differential methylation between any two conditions. CHEUI processes observed and expected nanopore direct RNA sequencing signals with convolutional neural networks to achieve high single-molecule accuracy and outperforms other methods in detecting m6A and m5C sites and quantifying their stoichiometry. CHEUI’s unique capability to identify two modification types in the same sample reveals a non-random co-occurrence of m6A and m5C in mRNA transcripts in cell lines and tissues. CHEUI unlocks an unprecedented potential to study RNA modification configurations and discover new epitranscriptome functions.
The epitranscriptome embodies many new and largely unexplored functions of RNA. A significant roadblock hindering progress in epitranscriptomics is the identification of more than one modification in individual transcript molecules. We address this with CHEUI (CH3 (methylation) Estimation Using Ionic current). CHEUI predicts N6-methyladenosine (m6A) and 5-methylcytidine (m5C) in individual molecules from the same sample, the stoichiometry at transcript reference sites, and differential methylation between any two conditions. CHEUI processes observed and expected nanopore direct RNA sequencing signals to achieve high single-molecule, transcript-site, and stoichiometry accuracies in multiple tests using synthetic RNA standards and cell line data. CHEUI’s capability to identify two modification types in the same sample reveals a co-occurrence of m6A and m5C in individual mRNAs in cell line and tissue transcriptomes. CHEUI provides new avenues to discover and study the function of the epitranscriptome.
Rhythmic changes in environmental lighting conditions have ever been the most reliable environmental cue for life on earth. Nature has therefore selected a genetically encrypted endogenous clock very early in evolution, as it provided cells and subsequently organisms with the ability to anticipate persevering periods of light and darkness. Rhythm generation within the mammalian circadian system is achieved by clock genes and their protein products. The mammalian endogenous master clock, which synchronizes the body to environmental time, is located in the suprachiasmatic nucleus (SCN) of the hypothalamus. As an integral part of the time-coding system, the pineal gland serves the need to tune the body to the temporal environment by the rhythmic nocturnal synthesis and immediate release of the hormone melatonin. In contrast to the transcriptional regulation of melatonin synthesis in rodents, a post-translational shaping is indicated in the human pineal gland. Another important mediator of circadian time and seasonality to the body is the pituitary gland. The aim of this work was to elucidate regulation of melatonin synthesis in the human pineal gland. Furthermore, presence and regulation of clock genes in the human pineal and pituitary gland, and in the SCN were analyzed. Therefore, human tissue, taken from regular autopsies, was analyzed simultaneously for different parameters involved in melatonin biosynthesis and circadian rhythm generation. Presented data demonstrate that post-mortem brain tissue can be used to detect the remnant profile of pre-mortem adaptive changes in neuronal activity. In particular, our results give strong experimental support for the idea that transcriptional mechanisms are not dominant for the generation of rhythmic melatonin synthesis in the human pineal gland. Together with data obtained for clock genes and their protein products in the pituitary, data presented here offer 1) a new working hypothesis for post-translational regulation of melatonin biosynthesis in the human pineal gland, and 2) a novel twist in the molecular competence of clock gene proteins, achieved by nucleo-cytoplasmic shuttling in neuronal and neuroendocrine human tissue. Furthermore, in this study, oscillations in abundance of clock gene proteins were demonstrated for the first time in the human SCN.
Seed dispersal is a key ecosystem function for plant regeneration, as it involves the movement of seeds away from the parental plants to particular habitats where they can germinate and transition to seedlings and ultimately adult plants. Seed dispersal is shaped by a diversity of abiotic and biotic factors, particularly by associations between plants and climate and between plants and other species. Due to the ongoing loss of biodiversity and changing global conditions, such interactions are prone to change and pose a severe threat to plant regeneration. One way to address this challenge is to study associations between plant traits and abiotic and biotic factors to understand the potential impacts of global change on plant regeneration. Plant communities have long been analyzed through the lens of vegetative traits, mainly ignoring how other traits interact and respond to the environment. For instance, while associations between vegetative traits (e.g., specific leaf area, leaf nitrogen content) and climate are well studied, there are few case studies of reproductive traits in relation to trait-environment associations in the context of global change.
Thus, the overarching aim of this dissertation is to explore how trait-environment associations, with a special focus on reproductive traits, can improve our understanding of the effect that global change may have on seed dispersal, and ultimately on plant regeneration. To this end, my research focuses on studying associations between plant traits and abiotic and biotic factors along an elevational gradient in both forests and deforested areas of tropical mountains. This dissertation addresses three principal research objectives.
First, I investigate the extent to which reproductive (seed and fruit traits) and vegetative traits (leaf traits) are related to abiotic and biotic factors for communities of fleshy-fruited plants in the Ecuadorian Andes. I used multivariate analyses to test associations between four (a)biotic factors and seven reproductive traits and five vegetative traits measured on 18 and 33 fleshy fruited plant species respectively. My analyses demonstrate that climate and soil conditions are strongly associated with the distribution of both reproductive and vegetative traits in tropical tree communities. The production of “costly” vs. “cheap” seeds, fruits and leaves, i.e., the production of few rewarding fruits and acquisitive leaves versus the production of many less-rewarding fruits and conservative leaves, is primarily limited by temperature, whereas the size of plant organs is more related to variation in precipitation and soil conditions. My findings suggest that associations between reproductive and vegetative traits and the abiotic environment follow similar principles in tropical tree communities.
Second, I assess how climate and microhabitat conditions affect the prevalence of endozoochorous plant species in the seed rain of tropical montane forests in southern Ecuador. I analyzed seed rain data for an entire year from 162 traps located across an elevational gradient spanning of 2000 m. I documented the microhabitat conditions (leaf area index and soil moisture next to each seed trap) at small spatial scale as well as the climatic conditions (mean annual temperature and rainfall in each plot) at large spatial scale. After a one-year of sampling, I counted 331,838 seeds of 323 species/morphospecies. My analyses demonstrate that the prevalence of endozoochorous plant species in the seed rain increases with temperature across elevations and with leaf area index within elevations. These results show that the prevalence of endozoochory is shaped by the interplay of both abiotic and biotic factors at large and small spatial scales.
Third, I examine the potential of seed rain to restore deforested tropical areas along an elevational gradient in southern Ecuador. For this chapter, I collected seed rain using 324 seed traps installed in 18 1-ha plots in forests (nine forest plots) and in pastures (nine deforested plots) along an elevational gradient of 2000 m. After a sampling period of three months, I collected a total of 123,039 seeds of 255 species/morphospecies from both forests and pastures along the elevational gradient. I did not find a consistent decrease in the amount and richness of seed rain between forests and pastures, but I detected a systematic change in the type of dispersed seeds, as heavier seeds and a higher proportion of endozoochorous species were found in forests compared to pastures at all elevations. This finding suggests that deforestation acts as a strong filter selecting seed traits that are vital for plant regeneration.
Understanding the role that trait-environment associations play in how plant communities regenerate today could serve as a basis for predicting changes in regeneration processes of plant communities under changing global conditions in the near future. Here, I show how informative the measurement of reproductive traits and trait environment associations are in facilitating the conservation of forest habitats and the restoration of deforested areas in the context of global change.
Symbiotic nitrogen fixation (SNF) in root nodules of grain legumes such as chickpea is a highly complex process that drastically affects the gene expression patterns of both the prokaryotic as well as eukaryotic interacting cells. A successfully established symbiotic relationship requires mutual signaling mechanisms and a continuous adaptation of the metabolism of the involved cells to varying environmental conditions. Although some of these processes are well understood today many of the molecular mechanisms underlying SNF, especially in chickpea, remain unclear. Here, we reannotated our previously published transcriptome data generated by deepSuperSAGE (Serial Analysis of Gene Expression) to the recently published draft genome of chickpea to assess the root- and nodule-specific transcriptomes of the eukaryotic host cells. The identified gene expression patterns comprise up to 71 significantly differentially expressed genes and the expression of twenty of these was validated by quantitative real-time PCR with the tissues from five independent biological replicates. Many of the differentially expressed transcripts were found to encode proteins implicated in sugar metabolism, antioxidant defense as well as biotic and abiotic stress responses of the host cells, and some of them were already known to contribute to SNF in other legumes. The differentially expressed genes identified in this study represent candidates that can be used for further characterization of the complex molecular mechanisms underlying SNF in chickpea.
Im Rahmen der vorliegenden Dissertation wurde die Rolle des Transkriptionsfaktors Meis2 als Ko-Faktor in der Entwicklung des anterioren Neuralrohrs untersucht. Hierbei gaben funktionelle Untersuchungen durch Fehl- und Überexpressionsstudien mittels in ovo Mikroelektroporation im Hühnchenembryo, Aufschluss über eine besondere Rolle von Meis2 bei der Spezifizierung und Entwicklung des Tectum opticums. Überdies führten bio-chemische Untersuchungen zur Identifizierung neuer, bislang noch nicht beschriebener Interaktionspartner von Meis2 im sich entwickelnden optischen Tektum und in den Anlagen der Augen. Diese Untersuchungen geben einen weiteren Einblick in die Funktionsweise von Meis2 als Ko-Transkriptionsfaktor. Zusammengefasst lieferten die Untersuchungen der vorliegenden Arbeit folgende Erkenntnisse: I) Im Mittelhirn ist Meis2-Expression unter den bislang beschriebenen Regulatoren der Mittelhirnentwicklung einzigartig: es ist von Beginn an nicht dynamisch und kennzeichnet ausschließlich die dorsalen Alarplatten des Mittelhirns, den Bereich des zukünftigen optischen Tektums (Kapitel 3.1). Diese Expression unterliegt einer strikten negativen Regulation durch sezernierte Moleküle und Transkriptionsfaktoren der benachbarten Regionen des Neuralrohrs (Kapitel 3.2). II) Meis2 ist für tektale Entwicklung erforderlich: Die Überexpression des dominant negativ wirkenden Konstruktes Meis2EnR störte die Entwicklung tektumspezifischer Strukturen sowohl in der frühen als auch in der späteren Entwicklung (Kapitel 3.3.1 und 3.3.2). Zudem kam es zur Unterdrückung der tektalen Gene ephrinB1 und Dbx1 (Kapitel 3.3.3 und 3.3.4). III) Meis2 ist für tektale Entwicklung ausreichend: Die Fehlexpression von Meis2 führte zur Induktion und Entwicklung ektopischer tektaler Strukturen im Dienzephalon (Kapitel 3.3.5). Dabei führte Meis2 bereits 24 h nach Fehlexpression zur Transdifferenzierung des dienzephalischen in mesenzephalisches Zellschicksal, veränderte jedoch nicht das Schick-sal des metenzephalischen Gewebes (Kapitel 3.3.7). IV) Bei der Induktion tektaler Strukturen ist Meis2 nicht Bestandteil des regulatorischen Netzwerks des Mittel-Hinterhirn Organisators (MHO), eines sekundären Organisators, welcher die Entwicklung der Mittel-Hinterhirn Region steuert (Kapitel 3.3.8). V) Meis2 bildet jedoch im Mittelhirn in vivo Komplexe mit Otx2, einem Schlüsselmolekül zur Spezifizierung des anterioren Neuralrohrs (Kapitel 3.4.1 - 3.4.3). VI) Meis2 kann in vitro durch Bindung an Otx2 einer Grg4/Tle4-vermittelten Unter-drückung der transkriptionellen Aktivität von Otx2 entgegenwirken (Kapitel 3.4.4). Otx2 kann, wie bereits in Arbeiten anderer Labors beschrieben, kontext-abhängig entweder als transkriptioneller Repressor oder Aktivator wirken. Die in dieser Arbeit dargestellten Ergebnisse zeigen daher einen möglichen molekularen Mechanismus auf, wie durch zeitlich und räumlich kontrollierte Bindung eines Ko-Aktivators an Otx2 dessen transkrip-tionelle Aktivität wieder hergestellt werden kann. Die Ergebnisse dieser Arbeit beschreiben zum ersten Mal einen Transkriptionsfaktor, der unabhängig vom regulatorischen Netzwerk des MHO, die Entwicklung des optischen Tektums induziert. Sie liefern somit ein neuartiges mögliches Modell zur Spezifizierung anteriorer Hirnstrukturen: Die Induktion tektaler Entwicklung erfolgt nach Etablierung der Mittel-Hinterhirn Region durch Meis2, einem tektumspezifischen Ko-Faktor von Otx2. VII) Meis2 bildet, im sich entwickelnden Mittelhirn, auch Komplexe mit den beiden Regulatoren der Tektumentwicklung Pax3 und Pax7 (Kapitel 3.4.5). VIII) Außerdem konnten im Rahmen dieser Arbeit zwei weitere mögliche Interaktions-partner von Meis2 in den Anlagen der Augen identifiziert werden: Pax6, einem „master control gene“ der Augenentwicklung (Kapitel 3.4.6) und das Enzym Parp-1 (Kapitel 3.4.7), einem weit verbreiteten und vielseitigen Regulator der Genexpression. Diese Ergebnisse liefern Hinweise auf weitere wichtige Funktionen des Ko-Transkriptions-faktors Meis2 in der Entwicklung des anterioren Zentralnervensystems.
The development of the atrioventricular (AV) canal and the cardiac valves is tightly linked and a critically regulated process. Anomalies in components of the involved pathways can lead to congenital valve malformations, a leading cause of morbidity and mortality in neonates. Myocardial Bmp as well as endocardial Notch and Wnt signaling have been identified as critical factors for the induction of EMT during the formation of the endocardial cushions and cardiac valves. Of these, canonical Wnt signaling positively regulates endocardial proliferation and EMT but negatively regulates endocardial differentiation. Further, elevated Wnt signaling leads to the ectopic expression of myocardial Bmp ligands suggesting a high level of integration of the involved pathways and crosstalk amongst the different cardiac tissues.
Here we have identified a novel role for Id4 as a mediator between Bmp and Wnt signaling. Id4 belongs to the Id family of proteins and is known to be involved in bone and nervous system development. We found that in zebrafish, id4 is expressed in the endocardium of the AV canal at embryonic stages and throughout the atrial chamber in addition to AV canal, in adults. Using transcription activator-like effector nucleases (TALENs) we established an id4 mutant allele. Our analysis shows that id4 mutant larvae are susceptible to retrograde blood flow, and show aberrant expression of developmental valvular markers. These include expanded expression domains of markers like bmp4, cspg2a and Alcam. In contrast, valve maturation as assessed by the expression of spp1 is considerably reduced in id4 mutants. Using conditional transgenic systems, along with elegant in vivo imaging of transgenic reporter lines, we further found that id4 is a transcriptional target of Bmp signaling, and it is capable of dose dependently restricting Wnt signaling in the endocardium of the Atrioventricular Canal.
Taken together, our data identifies Id4 as a novel player in Atrioventricular Canal and valve development. We show that Id4 function is important in valve development acting downstream of Bmp signaling by restricting endocardial Wnt to allow valve maturation
Nearly 170 million people are chronically infected with HCV and thus at risk of developing liver cirrhosis and hepatocellular carcinoma. Although new and effective oral antiviral drugs are available, there is still the need for a preventive vaccine. In addition, in light of the high number of patients who are chronically infected with HCV the development of a therapeutic vaccine will present a support or even an alternative to the expensive medications.
To induce HCV-specific immune responses in a vaccine model, the HBV capsid is used as a carrier to deliver HCV antigens. Due to its icosahedral structure, the HBV capsid is highly immunogenic and helps to elicit a strong B cell response against the delivered antigens. In addition, the translocation motif (TLM) from the HBV surface protein is fused to the core protein. The TLM conveys membrane-permeability to the carrier capsid, enabling antigen transfer into the cytoplasm, and thus allows immunoproteasomal processing and MHC class I-mediated presentation of the antigen. To load the capsid with foreign antigens, a strep-Tag/streptavidin system is utilized. Recombinant capsids and antigens were purified from the E. coli production system. Detailed characterization of the carrier capsid demonstrated the proper assembly, adequate thermal stability and the successful loading of the foreign antigens onto the capsid surface.
As a further step, seven different HCV-derived proteins were produced and purified for the coupling on the surface of TLM-core particles. The characterization of their immunogenicity using this system is being performed.
Using ovalbumin as a model antigen, which is coupled to the carrier capsids via strep-Tag/streptavidin binding, shows that this system is suitable to efficiently deliver antigens into the cytoplasm of antigen-presenting cells (APCs), leading to the activation of APCs. This activation was assessed by measuring the secretion of IL-6 and TNF-α, in addition to the upregulation of activation markers (CD40, CD80, CD69, and MHC class I). Upon activation, the APCs were able to activate ova-specific CD8+ T cells measured by secreted IFN-γ, which was up to 20-folds more than IFN-γ secreted upon incubation with free ovalbumin. These data indicate that the TLM-capsid is suitable to serve as a carrier to deliver foreign antigens into the cytoplasm of APCs leading to MHC class I-mediated presentation and induction of an antigen-specific CTLs response.
Anaerobic ammonium oxidation (anammox) is a major process in the biogeochemical nitrogen cycle in which nitrite and ammonium are converted to dinitrogen gas and water through the highly reactive intermediate hydrazine. So far, it is unknown how anammox organisms convert the toxic hydrazine into nitrogen and harvest the extremely low potential electrons (−750 mV) released in this process. We report the crystal structure and cryo electron microscopy structures of the responsible enzyme, hydrazine dehydrogenase, which is a 1.7 MDa multiprotein complex containing an extended electron transfer network of 192 heme groups spanning the entire complex. This unique molecular arrangement suggests a way in which the protein stores and releases the electrons obtained from hydrazine conversion, the final step in the globally important anammox process.
Microplastics (MPs) are ubiquitous and persistent pollutants, and have been detected in a wide variety of media, from soils to aquatic systems. MPs, consisting primarily of polyethylene, polypropylene, and polyacrylamide polymers, have recently been found in 12% of samples of honey collected in Ecuador. Recently, MPs have also been identified in honey bees collected from apiaries in Copenhagen, Denmark, as well as nearby semiurban and rural areas. Given these documented exposures, assessment of their effects is critical for understanding the risks of MP exposure to honey bees. Exposure to polystyrene (PS)-MPs decreased diversity of the honey bee gut microbiota, followed by changes in gene expression related to oxidative damage, detoxification, and immunity. As a result, the aim of this perspective was to investigate whether wide-spread prevalence of MPs might have unintended negative effects on health and fitness of honey bees, as well as to draw the scientific community’s attention to the possible risks of MPs to the fitness of honey bees. Several research questions must be answered before MPs can be considered a potential threat to bees.
The sequenced genome of the poly-extremophile Exiguobacterium sp. S17, isolated from modern stromatolites at Laguna Socompa (3,570 m), a High-Altitude Andean Lake (HAAL) in Argentinean Puna revealed a putative proteorhodopsin-encoding gene. The HAAL area is exposed to the highest UV irradiation on Earth, making the microbial community living in the stromatolites test cases for survival strategies under extreme conditions. The heterologous expressed protein E17R from Exiguobacterium (248 amino acids, 85% sequence identity to its ortholog ESR from E. sibiricum) was assembled with retinal displaying an absorbance maximum at 524 nm, which makes it a member of the green-absorbing PR-subfamily. Titration down to low pH values (eventually causing partial protein denaturation) indicated a pK value between two and three. Global fitting of data from laser flash-induced absorption changes gave evidence for an early red-shifted intermediate (its formation being below the experimental resolution) that decayed (τ1 = 3.5 μs) into another red-shifted intermediate. This species decayed in a two-step process (τ2 = 84 μs, τ3 = 11 ms), to which the initial state of E17-PR was reformed with a kinetics of 2 ms. Proton transport capability of the HAAL protein was determined by BLM measurements. Additional blue light irradiation reduced the proton current, clearly identifying a blue light absorbing, M-like intermediate. The apparent absence of this intermediate is explained by closely matching formation and decay kinetics.
Nahrungsmittelallergikern steht aufgrund inakzeptabler Nebenwirkungen bei der spezifischen Immuntherapie zurzeit noch keine kausale Therapie dieser Erkrankung zur Verfügung. Demzufolge bleibt die Vermeidung der entsprechenden Lebensmittel für Nahrungsmittelallergiker der einzige Weg möglicherweise lebensbedrohlichen allergischen Reaktionen zu entgehen. Ziel dieser Arbeit war es, das Potential eines viralen Vektors für die Verwendung bei der spezifischen Immuntherapie der Lebensmittelallergie zu untersuchen. Die Überlegung dahinter war, das Risiko eines anaphylaktischen Schocks, der bei Injektion eines Allergens immer gegeben ist, durch intrazelluläre Expression des Proteins über das rekombinante Virus zu verringern. Zusätzlich dazu bringt das modifizierte Vacciniavirus Ankara (MVA) ideale Voraussetzungen für eine Allergievakzine mit: Die Infektion mit MVA führt zu einer stark Th1-gerichteten Immunantwort gegen die viral exprimierte Proteine, die möglicherweise die allergische Th2-gerichtete Immunantwort modulieren kann. Die prophylaktische Immunisierung mit MVA-OVA im Mausmodell der systemischen Sensibilisierung gegen Ovalbumin (OVA) führte dosisabhängig zur Suppression der spezifischen IgE-Antwort und somit zum Schutz vor allergischer Sensibilisierung. Zusätzlich konnte nachgewiesen werden, dass die Vakzinierung mit MVA-OVA eine dauerhafte spezifische IgG-Antwort induziert. Diese Daten unterstützen das Konzept einer Modulation der Sensibilisierung durch MVA-Vakzine. Weiterhin wurden zwei rekombinante Vakzinen generiert, mittels derer entweder das Tropomyosin aus Garnelen (Pen a 1) oder das Lipid-Transfer-Protein aus Haselnuss (Cor a 8) intrazellulär exprimiert werden konnte. Dass die Sensibilisierung gegen diese Allergene häufig mit schweren allergischen Reaktionen korreliert, unterstreicht die Notwendigkeit einer verbesserten Immuntherapie in diesem Bereich. Während MVA-Pen a 1 in ausreichender Menge und Qualität für die Verwendung im Mausmodell hergestellt werden konnte, gelang es nicht, eine homogene Population von MVA-Cor a 8 zu gewinnen, in der das Selektionsgen K1L nicht mehr vorhanden war. Parallel zur Virusherstellung wurden Mausmodelle der Sensibilisierung gegen Cor a 8 und Pen a 1 entwickelt. Vergleiche unterschiedlicher Mausstämme ergaben, dass sich Mäuse des Stammes CBA/J am empfänglichsten für eine systemische Sensibilisierung mit Cor a 8 sind. Aufgrund von Erfahrungen zur Sensibilisierung gegen Pen a 1 wurden Mäuse des Stammes C3H/HeJ bei der Etablierung eines Garnelenallergiemodells verwendet. Es zeigte sich, dass durch die intragastrale Applikation von 0,1 mg Pen a 1 sowie Choleratoxin als Adjuvanz (drei Gaben in dreiwöchigem Abstand), gefolgt von einer systemischen Gabe des Allergens mit Aluminiumhydroxid eine spezifische Sensibilisierung hervorgerufen werden konnte, die nach Exposition mit Pen a 1 zu allergischen Symptomen führte. Auch in diesem Modell bot die prophylaktische Immunisierung mit MVA-Pen a 1 Schutz vor Pen a 1spezifischer Sensibilisierung. Um die therapeutische Effektivität der Vakzine ermitteln zu können, muss die begonnene Etablierung eines Allergiemodells mit symptomauslösenden Provokationen und immunologischen Analysen weitergeführt werden. Der in dieser Studie beobachtete starke schützende Effekt einer Vakzinierung mit MVA vor allergischer Sensibilisierung und das sehr gute Sicherheitsprofil dieses Vektors in klinischen Studien zu anderen Erkrankungen belegt die Möglichkeit einer Verwendung von MVA zur erfolgreichen spezifischen Immuntherapie der Lebensmittelallergie.
Binding free energy calculations that make use of alchemical pathways are becoming increasingly feasible thanks to advances in hardware and algorithms. Although relative binding free energy (RBFE) calculations are starting to find widespread use, absolute binding free energy (ABFE) calculations are still being explored mainly in academic settings due to the high computational requirements and still uncertain predictive value. However, in some drug design scenarios, RBFE calculations are not applicable and ABFE calculations could provide an alternative. Computationally cheaper end-point calculations in implicit solvent, such as molecular mechanics Poisson–Boltzmann surface area (MMPBSA) calculations, could too be used if one is primarily interested in a relative ranking of affinities. Here, we compare MMPBSA calculations to previously performed absolute alchemical free energy calculations in their ability to correlate with experimental binding free energies for three sets of bromodomain–inhibitor pairs. Different MMPBSA approaches have been considered, including a standard single-trajectory protocol, a protocol that includes a binding entropy estimate, and protocols that take into account the ligand hydration shell. Despite the improvements observed with the latter two MMPBSA approaches, ABFE calculations were found to be overall superior in obtaining correlation with experimental affinities for the test cases considered. A difference in weighted average Pearson () and Spearman () correlations of 0.25 and 0.31 was observed when using a standard single-trajectory MMPBSA setup ( = 0.64 and = 0.66 for ABFE; = 0.39 and = 0.35 for MMPBSA). The best performing MMPBSA protocols returned weighted average Pearson and Spearman correlations that were about 0.1 inferior to ABFE calculations: = 0.55 and = 0.56 when including an entropy estimate, and = 0.53 and = 0.55 when including explicit water molecules. Overall, the study suggests that ABFE calculations are indeed the more accurate approach, yet there is also value in MMPBSA calculations considering the lower compute requirements, and if agreement to experimental affinities in absolute terms is not of interest. Moreover, for the specific protein–ligand systems considered in this study, we find that including an explicit ligand hydration shell or a binding entropy estimate in the MMPBSA calculations resulted in significant performance improvements at a negligible computational cost.
In high light, the antenna system in oxygenic photosynthetic organisms switches to a photoprotective mode, dissipating excess energy in a process called non-photochemical quenching (NPQ). Diatoms exhibit very efficient NPQ, accompanied by a xanthophyll cycle in which diadinoxanthin is de-epoxidized into diatoxanthin. Diatoms accumulate pigments from this cycle in high light, and exhibit faster and more pronounced NPQ. The mechanisms underlying NPQ in diatoms remain unclear, but it can be mimicked by aggregation of their isolated light-harvesting complexes, FCP (fucoxanthin chlorophyll-a/c protein). We assess this model system by resonance Raman measurements of two peripheral FCPs, trimeric FCPa and nonameric FCPb, isolated from high- and low-light-adapted cells (LL, HL). Quenching is associated with a reorganisation of these proteins, affecting the conformation of their bound carotenoids, and in a manner which is highly dependent on the protein considered. FCPa from LL diatoms exhibits significant changes in diadinoxanthin structure, together with a smaller conformational change of at least one fucoxanthin. For these LL-FCPa, quenching is associated with consecutive events, displaying distinct spectral signatures, and its amplitude correlates with the planarity of the diadinoxanthin structure. HL-FCPa aggregation is associated with a change in planarity of a 515-nm-absorbing fucoxanthin, and, to a lesser extent, of diadinoxanthin. Finally, in FCPb, a blue-absorbing fucoxanthin is primarily affected. FCPs thus possess a plastic structure, undergoing several conformational changes upon aggregation, dependent upon their precise composition and structure. NPQ in diatoms may therefore arise from a combination of structural changes, dependent on the environment the cells are adapted to.
In dieser Arbeit sollte der Einfluss von Trockenstress auf die Photosyntheserate von einer repräsentativen C3-Art und dreier repräsentativer Arten unterschiedlicher C4-Subtypen vergleichend untersucht werden, wobei die drei Subtypen der C4-Photosynthese im Vordergrund standen. Anhand der ausgewählten Arten der Modell-Gattung Panicum (s.l.), P. bisulcatum (C3), P. bulbosum (NADP-ME), P. miliaceum (NAD-ME) und P. maximum (PCK), konnten die unterschiedlichen Stoffwechseltypen, an phylogenetisch nah verwandten Arten, auf Unterschiede in der physiologischen Antwort auf den abiotischen Stressfaktor Trockenheit untersucht werden. Hierfür wurden zwei verschiedene Arten der Trockenstressinduktion durchgeführt. Ein Vergleich der Arten in Hinblick auf Unterschiede in der Trockentoleranz erfolgte anhand von Hydrokulturversuchen mit PEG6000 als Osmotikum. In diesem Fall wurde der jeweilige Stress sehr schnell induziert und über die Dauer von 6 Tagen in unterschiedlichen Intensitäten konstant gehalten. Anhand der durchgeführten Gaswechselmessungen und Bestimmungen der Chlorophyllfluoreszenzparameter konnte eindeutig die C3-Art P. bisulcatum als die am sensitivsten auf Trockenstress reagierende Art identifiziert werden. Die drei C4-Arten lagen in ihrer physiologischen Antwort auf die unterschiedlichen Trockenstressintensitäten verhältnismäßig nah zusammen. Bei schwächerem osmotischen Stress zeigte aber P. miliaceum, der Vertreter des NAD-ME Subtyps, eindeutig die geringste Beeinflussung der untersuchten Photosyntheseparameter, was im Wesentlichen auch bei stärkerem osmotischen Stress bestätigt wurde. Zudem zeigte P. miliaceum bei 1400 ppm CO2 im Messgas im Vergleich zu den anderen getesteten Arten eine signifikant höhere Wassernutzungseffizienz, was die bessere Anpassung des NAD-ME Subtypen an osmotischen Stress unterstreicht. Bei dem Trockenstressexperiment in Erde stand die physiologische Maximalantwort auf den natürlicheren, verhältnismäßig langsam induzierten, aber letztendlich starken Trockenstress im Vordergrund. Hier wurde für jede Art untersucht, welche limitierenden Faktoren unter Trockenstress auf die Photosyntheserate wirken. Dafür wurde neben Gaswechsel- und Chlorophyllfluoreszenzmessungen mit der Bestimmung der In-vitro-Aktivitäten der Enzyme des C4-Zyklus, der Bestimmung der PEPC und RubisCO-Gehalte anhand von SDS-PAGE und Western-Blot-Analysen, und der Bestimmung des Deepoxidationsgrades des Xanthophyllzykluses ausgewählte Teilreaktionen der C4-Photosynthese genauer untersucht. Bei allen untersuchten C4- Arten konnte bei dem starken Trockenstress eine eindeutige nicht-stomatäre Limitierung der Photosyntheserate festgestellt werden. Bei der C3-Art P. bisulcatum sprechen die Ergebnisse für eine Mischung aus stomatären und nicht-stomatären Faktoren, die die Photosynthese unter Trockenstress limitieren. Hier konnte eine Abnahme des RubisCO-Gehalts unter Trockenstress beobachtet werden, was ein möglicher Faktor für eine nicht-stomatäre Limitierung der Photosyntheserate unter Trockenstress sein kann. Aufgrund der im Mittel reduzierten In-vitro-Aktivitäten der Enzyme des NADP-ME C4-Zyklus (PPDK, PEPC, NADP-MDH und NADP-ME) und einer Abnahme des PEPC- und RubisCOGehalts bei trockengestressten P. bulbosum im Vergleich zu der entsprechenden Kontrolle, konnte bei dem Vertreter des NADP-ME Subtyps die nicht-stomatäre Limitierung der Photosyntheserate auf eine generelle Abnahme der an der C4-Photosynthese beteiligten Enzyme zurückgeführt werden. Anhand der Bestimmung der In-vitro-Aktivitäten von P. maximum konnte gezeigt werden, dass die als Nebenweg beschriebene Decarboxylierung des CO2 über das NAD-ME in den BSZ, wahrscheinlich im gleichen Maße abläuft wie der von KANAI und EDWARDS (1999) beschriebene Hauptweg (Decarboxylierung in den BSZ durch die PCK). Die beobachtete nicht-stomatäre Limitierung der Photosyntheserate unter Trockenstress wurde auf eine mögliche Abnahme der In-vitro-Aktivitäten des sogenannten Nebenweges zurückgeführt. Bei P. miliaceum, dem repräsentativen Vertreter des NAD-ME Subtyps, zeigte keines der C4-Enzyme eine Abnahme der In-vitro-Aktivität, noch konnte eine Abnahme des RubisCO Gehalts unter Trockenstress im Vergleich zur Kontrolle beobachtet werden. Diese Beobachtung deutete auf eine In-Situ-Inhibierung eines der C4-Enzyme hin. Aus diesem Grund wurden in dieser Arbeit bei P. miliaceum weiterführende Untersuchungen zur posttranslationalen Regulation der PEPC durchgeführt. Obwohl die PEPC unter Trockenstress in phosphorylierter und somit aktiver Form vorliegt, konnte gezeigt werden, dass bei trockengestressten P. miliaceum eine In-Situ-Inhibition der PEPC aufgrund einer Feedback-Inhibition durch das unter Trockenstress in den MZ akkumulierende Transportmetabolit Aspartat wahrscheinlich ist und somit die Photosyntheserate limitieren kann.
Eine Einschränkung des Hörvermögens durch Schäden der Sinnesrezeptoren im Innenohr gilt beim Menschen sowie bei allen anderen Säugetieren als irreversibel. Die Hörforschung ist an der Frage interessiert, ob durch Plastizität in zentralen Teilen des auditorischen Systems Kompensationsmechanismen die Folgen mildern können. Die vorliegende Arbeit befasst sich mit der Frage, ob und in welchem Umfang nach peripheren Hörschäden durch zentrale Kompensationsmechanismen eine Erholung des Hörvermögens auftritt auf der Basis von plastischen Änderungen der neuronalen Verarbeitung der Eingangssignale aus dem geschädigten Hörorgan. Schäden des Sinnesepithels im Innenohr, z.B. durch überlaute Beschallung oder ototoxische Substanzen, betreffen in der Regel zunächst die äußeren Haarzellen und führen zu einem Verlust der Empfindlichkeit und Frequenzspezifität des Hörvermögens. Eine primäre selektive Schädigung der inneren Haarzellen (IHZ) tritt im Tiermodell, aus unbekannten Gründen nur bei einer Spezies auf, dem Chinchilla (Chinchilla laniger) und zwar nach Gabe des antineoplastischen Medikament Carboplatin. Das gute Tieffrequenzhören der Chinchillas (0.1-20 kHz) ermöglicht außerdem Aussagen zur akustischen Signalverarbeitung in einem für das menschliche Gehör relevanten Frequenzbereich (0.02-16 kHz). Dieses Tiermodell bietet somit die Gelegenheit, die Veränderungen in zentralen Teilen des auditorischen Systems nach einer definierten sensorischen Schädigung zu untersuchen. Hierfür kommt u.a. das auditorische Mittelhirn, der Colliculus Inferior (IC) in Frage. Der IC wird als Hauptintegrationszentrum der Hörbahn angesehen weil er Eingänge von fast allen vor ihm liegenden auditorischen Kernen (z.B. Nucleus cochlearis, Nucleus olivaris und Leminscus lateralis) bekommt. Ein weiterer Grund für die Wahl des IC als Untersuchungsgebiet der vorliegenden Arbeit ist, die Frage zu beantworten, ob die auf der Ebene des auditorischen Kortex bereits nachgewiesene funktionelle Plastizität auch auf der Ebene des IC schon realisiert oder vorbereitet wird. Die vorliegende Arbeit untersucht das Antwortverhalten der Neurone im ICc an wachen Tieren vor und nach einem selektiven Teilverlust der IHZ bei Erhalt der äußeren Haarzellen. Die Arbeitshypothese ist, dass es nach einem abgeschwächten sensorischen Eingang zu Veränderungen der exzitatorischen und inhibitorischen Antwortfelder kommt, die als funktionelle Plastizität bzw. als Kompensation verstanden werden können. Anhand elektrophysiologischer Ableitungen im ICc von wachen, chronisch implantierten Tieren wurden die exzitatorischen und die inhibitorischen Antwortfelder der Neurone durch Einton- und Zweiton- Stimulation getrennt gemessen und bestimmt. Die Resultate zeigen, dass die exzitatorischen und inhibitorischen Antworteigenschaften im IC bei wachen und narkotisierten Tieren unterschiedlich sind. In wachen Tieren weist die Inhibition generell höhere Variation auf als in narkotisierten Tieren und ist unabhängiger von der Art der Exzitation. Eine Carboplatinbehandlung führte bei allen Tieren nach 3-7 Tagen zu einer Abnahme der Amplituden und einer Erhöhung der Schwellen der akustisch evozierten Hirnstammpotentiale (ABRs). Die histologische Untersuchung des Innenohres (10 Wochen nach Carboplatinbehandlung), zeigte bei allen Tieren Verluste der IHZ (zwischen 20 und 60%) entlang der gesamten Basilarmembran. Es wurden aber keine Verluste von ÄHZ festgestellt. Die Gehirn-Schnitte zeigten, dass die Registrierungen aus dem zentralen Teil des Colliculus Inferior stammen. Die physiologische Untersuchung der Antworteigenschaften der Neurone im IC 4-6 Wochen nach der carboplatinbedingten Schädigung der IHZ zeigte eine Reduktion der Inhibition, die u.a. deutlich an dem Verlauf der Intensitätskennlinien zu beobachten war. Nach dem Teilverlust der IHZ wurden viel weniger nichtmonotone Kennlinien gefunden als vor der Innenohrschädigung. Darüber hinaus beobachteten wir eine Reduzierung der inhibitorischen Regionen und eine signifikante Ausweitung der exzitatorischen Antwortfelder nach dem Teilverlust der IHZ. Die Resultate der vorliegenden Arbeit führen zu der Schlussfolgerung, dass nach einer Teilschädigung der inneren Haarzellen, unter Erhalt der ÄHZ nur ein geringer Sensitivitätsverlust in der zentralen Hörbahn auftritt. Der Verlust von 20-60% der IHZ und der damit einhergehende reduzierte afferente Informationsfluss führt zu physiologischen Veränderungen in der Hörbahn, die im IC von wachen Tieren vor allem durch eine Reduktion der Inhibition hervortritt. Dies deutet daraufhin, dass zentrale Kompensationsmechanismen bei peripheren Hörschäden nicht, wie bisher vermutet, erst in kortikalen sondern zum Teil bereits in subkortikalen Arealen (im Mittelhirn) stattfinden.
Interleukin-11 signaling is a global molecular switch between regeneration and scarring in zebrafish
(2022)
The two diametrically opposing outcomes after tissue damage are regeneration and fibrotic scarring. After injury, adult mammals predominantly induce fibrotic scarring, which most often leads to patient lethality. Fibrotic scarring is the deposition of excessive extracellular matrix that matures and hinders tissue function. The scarring response is mainly orchestrated by myofibroblasts, which arise only upon tissue damage, from various cellular origins, including tissue resident fibroblasts, endothelial cells and circulating blood cells. On the contrary, species like zebrafish, possess the remarkable capacity to regenerate their damaged tissues. After injury, instead of inducing a myofibroblast-mediated fibrogenic gene program, cells in these species undergo regenerative reprogramming at the transcriptional level to activate vital cellular processes needed for regeneration, including proliferation, dedifferentiation, and migration. Several pro-regenerative mechanisms have been identified to date. Most of them, if not all, are also important for tissue homeostasis and hence, are not injury specific. Therefore, the central aim of this study is to identify injury-specific mechanisms that not only induce regeneration, but also limit fibrotic scarring.
To test the notion that fibrotic scarring limits regeneration, I first compared the scarring response in the regenerative zebrafish heart after cryoinjury with what is known in the non-regenerative adult mouse heart. I found that zebrafish display ~10-fold less myofibroblast differentiation compared to adult mouse after cardiac injury. With these findings, I hypothesized that zebrafish employ mechanisms to actively suppress scarring response. Using a novel comparative transcriptomic approach coupled with genetic loss-of-function analyses, I identified that Interleukin-6 (Il-6) cytokine family-mediated Stat3 is one such pro-regenerative pathway in zebrafish.
Il-6 cytokine family consists of Il-6, Interleukin-11 (Il-11), Ciliary neurotrophic factor, Leukemia inhibitory factor, Oncostatin M, and Cardiotrophin-like cytokine factor 1. Il-6 family ligands signal through their specific receptors and a common receptor subunit (Il6st or Gp130). Using gene expression analyses after adult heart and adult caudal fin injuries in zebrafish, I identified that both the Il-11 cytokine encoding paralogous genes (il11a and il11b) are the highest expressed and induced among the Il-6 family cytokines. Hence, I chose Il-11 signaling as a candidate pathway for further analysis. To investigate the role of Il-11 signaling, I generated genetic loss-of-function mutants for both the ligand (il11a and il11b) and the receptor (il11ra) encoding genes. Using various tissue regeneration models across developmental stages in these mutants, I identified that Il-11/Stat3 signaling is indispensable for global tissue regeneration in zebrafish.
To investigate the cellular and molecular mechanisms by which Il-11 signaling promotes regeneration, I performed transcriptomics comparing the non-regenerative il11ra mutant hearts and fins with that of the wild types, respectively. I identified that Il-11 signaling orchestrates both global and tissue-specific aspects of regenerative reprogramming at the transcriptional level. In addition, I also found that impaired regenerative reprogramming in the il11ra mutant hearts and fins resulted in defective cardiomyocyte and osteoblast repopulation of the injured area, respectively.
On the other hand, by deep phenotyping the scarring response in il11ra mutant hearts and fins, I identified that Il-11 signaling limits myofibroblast differentiation. Furthermore, I found that cardiac endothelial cells and fibroblasts are one of the major responders to injury-induced Il-11 signaling. Using lineage tracing, I found that both the endothelial and fibroblast lineages in the non-regenerative il11ra mutants commit to a myofibroblast fate, spearheading the scarring response. In addition, using cell type specific manipulations, I showed that Il-11 signaling in cardiac endothelial cells allows cardiomyocyte repopulation of the injured area. Finally, using human endothelial cells in culture, I uncovered a novel feedback mechanism by which Il-11 signaling limits fibrogenic gene expression by inhibiting its parent activator and a master regulator of tissue fibrosis, TGF-β signaling.
Overall, I identified Interleukin-11/Stat3 signaling as the first global regulator of regeneration in zebrafish. Briefly, I showed that Interleukin-11 signaling promotes regeneration by regulating two crucial cellular aspects in response to injury – (1) it promotes regenerative reprogramming, thereby allowing cell repopulation of the injured area and (2) it limits mammalian-like fibrotic scarring by inhibiting myofibroblast differentiation and TGF-β signaling. Altogether, these zebrafish data, together with the contradicting mammalian data strongly indicate that the secrets of tissue regeneration lie downstream of IL-11 signaling, in the differences between regenerative and non-regenerative species. Furthermore, I establish the non-regenerative il11ra mutant as an invaluable zebrafish model to study mammalian tissue fibrosis.
Im Rahmen dieser Dissertation wurden unterschiedliche Aspekte der Verbreitung der Vertreter des Pseudoterranova decipiens Komplexes betrachtet und Fragestellungen zur Ökologie und Humanpathogenität der Parasiten bearbeitet. Sie basiert auf drei (ISI-) Fachartikeln, in denen die Nutzung von Fischparasitengemeinschaften als ökologische Indikatoren für entlegene Ökosysteme des Südpolarmeeres (I), die Modellierung geeigneter Verbreitungsgebiete für Arten mit geringen Vorkommensdaten am Beispiel des P. decipiens Komplexes (II) und das Vorkommen potentiell humanpathogener P. bulbosa in unterschiedlichen Mikrohabitaten in Atlantischem Kabeljau (III) thematisiert wurde.
Die Parasitengemeinschaften der in Studie I untersuchten, nahverwandten Antarktisdorsche (Nototheniinae) Nototheniops larseni (n=40), N. nudifrons (n=40) und Lepidonotothen squamifrons (n=49) unterschieden sich hauptsächlich hinsichtlich seltener Parasitenarten. Pseudoterranova decipiens E zählte zu den häufigsten Parasiten der drei betrachteten Wirtsarten. Die Analyse der Wirtsspektren der auf Artebene bestimmten Parasiten zeigte eine geringe Spezifität antarktischer Fischparasiten im Larven- (z.B. Pseudoterranova decipiens E) und Adultstadium (z.B. Elytrophalloides oatesi). Für eine Nutzung als Bioindikatoren ergibt sich die Empfehlung, nicht auf einzelne Parasitenarten, sondern die Zusammensetzung von Parasitenfaunen zurückzugreifen und Parameter wie Abundanz oder Intensität zu berücksichtigen. Vergleiche mit Literaturdaten legten nahe, dass ein Studiendesign, das den periodischen Vergleich der Parasitierungsmuster von Nototheniinae ermöglichen soll, Standorteffekte berücksichtigen sollte. Da es sich bei der Probennahme demersaler Fische um ein aufwändiges und einschneidendes Verfahren handelt, sollten alternative Samplingmethoden vorangetrieben und eine Datenbasis dafür geschaffen werden.
Um die Belastung von Speisefischen mit potentiell humanpathogenen Parasiten in bestimmten Fanggebieten abzuschätzen, kann anhand von Vorkommens- und Umweltdaten mittels statistischer Modelle die Habitateignung für den Parasiten bestimmt werden. Eine Voraussetzung für eine verlässliche Modellierung bilden die Wahl eines geeigneten Algorithmus und die Qualität der Eingangsdaten. Für die Modellierung geeigneter Verbreitungsgebiete für die sechs Arten des P. decipiens Komplexes wurde im Rahmen von Studie II erstmalig ein biotischer Deskriptor herangezogen. Dem Ansatz lag die Annahme zugrunde, dass das Vorkommen geeigneter Endwirte der entscheidende, limitierende Faktor für die Verbreitung eines Parasiten ist, da nur so der Lebenszyklus geschlossen werden kann. Als Hypothesentest dienten Vergleiche der ökologischen Nischen von Parasiten und ihren spezifischen Endwirten im Nischenraum. Anhand der Endwirtdistanz wurde eine Verbesserung der Modellierungsergebnisse mit MaxEnt, gegenüber der ausschließlich auf abiotischen Prädiktoren basierenden Modellierung, für alle Pseudoterranova Arten, insbesondere jene mit einer geringen Anzahl Fundpunkte, erzielt. Grundsätzlich ist der Ansatz auf marine Parasitenarten, deren spezifische Endwirte verlässliche Vorkommensdaten aufweisen, übertragbar. Die Methode stellt jedoch keinen Ersatz für die Erhebung von Vorkommensdaten dar, weshalb die genetische Bestimmung schwer zu identifizierender Taxa sowie die Angabe von Metadaten in jeder parasitologischen Studie obligatorisch sein sollten.
Die Verteilung potentiell humanpathogener Parasitenstadien in für den menschlichen Verzehr vorgesehenen Fischen kann ein entscheidender Faktor für die Übertragung sein. Im Rahmen von Studie III wurde mit dem Referenztranskriptom von P. bulbosa das erste Transkriptom für eine Art den P. decipiens Komplexes erstellt. Anhand einer differentiellen Genexpressionsanalyse wurde untersucht, was die Verteilung der Parasiten auf unterschiedliche Mikrohabitate beeinflusst haben könnte. Dabei wurden siebzig differentiell exprimierte Gene identifiziert, die in aus Leber (32 Gene) und Viscera (38 Gene) von Atlantischem Kabeljau (Gadus morhua) isolierten Proben von P. bulbosa hochreguliert waren. Eine Erklärung für diesen subtilen Unterschied könnte ein Dauerstadium der P. bulbosa Larven zum Zeitpunkt der Probennahmen sein. Ob sich bestimmte Mikrohabitate innerhalb des Wirtes begünstigend auf den Parasiten auswirken, muss mit Hilfe experimenteller Studien gezeigt werden. Erste in Studie III erhobene Daten zum allergenen Potential von P. bulbosa sollten in serologischen Studien getestet werden. Als Grundlage für die Bewertung des pathogenen Potentials von P. bulbosa, sowie der weiteren Arten des P. decipiens Komplexes, sollten in experimentellen Studien NGS-Daten erhoben werden.
Im Rahmen dieser Dissertation wurde in drei methodisch unterschiedlichen Studien ein Bedarf besserer Referenzdaten aufgezeigt. Bestreben diese Datenlücken zu schließen, um das Potential der Methoden besser ausschöpfen zu können, müssen zukünftig noch weiter verstärkt werden.
We examined the feedback between the major protein degradation pathway, the ubiquitin-proteasome system (UPS), and protein synthesis in rat and mouse neurons. When protein degradation was inhibited, we observed a coordinate dramatic reduction in nascent protein synthesis in neuronal cell bodies and dendrites. The mechanism for translation inhibition involved the phosphorylation of eIF2α, surprisingly mediated by eIF2α kinase 1, or heme-regulated kinase inhibitor (HRI). Under basal conditions, neuronal expression of HRI is barely detectable. Following proteasome inhibition, HRI protein levels increase owing to stabilization of HRI and enhanced translation, likely via the increased availability of tRNAs for its rare codons. Once expressed, HRI is constitutively active in neurons because endogenous heme levels are so low; HRI activity results in eIF2α phosphorylation and the resulting inhibition of translation. These data demonstrate a novel role for neuronal HRI that senses and responds to compromised function of the proteasome to restore proteostasis.
Capoeta damascina (Teleostei: Cyprinidae) is one of the most common freshwater fish species, found throughout the Levant, Mesopotamia, Turkey and Iran. According to the state of knowledge prior to this study, C. damascina, which is distributed over a wide range of isolated water bodies, was not a well-defined species. It was questionable whether it represents a single species or a complex of closely related species with high intraspecific and comparatively low interspecific variability. The goal of this study was to investigate the taxonomy, systematic position of the C. damascina species complex and the phylogenetic relationships among its members, based on morphological features as well as molecular phylogeny. Samples obtained from throughout the geographic range of this species complex were subjected to comparative morphological analyses in order to define, properly diagnose and separate species within the C. damascina complex. To elucidate phylogenetic relationships among members of the C. damascina species complex, samples were subjected to genetic analyses, using two molecular markers targeting the mitochondrial cytochrome oxidase I (COI, n = 103) and the two adjacent divergence regions (D1-D2) of the nuclear 28S rRNA genes (LSU, n = 65). Based on morphological and molecular genetic data, six closely related species were recognized within the C. damascina complex: C. buhsei, C. caelestis, C. damascina, C. saadii, C. umbla and an undescribed species, Capoeta sp.1. Analyses of the morphometric and meristic data obtained in this study revealed phenotypic variability among the various populations within a species and among the different species. Such differences in morphological characters reflect genetic differences, environmentally induced phenotypic variation or both, as the meristic phenotype of fish is sometimes a consequence of environmental parameters acting on the genotype. Based on phylogenetic analyses, two main lineages were identified within the C. damascina species complex: a western lineage represented by C. caelestis, C. damascina and C. umbla and an eastern lineage represented by C. buhsei, C. saadii and Capoeta sp.1. The close phylogenetic relationships between C. damascina and C. umbla and the sharing of same haplotypes between one specimen of C. damascina from Euphrates and another of C. umbla from Tigris reflect one of three possibilites: recent speciation, mitochondrial introgression or a combination of both. The results obtained in this study indicate that speciation of the above-mentioned six taxa is quite recent and that their dispersal and present-day distribution can be related to Pleistocene events. The drying out of the Persian Gulf, probably during one of the first glacials of the Pleistocene, led the ancestor of the C. damascina species complex in Mesopotamia to reach the rivers of the Gulf and of Hormuz basins and differentiate there, giving rise to the eastern lineage (ancestor of C. buhsei, C. saadii and Capoeta sp.1). As connections presumably existed among the different river drainages and basins in Iran during the wet periods of the Pleistocene, the ancestor of C. buhsei, C. saadii and Capoeta sp.1 was subsequently able to colonize the various Iranian drainages and differentiate there, giving rise to C. buhsei, C. saadii and Capoeta sp.1. After the separation from the eastern lineage, the western lineage, represented by the ancestor of C. damascina, C. umbla and C. caelestis, most likely reached the Levant from the Tigris-Euphrates system during the Pleistocene glacials, when river connections existed in the regions of the upper courses of Ceyhan Nehri (southern Turkey) and some western affluents to the Euphrates. From Ceyhan Nehri, it dispersed into other rivers in southern Turkey during Pleistocene periods of low sea levels until it reached Göksu Nehri and evolved into C. caelestis. The sister population differentiated into C. damascina and C. umbla. Based on the results obtained in this study, it is likely that C. damascina colonized the Levant and southern Turkey during the Pleistocene glacials. This is well supported by the low genetic variability among the C. damascina populations. Direct connections existed among the river drainages in the Levant during the Pleistocene periods of low sea level, thus serving as a pathway for the dispersal of C. damascina. The results of this study provide a coherent picture of the taxonomic position, phylogenetic relationships and evolutionary history of the C. damascina species complex and explain present patterns of distribution considering paleogeographic events.
Capoeta damascina was earlier considered by many authors as one of the most common freshwater fish species found throughout the Levant, Mesopotamia, Turkey, and Iran. However, owing to a high variation in morphological characters among and within its various populations, 17 nominal species were described, several of which were regarded as valid by subsequent revising authors. Capoeta damascina proved to be a complex of closely related species, which had been poorly studied. The current study aims at defining C. damascina and the C. damascina species complex. It investigates phylogenetic relationships among the various members of the C. damascina complex, based on mitochondrial and nuclear DNA sequences. Phylogenetic relationships were projected against paleogeographical events to interpret the geographic distribution of the taxa under consideration in relation to the area’s geological history. Samples were obtained from throughout the geographic range and were subjected to genetic analyses, using two molecular markers targeting the mitochondrial cytochrome oxidase I (n = 103) and the two adjacent divergence regions (D1-D2) of the nuclear 28S rRNA genes (n = 65). Six closely related species were recognized within the C. damascina complex, constituting two main lineages: A western lineage represented by C. caelestis, C. damascina, and C. umbla and an eastern lineage represented by C. buhsei, C. coadi, and C. saadii. The results indicate that speciation of these taxa is rather a recent event. Dispersal occurred during the Pleistocene, resulting in present-day distribution patterns. A coherent picture of the phylogenetic relationships and evolutionary history of the C. damascina species complex is drawn, explaining the current patterns of distribution as a result of paleogeographic events and ecological adaptations.
The reggie protein family consists of two homologous members, reggie-1 and reggie-2, also termed flotillin-2 and flotillin-1, respectively, that are ubiquitously expressed and evolutionarily well conserved, suggesting an important but so far ill-defined function. In various cell types, both reggies have been found to be constitutively associated with lipid rafts by means of acylation modifications and oligomerization. Lipid rafts are glycosphingolipid- and cholesterol-rich membrane microdomains which have been implicated in several cellular processes including membrane transport and signal transduction through growth factor receptors. However, the molecular details of these processes are still poorly understood. With the observation that reggies colocalize with activated glycosylphosphatidylinositolanchored proteins (GPI-APs) and Fyn kinase in rafts, a role for these proteins in signaling events has been suggested. In agreement with that, we have previously shown that reggie-1 becomes multiply tyrosine phosphorylated by Src kinases in response to epidermal growth factor (EGF) stimulation, pointing to a function for reggie-1 in growth factor signaling. Furthermore, overexpression of reggie-1 enhances spreading on fibronectin substrate in a tyrosine-dependent manner, thus revealing a role for reggie-1 in regulation of actin cytoskeleton through growth factor receptors. Due to the similarity shared by reggie proteins at amino acid level and to their ability to form hetero-oligomeric complexes, the first aim of this study was to analyze the putative tyrosine phosphorylation of reggie-2 in growth factor stimulated cells. Similarly to reggie-1, reggie-2 was found to be multiply tyrosine phosphorylated by Src kinase and to exist in a molecular complex with Src, with the degree of co-immunoprecipitation dependent on the activity of Src. Recent studies from us have also shown that administration of EGF results in the endocytosis of reggie-1 from the plasma membrane into endosomes, which is in line with a proposed role for reggies in membrane trafficking processes. In order to characterize in detail the endocytic mechanism that mediates the uptake of reggie-1, the dependency of reggie-1 endocytosis on clathrin and dynamin was investigated by means of overexpressing a variant form of Eps15 or a dominant negative form of dynamin-2. In either case the translocation of reggie-1 into endosomes in response to EGF was not affected, and this, together with the results that reggie-1 colocalized with cholera toxin (CTX) but not with transferrin receptor (TfnR) during EGF signaling, indicates that reggie-1 is taken up by means of a dynaminindependent, raft-mediated pathway. These findings are very well in line with recent data showing the pathway of entry into cells of reggie-2 as a raft-mediated endocytic pathway. The endocytosis of reggie-2 in response to EGF was also analyzed in this study. Similarly to reggie-1, in growth factor stimulated cells reggie-2 underwent a translocation from the plasma membrane to endosomes where the two reggies were found to colocalize with each other, suggesting that epidermal growth factor signaling might trigger the endocytosis of reggie oligomers. In addition, colocalization with both the late endosomal marker LAMP3/CD63 and epidermal growth factor receptor (EGFR) was detected, again indicating a function for reggies in signal transduction through growth factor receptors. EGFR has been reported to localize in rafts but, although this association is thought to be functional during EGF stimulation, how segregation of EGFR into rafts modulates its endocytosis and signaling is still under debate. Since reggie oligomers have recently been suggested to define a raft subtype, a further aim of this study was to investigate whether the depletion of reggies by means of small interfering RNA could interfere with the signaling and the trafficking through EGFR. Knockdown of reggie-2 resulted in an altered tyrosine phosphorylation of EGFR in response to EGF, while the degree of ubiquitination was not affected. Less efficient phosphorylation of tyrosine residues, especially of those which are docking sites for Grb2 and Shc, led in turn to an impaired activation of p38 and ERK1/2 MAPKs. Depletion of reggie-2 did not affect the early trafficking of activated EGFRs, with receptors being endocytosed and delivered to late endosomes as efficiently as in control cells. This would be in line with the normal degree of ubiquitination observed for EGFR, as ubiquitin moieties have been proposed to represent sorting tags that ensure receptor endocytosis into early endosomes and its proper intracellular trafficking. On the contrary, after prolonged EGF stimulation, depletion of reggie-2 resulted in a decreased downregulation of both receptor-bound ligand and EGFR, and in their accumulation in intracellular vesicles, thus pointing to a role for reggie-2 in the degradative pathway. Taken all together, these data ndicate that the association of EGFR with reggie-microdomains is likely to be important for proper receptor trafficking and signaling.
Glucokinase (GK) is a key enzyme of glucose metabolism in liver and pancreatic beta-cells, and small molecule activators of GK (GKAs) are under evaluation for the treatment of type 2 diabetes. In liver, GK activity is controlled by the GK regulatory protein (GKRP), which forms an inhibitory complex with the enzyme. Here, we performed isothermal titration calorimetry and surface plasmon resonance experiments to characterize GK-GKRP binding and to study the influence that physiological and pharmacological effectors of GK have on the protein-protein interaction. In the presence of fructose-6-phosphate, GK-GKRP complex formation displayed a strong entropic driving force opposed by a large positive enthalpy; a negative change in heat capacity was observed (Kd = 45 nm, DeltaH = 15.6 kcal/mol, TDeltaS = 25.7 kcal/mol, DeltaCp = -354 cal mol(-1) K(-1)). With k(off) = 1.3 x 10(-2) s(-1), the complex dissociated quickly. The thermodynamic profile suggested a largely hydrophobic interaction. In addition, effects of pH and buffer demonstrated the coupled uptake of one proton and indicated an ionic contribution to binding. Glucose decreased the binding affinity between GK and GKRP. This decrease was potentiated by an ATP analogue. Prototypical GKAs of the amino-heteroaryl-amide type bound to GK in a glucose-dependent manner and impaired the association of GK with GKRP. This mechanism might contribute to the antidiabetic effects of GKAs.
Ulrike Anders hat zwischen Januar und September 2005 Zähne und Gebiß rezenter Schleichkatzen (Viverridae) untersucht und Parameter identifiziert, anhand derer sich Nahrungspräferenzen zuordnen lassen. Viverriden gelten als basale Carnivoren mit omnivorem Nahrungsspektrum. Da die für echte Katzen so typische Brechschere und die Reduktion des Gebisses nur wenig ausgeprägt ist, gilt ihr Gebiss als unspezialisiert. Dennoch besitzen Viverriden Nahrungspräferenzen, die sich in der Umgestaltung ihres Gebisses, auch in einzelnen Zahnpositionen niederschlägt. Diese Veränderungen wurden metrisch charakterisiert.
Across the entire animal kingdom, sociality, i.e. the tendency of individual animals to form a group with conspecifics, is a common trait. Environmental changes have to be met with corresponding, quick adaptations. For social species, the presence of conspecifics is important for survival and if social animals are deprived of access to conspecifics, this can lead to strong and lasting changes on a physiological level as well as behaviour. Gene expression changes responsible for these adaptations have so far not been understood in detail. As social isolation leads to changes on a neuronal level, it is important to investigate the gene expression changes that are induced in the brain. In this thesis, next-generation RNA-sequencing was applied to zebrafish, a well-established model organism characterized by its high degree of companionship. Within the entire brain, gene expression was analysed in zebrafish that were raised either with conspecifis or in isolation, ranging from 5 to 21 days post fertilization. Using this approach, several genes were identified that were downregulated by social isolation. In this thesis, I focused on one of these consistently downregulated genes, parathyroid hormone 2 (pth2). The expression of pth2 was demonstrated to be bidirectionally regulated by the number of conspecifics present and to be responsive to changes in the social environment within 30 minutes. Regulation of pth2 does not occur by visual or chemosensory access to conspecifcs, but is mediated by mechanosensory perception of other fish via the lateral line. In an experiment using an artificial mechanical stimulation paradigm, it was shown that the features necessary to elicit pth2 transcription closely mimick the locomotion of actual zebrafish. Other, similar stimulation paradigms are not capable to induce this transcriptional response.
Das Leben aller Organismen wird grundlegend durch den tages- und jahreszeitlich bedingten Wechsel der Beleuchtungsverhältnisse geprägt. Die Anpassung der Stoffwechselprozesse und Verhaltensweisen an diese Oszillationen erfolgt nicht passiv, sondern wird durch eine innere Uhr gesteuert. Tageszeitliche Rhythmen, die auch ohne den Einfluss äußerer, periodisch verlaufender Umgebungsreize (Zeitgeber) ablaufen, werden als zirkadiane Rhythmen bezeichnet. Im Säugetier steuert ein endogener Rhythmusgenerator im Nucleus suprachiasmaticus (SCN) zirkadiane Rhythmen, indem er periphere Oszillatoren miteinander synchronisiert. Auf molekularer Ebene besteht dieser endogener Rhythmusgenerator aus Aktivatoren (BMAL1 und CLOCK/NPAS2) und Inhibitoren (PER1/2 und Cry1/2), die in Rückkopplungsschleifen die Grundlage für die Rhythmogenese steuern. Die Synchronisation dieses molekularen Uhrwerkes an die Umgebungszeit erfolgt durch Licht, das in der Retina wahrgenommen und an das SCN weitergeleitet wird. Die Signaltransduktionskaskaden nach einem Lichtpuls in der frühen und der späten Nacht unterscheiden sich dabei wesentlich: Ein Lichtpuls während der frühen Nacht führt zu einer erhöhten Freisetzung von Ca2+-Ionen über Ryanodin Rezeptoren (RYR), während ein Lichtpuls während der späten Nacht zu einer erhöhten Guanylylcyclase Aktivität führt. Um zu untersuchen, wie der endogene Rhythmusgenerator seinen Lichteingang reguliert, wurde die Licht-vermittelte Phasenverzögerung in BMAL1+/+- (profizienten) und BMAL1-/-- (defizienten) Mäusen untersucht. Die Befunde aus den in-situ Hybridisierungsstudien, RTQ-PCR und immunhistochemischen Untersuchungen dieser Arbeit zeigten, dass in BMAL1-/--Mäusen die Licht-induzierte mPer-Expression während der frühen Nacht selektiv beeinträchtigt ist. Zudem konnte gezeigt werden, dass die mRNA- und Proteinmengen von RYRs in BMAL1-/--Mäusen dramatisch reduziert waren. Ryr1:: und Ryr2::Luciferase-Reportersstudien zeigten darüber hinaus, dass die Ryr-Expression durch CLOCK/BMAL1 aktiviert und durch CRY1inhibiert werden kann. Diese Ergebnisse liefern den ersten Beweis dafür, dass der endogene Rhythmusgenerator des Säugers die Signalübertragung seines eigenen Lichteingangs regulieren kann. Weiterhin wurde in dieser Arbeit die ontogenetische Entwicklung des endogenen Rhythmusgenerators im SCN und in einem Melatonin-abhängigen peripheren Oszillator, der PT, untersucht und miteinander verglichen. Dazu wurden die Uhrengenproteine im fetalen (E18), postnatalen (P2 & P10) und adulten SCN und in der PT von C3H-Mäusen zu vier verschiedenen zirkadianen Zeitpunkten mittels Immunhistochemie untersucht. Die Anzahl immunreaktiver SCN-Zellen gegen alle untersuchten Uhrengenproteine (außer BMAL1) war im Fetus signifikant niedriger, als in der adulten Maus. Auch im SCN neonataler (P2) Mäuse erreichte die Anzahl immunreaktiver Zellen noch nicht das Niveau der adulten Maus. Erst 10 Tage nach der Geburt (P10) zeigen alle Uhrengenproteine im SCN ein adultes Verteilungsmuster. Offenbar reift das Uhrwerk im SCN von Mäusen graduell während der postnatalen Entwicklungsphase. Dabei besteht eine zeitliche Korrelation zwischen der Reifung des endogenen Rhythmusgenerators im SCN und der Ausbildung von inter-suprachiasmatischen und retino-suprachiaamatischen neuronalen Kontakten. Im Gegensatz zum SCN zeigte der Melatonin-abhängigen Oszilllator in der PT bereits im Fetus einen nahezu vollständig ausgeprägten Rhythmus der Uhrengenproteine. Da das fetale Pinealorgan noch nicht zur rhythmischen Melatonin-Synthese fähig ist, liegt es nahe, dass das mütterliche Melatonin die rhythmische Expression der Uhrengene in der fetalen PT reguliert. Wie in vitro Untersuchungen an PER2::LUCIFERASE-Mäusen zeigten, hat das mütterliche Melatonin offenbar auch einen modulierenden Einfluss auf den fetalen SCN. Bei diesen Mäusen konnte im fetalen und postnatalen SCN ein zirkadianer Rhythmus in der PER2-Synthese nachgewiesen werden, der eine relativ lange Periodenlänge aufwies und nach 3 Tagen zum Erliegen kam. Eine Stimulation mit Melatonin führte zu einer deutlichen Verkürzung der Periodenlänge im PER2-Rhythmus. Folglich scheint das mütterliche Melatonin eine wichtige Quelle für Informationen der Umgebungszeit im Fetus zu sein. Um die Uhrengenexpression während der Maus-Ontogenese in vitro auf zellulärer Ebene darzustellen, wurde in dieser Arbeit zudem ein vom murinen Per2-Promoter angetriebenes DsRed- Reportersystem etabliert und der Versuch begonnen, eine darauf basierende transgene Maus zu generieren.
Neurons collect their inputs from other neurons by sending out arborized dendritic structures. However, the relationship between the shape of dendrites and the precise organization of synaptic inputs in the neural tissue remains unclear. Inputs could be distributed in tight clusters, entirely randomly or else in a regular grid-like manner. Here, we analyze dendritic branching structures using a regularity index R, based on average nearest neighbor distances between branch and termination points, characterizing their spatial distribution. We find that the distributions of these points depend strongly on cell types, indicating possible fundamental differences in synaptic input organization. Moreover, R is independent of cell size and we find that it is only weakly correlated with other branching statistics, suggesting that it might reflect features of dendritic morphology that are not captured by commonly studied branching statistics. We then use morphological models based on optimal wiring principles to study the relation between input distributions and dendritic branching structures. Using our models, we find that branch point distributions correlate more closely with the input distributions while termination points in dendrites are generally spread out more randomly with a close to uniform distribution. We validate these model predictions with connectome data. Finally, we find that in spatial input distributions with increasing regularity, characteristic scaling relationships between branching features are altered significantly. In summary, we conclude that local statistics of input distributions and dendrite morphology depend on each other leading to potentially cell type specific branching features.
RBFOX1 is a highly pleiotropic gene that contributes to several psychiatric and neurodevelopmental disorders. Both rare and common variants in RBFOX1 have been associated with several psychiatric conditions, but the mechanisms underlying the pleiotropic effects of RBFOX1 are not yet understood. Here we found that, in zebrafish, rbfox1 is expressed in spinal cord, mid- and hindbrain during developmental stages. In adults, expression is restricted to specific areas of the brain, including telencephalic and diencephalic regions with an important role in receiving and processing sensory information and in directing behaviour. To investigate the effect of rbfox1 deficiency on behaviour, we used rbfox1sa15940, a rbfox1 loss-of-function line. We found that rbfox1sa15940 mutants present hyperactivity, thigmotaxis, decreased freezing behaviour and altered social behaviour. We repeated these behavioural tests in a second rbfox1 loss-of-function line with a different genetic background, rbfox1del19, and found that rbfox1 deficiency affects behaviour similarly in this line, although there were some differences. rbfox1del19 mutants present similar thigmotaxis, but stronger alterations in social behaviour and lower levels of hyperactivity than rbfox1sa15940 fish. Taken together, these results suggest that rbfox1 deficiency leads to multiple behavioural changes in zebrafish that might be modulated by environmental, epigenetic and genetic background effects, and that resemble phenotypic alterations present in Rbfox1-deficient mice and in patients with different psychiatric conditions. Our study thus highlights the evolutionary conservation of rbfox1 function in behaviour and paves the way to further investigate the mechanisms underlying rbfox1 pleiotropy on the onset of neurodevelopmental and psychiatric disorders.
RBFOX1 is a highly pleiotropic gene that contributes to several psychiatric and neurodevelopmental disorders. Both rare and common variants in RBFOX1 have been associated with several psychiatric conditions, but the mechanisms underlying the pleiotropic effects of RBFOX1 are not yet understood. Here we found that, in zebrafish, rbfox1 is expressed in spinal cord, mid- and hindbrain during developmental stages. In adults, expression is restricted to specific areas of the brain, including telencephalic and diencephalic regions with an important role in receiving and processing sensory information and in directing behaviour. To investigate the effect of rbfox1 deficiency on behaviour, we used rbfox1sa15940, a rbfox1 loss-of-function line. We found that rbfox1sa15940 mutants present hyperactivity, thigmotaxis, decreased freezing behaviour and altered social behaviour. We repeated these behavioural tests in a second rbfox1 loss-of-function line with a different genetic background, rbfox1del19, and found that rbfox1 deficiency affects behaviour similarly in this line, although there were some differences. rbfox1del19 mutants present similar thigmotaxis, but stronger alterations in social behaviour and lower levels of hyperactivity than rbfox1sa15940 fish. Taken together, these results suggest that rbfox1 deficiency leads to multiple behavioural changes in zebrafish that might be modulated by environmental, epigenetic and genetic background effects, and that resemble phenotypic alterations present in Rbfox1-deficient mice and in patients with different psychiatric conditions. Our study thus highlights the evolutionary conservation of rbfox1 function in behaviour and paves the way to further investigate the mechanisms underlying rbfox1 pleiotropy on the onset of neurodevelopmental and psychiatric disorders.
Ziel der vorliegenden Arbeit war es, ausgewählte Gruppen der Dekapoden (brachyure Krabben, Einsiedler und Porzellankrebse) des PersischArabischen Golfes und des Golfes von Oman taxo nomischfaunistisch zu erfassen, eine Abschätzung des Artenreichtums und der Faunenzusam mensetzung vorzunehmen und die zoogeographischen Beziehungen innerhalb der Golfregion und zu anderen Teilen des westlichen Indischen Ozeans zu analysieren. Die Dekapodenfauna der Golfregion war -- im Gegensatz zur sehr viel besser untersuchten des Roten Meeres -- bislang Gegenstand vergleichsweise weniger wissenschaftlicher Arbeiten, und der faunistischtaxonomische Kenntnisstand stellte sich als entsprechend lückenhaft dar. Dies erwies sich einerseits als Problem bei der Beurteilung des Zustands von Lebensgemeinschaften und Folgeschäden nach der Ölkatastrophe von 1991, andererseits als Hindernis für Faunen vergleiche und zoogeographische Studien. Um vor allem die bislang wenig bearbeiteten eulitoralen Lebensräume wie Watten und Man groven, aber auch Korallenriffe, intensiv zu beproben, wurden Sammelreisen in verschiedene Teile des PersischArabischen Golfes und den Golf von Oman durchgeführt. Daneben wurde umfangreiches Museumsmaterial der bedeutenden Sammlungen aus der Golfregion taxonomisch untersucht, mit Material aus anderen Regionen verglichen und neu bewertet. Insgesamt konnte für den PersischArabischen Golf das Vorkommen von 188 Arten brachy urer Krabben, 20 Pagurideen (Einsiedlerkrebse) und 18 Porcellaniden (Porzellankrebse) eindeutig belegt werden; 43 Arten (37 Brachyuren, 4 Pagurideen und 2 Porcellaniden) wurden erstmals für den Golf nachgewiesen. Bei 11 dieser Neunachweise handelt es sich um bislang unbeschriebene Arten. Ein faunistischer Vergleich zu anderen Teilen des Indischen Ozeans zeigt, daß der Golf für die untersuchten Taxa insgesamt deutlich artenärmer als das Rote Meer oder die ostafrikanische Küste ist. Dies ist vor allem auf die geringere Ausdehnung und schlechtere Entwicklung von Korallenriffen sowie das Fehlen von Tiefwasserhabitaten, aber auch auf das Vorherrschen extre mer ökologischer Bedingungen in weiten Teilen des Golfes zurückzuführen. Zwischen verschie denen systematischen und ökologischen Gruppen bestehen allerdings große Unterschiede hinsichtlich des Artenreichtums. Während hartboden und korallenassoziierte Gruppen im Golf deutlich unterrepräsentiert sind, findet sich bei weichbodenbewohnenden Taxa eine vergleichs weise artenreiche Fauna. Besonders auffallend ist dabei der Artenreichtum der eulitoralen Ocypodidae, die mit 23 Arten im Golf eine weitaus höhere Artendiversität erreichen als im Roten Meer oder an der ostafrikanischen Küste und gemeinsam mit den ebenfalls vorwiegend in der Gezeitenzone leben den Grapsiden einen Schwerpunkt der Arbeit bildeten. Innerhalb der Golfregion zeigten sich für diese Familien große Unterschiede hinsichtlich des Artenreichtums und der Faunenzusammen setzung. Die Wattgebiete und Mangroven des nördlichen und des südöstlichen PersischArabi schen Golfes sowie des Golfes von Oman fallen dabei durch ihre sehr diverse Fauna auf. Stark verarmt ist dagegen die eulitorale Fauna des südwestlichen und westlichen Teils des Persisch Arabischen Golfes. Der Grund für diese Verarmung ist dabei vor allem im hohen Salzgehalt des küstennahen Wasserkörpers zu sehen. Die Ergebnisse der faunistischtaxonomischen Auswertungen ermöglichten eine zoogeogra phische Analyse, bei der die Dekapodenfauna sowohl auf ihre Homogenität innerhalb der Golf region, als auch auf ihre Beziehungen zu der aus anderen Teilen des Indischen Ozeans untersucht wurde. Hierzu wurden Endemismusraten und Verbreitungsmuster der aus dem Golf nachgewie senen Arten betrachtet sowie Faunenähnlichkeiten mit Hilfe multivariater statistischer Methoden analysiert. Zoogeographisch stellt sich die Dekapodenfauna der Golfregion als Mischung unterschied licher zoogeographischer Elemente dar. Dies reflektiert die Lage des Golfes am Übergang zwischen westlichem Indischen Ozean und indischer bzw. indomalaiischer Region. Die Endemis musraten liegen bei 6 % für Porcellaniden, 7 % für Brachyuren und rund 10 % für Pagurideen. Für keine der Gruppen läßt sich daraus eine Begründung für eine eigene Faunenprovinz oder ein Endemismuszentrum ableiten. Neben den Endemiten beinhaltet die Fauna Arten unterschied licher geographischer Beziehungen. Den größten Anteil stellen weit verbreitete Arten, die je nach Gruppe zwischen der Hälfte und zwei Dritteln der im Golf vorkommenden Arten ausmachen. Für die Einsiedlerkrebse sind daneben vor allem Arten aus dem Roten Meer und dem Golf von Aden von Bedeutung, was auf eine enge Beziehung der Pagurideenfauna zu diesen Gebieten hin weist. Dagegen sind für die Brachyuren indopakistanische und indomalaiische Arten von weit aus größerer Bedeutung, was eine größere Ähnlichkeit der Krabbenfauna zu der Pakistans und Indiens andeutet. Innerhalb der Golfregion ergaben sich für die Brachyurenfauna, insbesondere für Ocypodi den, deutliche Unterschiede hinsichtlich der zoogeographischen Beziehungen. Während der von östlichen Faunenelementen dominierte nördliche und östliche Golf kaum westliche Faunen elemente aufweist, stellen diese im südlichen Golf und vor allem im westlichen Teil des Golfes von Oman einen erheblichen Anteil an der Gesamtfauna. Getrennt werden diese beiden Gebiete durch die Bereiche des südlichen und westlichen Golfes, in denen die extrem hohen Salzgehalte eine wirksame Verbreitungsbarriere darstellen. Zumindest für einige Taxa ist demnach die Golf region nicht als einheitliche faunistischzoogeographische Region zu betrachten. Während der nördliche und östliche Teil des PersischArabischen Golfes zoogeographisch eng mit Pakistan verbunden sind, zeigen sein südlicher Teil und der westliche Golf von Oman engere Beziehungen zum Golf von Aden und dem Roten Meer. Aufgrund der vergleichsweise guten Dokumentation der Faunenzusammensetzung in ver schiedenen Teilen des Indischen Ozeans ließ sich für Ocypodiden und Grapsiden ein überregio naler Faunenvergleich mit Hilfe multivariater Analysenmethoden durchführen und eine zoogeo graphische Unterteilung des Indischen Ozeans vornehmen. Innerhalb des westlichen Teils des Indischen Ozeans lassen sich dabei drei Regionen aufgrund ihrer Faunenähnlichkeit voneinander abgrenzen. Dies sind -- eine ost/südostafrikanische Region, die von der Nordostküste Südafrikas bis nach Somalia reicht -- eine west/südarabische Region bestehend aus Rotem Meer, Golf von Aden, der südarabi schen Küste und dem westlichen Golf von Oman, die auch in den südöstlichen Persisch Arabischen Golf hineinzieht -- eine ostarabischpakistanische oder iranischpakistanische Region, die den nördlichen und östlichen Teil des PersischArabischen Golfes, den östlichen Golf von Oman sowie Pakistan und Nordwestindien umfaßt Hinsichtlich der Besiedlungsgeschichte des PersischArabischen Golfes zeigen die Ergebnisse, daß eine Besiedlung durch eulitorale Krabben zum größten Teil von der indischen Seite aus entlang der iranischen Küste stattgefunden haben muß, während später eingewanderte westliche Elemente aufgrund der massiven Salinitätsbarriere und der Strömungsverhältnisse auf den süd östlichsten Teil beschränkt blieben. Vor allem die Gezeitenzonen des PersischArabischen Golfes weisen teilweise sehr diverse Lebensgemeinschaften auf, deren Artenzusammensetzung in ihrer Mischung unterschiedlicher zoogeographischer Elemente einzigartig ist und den Einfluß verschiedener Wasserkörper auf den Golf anzeigt. Für die Ocypodiden führt dies zu einer hohen regionalen oder gammaDiversität sowie einer über reine Artendiversität hinausgehenden Diversität der Lebensgemeinschaften. Während sich die Folgen des Golfkriegs als weniger gravierend als ursprünglich befürchtet erwiesen haben, könnten Habitatzerstörung und schleichende Verschmutzung die Lebensgemein schaften des PersischArabischen Golfes irreparabel schädigen.
Dissecting the complexities of mammalian heart development and regenerative capacity require thorough understanding of the underlying molecular mechanisms through the expression pattern of proteins and post-translational modifications. To obtain insights intoactivated signaling pathways that control the cellular phenotype during postnatal heart development, we generated a comprehensive map of phosphorylation sites. In total we identified 21,261 phosphorylation sites and 8985 proteins in developing mouse hearts by mass spectrometry. The in-vivo SILAC (stable isotope labeling of amino acids in cell culture) approach allowed robust quantification of phosphorylation sites and proteins, which are regulated during heart development. We found several activated pathways involved in cell cycle regulation and detected numerous kinases and transcription factors to be regulated on protein and phosphopeptide level. Most strikingly, we identified a novel mitochondrial protein, known previously as Perm1, as a highly phosphorylated factor regulated during heart development. We renamed Perm1 as MICOS complex subunit Mic85 since it shows robust physical interaction with MICOS complex subunits, including Mitofilin (Mic60), Chchd3 (Mic19), Chchd6 (Mic25) and the outer membrane protein Samm50. Moreover, Mic85 is localized to the mitochondrial inner membrane facing the intermembrane space and the dynamics of Mic85 protein expression is regulated by the ubiquitin-proteasomal system through phosphorylation of casein kinase 2 on its PEST motif. Silencing of Mic85 in cultured neonatal cardiomyocytes impairs mitochondrial morphology and compromises oxidative capacity. Our findings support a clear role for Mic85 in the maintenance of mitochondrial architecture and in its contribution to enhanced energetics during developing and adult mouse cardiomyocytes. The transgenic Mic85 knockout mouse generated with a GFP knock-in will support future in vivo investigations on the integrity of mitochondria and the function of Mic85 in cardiac development.
Attitude polarization describes an increasing attitude difference between groups and is increasingly recognized as a multidimensional phenomenon. However, a unified framework to study polarization across multiple dimensions is lacking. We introduce the attitudinal space framework (ASF) to fully quantify attitudinal diversity. We highlight two key measures—attitudinal extremization and attitudinal dispersion—to quantify across- and within-group attitudinal patterns. First, we show that affective polarization in the US electorate is weaker than previously thought based on mean differences alone: in both Democrat and Republican partisans, attitudinal dispersion increased between 1988 and 2008. Second, we examined attitudes toward wolves in Germany. Despite attitude differences between regions with and without wolves, we did not find differences in attitudinal extremization or dispersion, suggesting only weak attitude polarization. These results illustrate how the ASF is applicable to a wide range of social systems and offers an important avenue to understanding societal transformations.
Large carnivores often impact human livelihoods and well‐being. Previous research has mostly focused on the negative impacts of large carnivores on human well‐being but has rarely considered the positive aspects of living with large carnivores. In particular, we know very little on people's direct experiences with large carnivores like personal encounters and on people's awareness and tolerance toward their exposure to large carnivores. Here, we focus on the wolf (Canis lupus), and report on a phone survey in Germany. We examined whether encounters with wolves were positive or negative experiences and quantified people's awareness and tolerance related to their exposure to wolves. We found that the majority of people reported positive experiences when encountering wolves, regardless of whether wolves were encountered in the wild within Germany, in the wild abroad, or in captivity. The frequency of encounters did not affect the probability to report positive, neutral, or negative experiences. Moreover, people in Germany expressed a high tolerance of living in close vicinity to wolves. These findings are novel and important because they highlight the positive aspects of living in proximity with large carnivores in human‐dominated landscapes.
Southern African protected areas (PAs) harbour a great diversity of animals, which represent a large potential for wildlife tourism. In this region, global change is expected to result in vegetation changes, such as bush encroachment and increases in vegetation density. However, little is known on the influence of vegetation structure on wildlife tourists’ wildlife viewing experience and satisfaction. In this study, we collected data on vegetation structure and perceived mammal densities along 196 road transects (each 5 km long) and conducted a social survey with 651 questionnaires across four PAs in three Southern African countries. Our objectives were 1) to assess visitors’ attitude towards vegetation, 2) to test the influence of perceived mammal density and vegetation structure on the easiness to spot animals, and 3) on visitors’ satisfaction during their visit to PAs. Using a Boosted Regression Tree procedure, we found mostly negative non-linear relationships between vegetation density and wildlife tourists’ experience, and positive relationships between perceived mammal densities and wildlife tourists’ experience. In particular, wildlife tourists disliked road transects with high estimates of vegetation density. Similarly, the easiness to spot animals dropped at thresholds of high vegetation density and at perceived mammal densities lower than 46 individuals per road transect. Finally, tourists’ satisfaction declined linearly with vegetation density and dropped at mammal densities smaller than 26 individuals per transect. Our results suggest that vegetation density has important impacts on tourists’ wildlife viewing experience and satisfaction. Hence, the management of PAs in savannah landscapes should consider how tourists perceive these landscapes and their mammal diversity in order to maintain and develop a sustainable wildlife tourism.
A quantitative analysis of photoreceptor properties was performed in the retina of the nocturnal deer mouse, Peromyscus maniculatus, using pigmented (wildtype) and albino animals. The aim was to establish whether the deer mouse is a more suitable model species than the house mouse for photoreceptor studies, and whether oculocutaneous albinism affects its photoreceptor properties. In retinal flatmounts, cone photoreceptors were identified by opsin immunostaining, and their numbers, spectral types, and distributions across the retina were determined. Rod photoreceptors were counted using differential interference contrast microscopy. Pigmented P. maniculatus have a rod-dominated retina with rod densities of about 450.000/mm(2) and cone densities of 3000 - 6500/mm(2). Two cone opsins, shortwave sensitive (S) and middle-to-longwave sensitive (M), are present and expressed in distinct cone types. Partial sequencing of the S opsin gene strongly supports UV sensitivity of the S cone visual pigment. The S cones constitute a 5-15% minority of the cones. Different from house mouse, S and M cone distributions do not have dorsoventral gradients, and coexpression of both opsins in single cones is exceptional (<2% of the cones). In albino P. maniculatus, rod densities are reduced by approximately 40% (270.000/mm(2)). Overall, cone density and the density of cones exclusively expressing S opsin are not significantly different from pigmented P. maniculatus. However, in albino retinas S opsin is coexpressed with M opsin in 60-90% of the cones and therefore the population of cones expressing only M opsin is significantly reduced to 5-25%. In conclusion, deer mouse cone properties largely conform to the general mammalian pattern, hence the deer mouse may be better suited than the house mouse for the study of certain basic cone properties, including the effects of albinism on cone opsin expression.
Camellia sinensis is one of the major crops grown in Taiwan and has been widely cultivated around the island. Tea leaves are prone to various fungal infections, and leaf spot is considered one of the major diseases in Taiwan tea fields. As part of a survey on fungal species causing leaf spots on tea leaves in Taiwan, 19 fungal strains morphologically similar to the genus Diaporthe were collected. ITS (internal transcribed spacer), tef1-α (translation elongation factor 1-α), tub2 (beta-tubulin), and cal (calmodulin) gene regions were used to construct phylogenetic trees and determine the evolutionary relationships among the collected strains. In total, six Diaporthe species, including one new species, Diaporthe hsinchuensis, were identified as linked with leaf spot of C. sinensis in Taiwan based on both phenotypic characters and phylogeny. These species were further characterized in terms of their pathogenicity, temperature, and pH requirements under laboratory conditions. Diaporthe tulliensis, D. passiflorae, and D. perseae were isolated from C. sinensis for the first time. Furthermore, pathogenicity tests revealed that, with wound inoculation, only D. hongkongensis was pathogenic on tea leaves. This investigation delivers the first assessment of Diaporthe taxa related to leaf spots on tea in Taiwan.
Spinocerebellar ataxia type 2 (SCA2) is caused by polyglutamine expansion in Ataxin-2 (ATXN2). This factor binds RNA/proteins to modify metabolism after stress, and to control calcium (Ca2+) homeostasis after stimuli. Cerebellar ataxias and corticospinal motor neuron degeneration are determined by gain/loss in ATXN2 function, so we aimed to identify key molecules in this atrophic process, as potential disease progression markers. Our Atxn2-CAG100-Knock-In mouse faithfully models features observed in patients at pre-onset, early and terminal stages. Here, its cerebellar global RNA profiling revealed downregulation of signaling cascades to precede motor deficits. Validation work at mRNA/protein level defined alterations that were independent of constant physiological ATXN2 functions, but specific for RNA/aggregation toxicity, and progressive across the short lifespan. The earliest changes were detected at three months among Ca2+ channels/transporters (Itpr1, Ryr3, Atp2a2, Atp2a3, Trpc3), IP3 metabolism (Plcg1, Inpp5a, Itpka), and Ca2+-Calmodulin dependent kinases (Camk2a, Camk4). CaMKIV–Sam68 control over alternative splicing of Nrxn1, an adhesion component of glutamatergic synapses between granule and Purkinje neurons, was found to be affected. Systematic screening of pre/post-synapse components, with dendrite morphology assessment, suggested early impairment of CamKIIα abundance together with the weakening of parallel fiber connectivity. These data reveal molecular changes due to ATXN2 pathology, primarily impacting excitability and communication.
In dieser Arbeit, deren Hauptanliegen die Erstellung eines pflanzensoziologischen Systems war, wurde die Segetalvegetation der Sudanzone Westafrikas durch vegetationskundliche Aufnahmen erfasst. Zu den Aufnahmen wurden Bodenproben entnommen und Befragungen über die Anbaumethoden sowie Nutzung der Segetalarten durchgeführt. Um ein repräsentatives Bild der Segetalvegetation zu erreichen, wurden Regionen in Burkina Faso, Nigeria, Benin, Senegal und Mali zur Analyse ausgewählt, die in der Süd-, Nordsudanzone sowie in angrenzenden Gebieten der Sahelzone lagen. 601 Arten aus 70 Familien wurden identifiziert. Vier Familien, nämlich Poaceae, Leguminosae- Papilionaceae, Cyperaceae und Asteraceae dominieren in der Segetalflora und stellen die Hälfte der Arten, während die übrigen Familien, mit oft nur einem Vertreter, weniger repräsentiert sind. Corchorus tridens, Mitracarpus scaber und Leucas martinicensis, die drei häufigsten Segetalarten in der Sudanzone stammen jedoch nicht aus den vier oben genannten Familien. Die meisten Arten sind Therophyten und haben eine in den Tropen eingeschränkte Verbreitung. Es sind entweder pantropische (42 %), afrikanische Arten (32) oder paläeotropische Arten (20 %). Aus den 1120 Aufnahmen wurden 65 Gesellschaften beschrieben. Ein Vergleich dieser Gesellschaften führte zur Erarbeitung einer synoptischen Tabelle, deren Einheiten zur Herausarbeitung von pflanzensoziologischen Syntaxa dienten. Dabei wurden die bis dato beschriebenen Einheiten der Segetal- sowie Ruderalvegetation in den Tropen zum Vergleich einbezogen. Ein pflanzensoziologisches System der Segetalvegetation in der Sudanzone wurde erstellt. Zwei neue Klassen wurden definiert: die Leucetea martinicensis und die Caperonietea palustris. Die Leucetea martinicensis kommen auf den trockenen Böden vor und enthalten zwei Ordnungen: die Commelinietalia benghalensis auf gedüngten und die Polycarpeaetalia corymbosae auf ungedüngten Feldern. Die Commelinietalia benghalensis bestehen aus zwei Verbänden, dem Celosion trigynae und dem Tridaxion procumbentis. Der erste Verband ist sowohl in der Nord- als in der Südsudanzone anzutreffen, während der zweite nur in der Südsudanzone zu beobachten ist. Die Polycarpeaetalia corymbosae beinhalten drei Verbände: das Brachiarion distichophyllae, das Merremion tridentatae und das Jacquemontion tamnifoliae. Das Brachiarion distichophyllae kommt überall in der Sudanzone vor und bevorzugt die häufigen pisolithenreichen Böden. Das Merremion tridentatae ist auch in der gesamten Sudanzone verbreitet. Es ist überwiegend auf ausgesprochen sandigen Böden zu finden. Das Jacquemontion tamnifoliae hat einen eindeutigen Schwerpunkt in der Sahelzone und den Übergangsgebieten zur Sudanzone. Das ist der Verband, der auf den Hirsefeldern der Dünen in der Sahelzone wächst. Die Caperonietea palustris sind eine edaphisch stark geprägte Klasse. Sie wachsen auf den extrem tonreichen Vertisolen. Da diese eine Seltenheit in der Sudanzone sind, stellen die Caperonietea palustris eine ganz besondere Vegetation in der Sudanzone dar. Darin wurden zwei Assoziationen beschrieben: das Sorghetum arundinaceum und das Hygrophiletum auriculatae. Die Segetalvegetation auf den Reisfeldern in den Senken gehört zur neuen Ordnung Melochietalia corchorifoliae, die den Phragmitetea TÜXEN
Hereditary Parkinson’s disease (PD) can be triggered by an autosomal dominant overdose of alpha-Synuclein (SNCA) as stressor or the autosomal recessive deficiency of PINK1 Serine/Threonine-phosphorylation activity as stress-response. We demonstrated the combination of PINK1-knockout with overexpression of SNCAA53T in double mutant (DM) mice to exacerbate locomotor deficits and to reduce lifespan. To survey posttranslational modifications of proteins underlying the pathology, brain hemispheres of old DM mice underwent quantitative label-free global proteomic mass spectrometry, focused on Ser/Thr-phosphorylations. As an exceptionally strong effect, we detected >300-fold reductions of phosphoThr1928 in MAP1B, a microtubule-associated protein, and a similar reduction of phosphoSer3781 in ANK2, an interactor of microtubules. MAP1B depletion is known to trigger perturbations of microtubular mitochondria trafficking, neurite extension, and synaptic function, so it was noteworthy that relevantly decreased phosphorylation was also detected for other microtubule and microfilament factors, namely MAP2S1801, MARK1S394, MAP1AT1794, KIF1AS1537, 4.1NS541, 4.1GS86, and ADD2S528. While the MAP1B heavy chain supports regeneration and growth cones, its light chain assists DAPK1-mediated autophagy. Interestingly, relevant phosphorylation decreases of DAPK2S299, VPS13DS2429, and VPS13CS2480 in the DM brain affected regulators of autophagy, which are implicated in PD. Overall, significant downregulations were enriched for PFAM C2 domains, other kinases, and synaptic transmission factors upon automated bioinformatics, while upregulations were not enriched for selective motifs or pathways. Validation experiments confirmed the change of LC3 processing as reflection of excessive autophagy in DM brain, and dependence of ANK2/MAP1B expression on PINK1 levels. Our new data provide independent confirmation in a mouse model with combined PARK1/PARK4/PARK6 pathology that MAP1B/ANK2 phosphorylation events are implicated in Parkinsonian neurodegeneration. These findings expand on previous observations in Drosophila melanogaster that the MAP1B ortholog futsch in the presynapse is a primary target of the PARK8 protein LRRK2, and on a report that MAP1B is a component of the pathological Lewy body aggregates in PD patient brains. Similarly, ANK2 gene locus variants are associated with the risk of PD, ANK2 interacts with PINK1/Parkin-target proteins such as MIRO1 or ATP1A2, and ANK2-derived peptides are potent inhibitors of autophagy.
Extremophilic prokaryotes live under harsh environmental conditions which require far-reaching cellular adaptations. The acquisition of novel genetic information via natural transformation plays an important role in bacterial adaptation. This mode of DNA transfer permits the transfer of genetic information between microorganisms of distant evolutionary lineages and even between members of different domains. This phenomenon, known as horizontal gene transfer (HGT), significantly contributes to genome plasticity over evolutionary history and is a driving force for the spread of fitness-enhancing functions including virulence genes and antibiotic resistances. In particular, HGT has played an important role for adaptation of bacteria to extreme environments. Here, we present a survey of the natural transformation systems in bacteria that live under extreme conditions: the thermophile Thermus thermophilus and two desiccation-resistant members of the genus Acinetobacter such as Acinetobacter baylyi and Acinetobacter baumannii. The latter is an opportunistic pathogen and has become a world-wide threat in health-care institutions. We highlight conserved and unique features of the DNA transporter in Thermus and Acinetobacter and present tentative models of both systems. The structure and function of both DNA transporter are described and the mechanism of DNA uptake is discussed.
Extremophilic prokaryotes live under harsh environmental conditions which require far-reaching cellular adaptations. The acquisition of novel genetic information via natural transformation plays an important role in bacterial adaptation. This mode of DNA transfer permits the transfer of genetic information between microorganisms of distant evolutionary lineages and even between members of different domains. This phenomenon, known as horizontal gene transfer (HGT), significantly contributes to genome plasticity over evolutionary history and is a driving force for the spread of fitness-enhancing functions including virulence genes and antibiotic resistances. In particular, HGT has played an important role for adaptation of bacteria to extreme environments. Here, we present a survey of the natural transformation systems in bacteria that live under extreme conditions: the thermophile Thermus thermophilus and two desiccation-resistant members of the genus Acinetobacter such as Acinetobacter baylyi and Acinetobacter baumannii. The latter is an opportunistic pathogen and has become a world-wide threat in health-care institutions. We highlight conserved and unique features of the DNA transporter in Thermus and Acinetobacter and present tentative models of both systems. The structure and function of both DNA transporter are described and the mechanism of DNA uptake is discussed.
Nematophilic bacteria as a source of novel macrocyclised antimicrobial non-ribosomal peptides
(2020)
A solution to ineffective clinical antimicrobials is the discovery of new ones from under-explored sources such as macrocyclic non-ribosomal peptides (NRP) from nematophilic bacteria. In this dissertation an antimicrobial discovery process –from soil sample to inhibitory peptide– is demonstrated through investigations on six nematophilic bacteria: Xenorhabdus griffiniae XN45, X. griffiniae VH1, Xenorhabdus sp. nov. BG5, Xenorhabdus sp. nov. BMMCB, X. ishibashii and Photorhabdus temperata. To demonstrate the first step of bacterium isolation and species delineation, endosymbionts were isolated from Steinernema sp. strains BG5 and VH1 that were isolated directly from soil samples in Western Kenya. After genome sequencing and assembly of novel Xenorhabdus isolates VH1 and BG5, species delineation was done via three overall genome relatedness indices. VH1 was identified as X. griffiniae VH1, BG5 as Xenorhabdus sp. nov. BG5 and X. griffiniae BMMCB was emended to Xenorhabdus sp. nov. BMMCB. The nematode host of X. griffiniae XN45, Steinernema sp. scarpo was highlighted as a putative novel species. To demonstrate the second step of genome mining and macrocyclic non-ribosomal peptide structure elucidation, chemosynthesis and biosynthesis, the non-ribosomal peptide whose production is encoded by the ishA-B genes in X. ishibashii was investigated. Through a combination of refactoring the ishA-B operon by a promoter exchange mechanism, isotope labelling experiments, high resolution tandem mass spectrometry analysis, bioinformatic protein domain analysis and chemoinformatic comparisons of actual to hypothetical mass spectrometry spectra, the structures of Ishipeptides were elucidated and confirmed by chemical synthesis. Ishipeptide A was a branch cyclic depsidodecapeptide macrocyclised via an ester bond between serine and the terminal glutamate. It chemosynthesis route was via a late stage macrolactamation and linearised Ishipeptide B was synthesised via solid phase iterative synthesis. Ishipeptides were not N-terminally acylated despite being biosynthesised from the IshA protein that had a C-starter domain. It was highlighted that more than restoration of the histidine active site of this domain is required to restore N-terminal acylation activity.
To demonstrate the final step of determination of antimicrobial activity, minimum inhibitory concentrations of Ishipeptides and Photoditritide from Photorhabdus temperata against fungi and bacteria were determined. None were antifungal while only the macrocyclic compounds were inhibitory, with Ishipeptide A inhibitory to Gram-positive bacteria at 37 µM. The cationic Photoditritide, a cyclic hexapeptide macrocyclised via a lactam bond between homoarginine and tryptophan, was 12 times more inhibitory (3.0 µM), even more effective than a current clinical compound, Ampicillin (4.2 µM). For both, macrocyclisation was hypothesised to contribute to antimicrobial activity. Ultimately, this dissertation demonstrated not only nematophilic bacteria as a source of novel macrocyclic antimicrobial non-ribosomal peptides but also a process of antimicrobial discovery–from soil sample to inhibitory peptide– from these useful bacteria genera. This is significant for the fight against antimicrobial resistance.
Nematophilic bacteria as a source of novel macrocyclised antimicrobial non-ribosomal peptides
(2020)
A solution to ineffective clinical antimicrobials is the discovery of new ones from under-explored sources such as macrocyclic non-ribosomal peptides (NRP) from nematophilic bacteria. In this dissertation an antimicrobial discovery process –from soil sample to inhibitory peptide– is demonstrated through investigations on six nematophilic bacteria: Xenorhabdus griffiniae XN45, X. griffiniae VH1, Xenorhabdus sp. nov. BG5, Xenorhabdus sp. nov. BMMCB, X. ishibashii and Photorhabdus temperata. To demonstrate the first step of bacterium isolation and species delineation, endosymbionts were isolated from Steinernema sp. strains BG5 and VH1 that were isolated directly from soil samples in Western Kenya. After genome sequencing and assembly of novel Xenorhabdus isolates VH1 and BG5, species delineation was done via three overall genome relatedness indices. VH1 was identified as X. griffiniae VH1, BG5 as Xenorhabdus sp. nov. BG5 and X. griffiniae BMMCB was emended to Xenorhabdus sp. nov. BMMCB. The nematode host of X. griffiniae XN45, Steinernema sp. scarpo was highlighted as a putative novel species. To demonstrate the second step of genome mining and macrocyclic non-ribosomal peptide structure elucidation, chemosynthesis and biosynthesis, the non-ribosomal peptide whose production is encoded by the ishA-B genes in X. ishibashii was investigated. Through a combination of refactoring the ishA-B operon by a promoter exchange mechanism, isotope labelling experiments, high resolution tandem mass spectrometry analysis, bioinformatic protein domain analysis and chemoinformatic comparisons of actual to hypothetical mass spectrometry spectra, the structures of Ishipeptides were elucidated and confirmed by chemical synthesis. Ishipeptide A was a branch cyclic depsidodecapeptide macrocyclised via an ester bond between serine and the terminal glutamate. It chemosynthesis route was via a late stage macrolactamation and linearised Ishipeptide B was synthesised via solid phase iterative synthesis. Ishipeptides were not N-terminally acylated despite being biosynthesised from the IshA protein that had a C-starter domain. It was highlighted that more than restoration of the histidine active site of this domain is required to restore N-terminal acylation activity.
To demonstrate the final step of determination of antimicrobial activity, minimum inhibitory concentrations of Ishipeptides and Photoditritide from Photorhabdus temperata against fungi and bacteria were determined. None were antifungal while only the macrocyclic compounds were inhibitory, with Ishipeptide A inhibitory to Gram-positive bacteria at 37 µM. The cationic Photoditritide, a cyclic hexapeptide macrocyclised via a lactam bond between homoarginine and tryptophan, was 12 times more inhibitory (3.0 µM), even more effective than a current clinical compound, Ampicillin (4.2 µM). For both, macrocyclisation was hypothesised to contribute to antimicrobial activity. Ultimately, this dissertation demonstrated not only nematophilic bacteria as a source of novel macrocyclic antimicrobial non-ribosomal peptides but also a process of antimicrobial discovery–from soil sample to inhibitory peptide– from these useful bacteria genera. This is significant for the fight against antimicrobial resistance.
We have reported previously that Short Interspersed Degenerate Retroposons of the SIDER2 subfamily, largely located within 3'UTRs of Leishmania transcripts, promote rapid turnover of mRNAs through endonucleolytic cleavage within the highly conserved second tandem 79-nt hallmark sequence (79-nt SII). Here, we used site-directed mutagenesis and in silico RNA structural studies to delineate the cis-acting requirements within 79-nt SII for cleavage and mRNA degradation. The putative cleavage site(s) and other nucleotides predicted to alter the RNA secondary structure of 79-nt SII were either deleted or mutated and their effect on mRNA turnover was monitored using a gene reporter system. We found that short deletions of 8-nt spanning the two predicted cleavage sites block degradation of SIDER2-containing transcripts, leading to mRNA accumulation. Furthermore, single or double substitutions of the dinucleotides targeted for cleavage as well as mutations altering the predicted RNA secondary structure encompassing both cleavage sites also prevent mRNA degradation, confirming that these dinucleotides are the bona fide cleavage sites. In line with these results, we show that stage-regulated SIDER2 inactivation correlates with the absence of endonucleolytic cleavage. Overall, these data demonstrate that both cleavage sites within the conserved 79-nt SII as well as RNA folding in this region are essential for SIDER2-mediated mRNA decay, and further support that SIDER2-harboring transcripts are targeted for degradation by endonucleolytic cleavage.
Background: Differential RNA-Seq (dRNA-Seq) is a recently developed method of performing primary transcriptome analyses that allows for the genome-wide mapping of transcriptional start sites (TSSs) and the identification of novel transcripts. Although the transcriptomes of diverse bacterial species have been characterized by dRNA-Seq, the transcriptome analysis of archaeal species is still rather limited. Therefore, we used dRNA-Seq to characterize the primary transcriptome of the model archaeon Haloferax volcanii.
Results: Three independent cultures of Hfx. volcanii grown under optimal conditions to the mid-exponential growth phase were used to determine the primary transcriptome and map the 5′-ends of the transcripts. In total, 4749 potential TSSs were detected. A position weight matrix (PWM) was derived for the promoter predictions, and the results showed that 64 % of the TSSs were preceded by stringent or relaxed basal promoters. Of the identified TSSs, 1851 belonged to protein-coding genes. Thus, fewer than half (46 %) of the 4040 protein-coding genes were expressed under optimal growth conditions. Seventy-two percent of all protein-coding transcripts were leaderless, which emphasized that this pathway is the major pathway for translation initiation in haloarchaea. A total of 2898 of the TSSs belonged to potential non-coding RNAs, which accounted for an unexpectedly high fraction (61 %) of all transcripts. Most of the non-coding TSSs had not been previously described (2792) and represented novel sequences (59 % of all TSSs). A large fraction of the potential novel non-coding transcripts were cis-antisense RNAs (1244 aTSSs). A strong negative correlation between the levels of antisense transcripts and cognate sense mRNAs was found, which suggested that the negative regulation of gene expression via antisense RNAs may play an important role in haloarchaea. The other types of novel non-coding transcripts corresponded to internal transcripts overlapping with mRNAs (1153 iTSSs) and intergenic small RNA (sRNA) candidates (395 TSSs).
Conclusion: This study provides a comprehensive map of the primary transcriptome of Hfx. volcanii grown under optimal conditions. Fewer than half of all protein-coding genes have been transcribed under these conditions. Unexpectedly, more than half of the detected TSSs belonged to several classes of non-coding RNAs. Thus, RNA-based regulation appears to play a more important role in haloarchaea than previously anticipated.
Reggie-1 (flotillin-2) and reggie-2 (flotillin-1) are membrane microdomain proteins which are associated with the membrane by means of acylation. They influence different cellular signaling processes, such as neuronal, T-cell and insulin signaling. Upon stimulation of the EGF receptor, reggie-1 becomes phosphorylated and undergoes tyrosine 163 dependent translocation from the plasma membrane to endosomal compartments. In addition, reggie-1 was shown to influence actindependent processes. Reggie-2 has been demonstrated to affect caveolin- and clathrin-independent endocytosis. Both proteins form homo- and hetero-oligomers, but the function of these oligomers has remained elusive. Moreover, it has not been clarified if functions of reggie-1 are also influenced by reggie-2 and vice versa. The first aim of the study was to further investigate the interplay and the heterooligomerization of reggie proteins and their functional effects. Both reggie proteins were individually depleted by means of siRNA. In different siRNA systems and various cell lines, reggie-1 depleted cells showed reduced protein amounts of reggie-1 and reggie-2, but reggie-2 knock down cells still expressed reggie-1 protein. The decrease of reggie-2 in reggie-1 depleted cells was only detected at protein but not at mRNA level. Furthermore, reggie-2 expression could be rescued by expression of siRNA resistant wild type reggie-1-EGFP constructs, but not by the soluble myristoylation mutant G2A. This mutant was also not able to associate with endogenous reggie-1 or reggie-2, which demonstrates that membrane association of reggie-1 is necessary for hetero-oligomerization. In addition, fluorescence microscopy studies and membrane fractionations showed that correct localization of overexpressed reggie-2 was dependent on co-overexpressed reggie-1. Thus, hetero-oligomerization is crucial for membrane association of reggie-2 and for its protein stability or protein expression. Moreover, the binding of reggie-2 to reggie-1 required tyrosine 163 of reggie-1 which was previously shown to be important for endosomal translocation of reggie-1. Since reggie-2 was implicated to function in clathrin- and caveolin-independent endocytosis pathways, the effect of reggie-2 depletion on reggie-1 endocytosis was investigated. Indeed, reggie-1 was dependent on reggie-2 for endosomal localization and EGF-induced endocytosis. By FRET-FLIM analysis it could be shown that reggie heterooligomers are dynamic in size or conformation upon EGF stimulation. Thus, it can be concluded that reggie proteins are interdependent in different aspects, such as protein stability or expression, membrane association and subcellular localization. In addition, these results demonstrate that the hetero-oligomers are dynamic and reggie proteins influence each other in terms of function. A further aim was the characterization of reggie-1 and reggie-2 function in actindependent processes, where so far only reggie-1 was known to play a role. Depletion of either of the proteins reduced cell migration, cell spreading and the number of focal adhesions in steady state cells. Thus, also reggie-2 affects actin-dependent processes. Further investigation of the focal adhesions during cell spreading revealed that depletion of reggie-1 displayed different effects as compared to reggie-2 knock down. Reggie-1 depleted cells had elongated cell-matrix-adhesions and showed reduced activation of FAK and ERK2. On the other hand, depletion of reggie-2 resulted in a restricted localization of focal adhesion at the periphery of the cell and decreased ERK2 phosphorylation, but it did not affect FAK autophosphorylation. Hence, reggie proteins influence the regulation of cell-matrix-adhesions differently. A link between reggie proteins and focal adhesions is the actin cross-linking protein -actinin. The interaction of -actinin with reggie-1 could be verified by means of co-immunoprecipitations and FRET-FLIM analysis. Reggie-1 binds -actinin especially in membrane ruffles and in other locations where actin remodeling takes place. Moreover, -actinin showed a different localization pattern during cell spreading in reggie-1 depleted cells, as compared to the control cells. These results provide further insights into the function of both reggie proteins. Their interplay and hetero-oligomerization was shown to be crucial for their role in endocytosis. In addition, both reggie proteins influence actin-dependent processes and differentially affect focal adhesion regulation.
Cytokine regulation of high-output nitric oxide (NO) derived from inducible NO synthase (iNOS) is critically involved in inflammation biology and host defense. Herein, we set out to characterize the role of type I interferon (IFN) as potential regulator of hepatic iNOS in vitro and in vivo. In this regard, we identified in murine Hepa1-6 hepatoma cells a potent synergism between pro-inflammatory interleukin-β/tumor necrosis factor-α and immunoregulatory IFNβ as detected by analysis of iNOS expression and nitrite release. Upregulation of iNOS by IFNβ coincided with enhanced binding of signal transducer and activator of transcription-1 to a regulatory region at the murine iNOS promoter known to support target gene expression in response to this signaling pathway. Synergistic iNOS induction under the influence of IFNβ was confirmed in alternate murine Hepa56.1D hepatoma cells and primary hepatocytes. To assess iNOS regulation by type I IFN in vivo, murine acetaminophen (APAP)-induced sterile liver inflammation was investigated. In this model of acute liver injury, excessive necroinflammation drives iNOS expression in diverse liver cell types, among others hepatocytes. Herein, we demonstrate impaired iNOS expression in type I IFN receptor-deficient mice which associated with diminished APAP-induced liver damage. Data presented indicate a vital role of type I IFN within the inflamed liver for fine-tuning pathological processes such as overt iNOS expression.
Die akute myeloische Leukämie (AML) ist eine aggressive Erkrankung des Knochenmarks, welche die Hämatopoese beeinträchtigt und zu Knochenmarksversagen führt. Trotz des Fortschritts in der AML-Therapie bleibt die Prognose für die meisten Patienten schlecht, sodass neue Therapieansätze für die Behandlung dringend benötigt werden. Autophagie, ein kataboler Abbauprozess von zellulären Komponenten, ist nachweislich an der Entstehung von AML beteiligt. Als zentraler Regulator von Zellüberleben, Homöostase und Stoffwechsel, dient die Autophagie als Nährstoffquelle durch die Wiederverwertung von Makromolekülen während begrenzter Energieversorgung. AML-Zellen benötigen ein konstantes Nährstoff- und Energieniveau, um ihre Vermehrung aufrechtzuerhalten. Dies wird durch eine Umstellung von Stoffwechselwegen, insbesondere des mitochondrialen Stoffwechsels einschließlich der oxidativen Phosphorylierung (OXPHOS) und des Tricarbonsäurezyklus (TCA), erreicht.
Mehrere Studien haben die Hemmung der Autophagie für die Behandlung von Krebs als vielversprechenden Ansatz vorgestellt. Doch eine Monotherapie mit Autophagie-Inhibitoren erzielte nur eine geringfügige Wirksamkeit. Eine mögliche Erklärung hierfür ist die Entstehung von Kompensationsmechanismen, die zum Ausgleich der Autophagie-Hemmung in Krebszellen entstehen. Bis heute sind diese Kompensationsmechanismen kaum untersucht. Ziel dieser Arbeit ist es, ein geeignetes Autophagie-Gen zu identifizieren, mit dem sich die Rolle der Autophagie-Hemmung für das Überleben von AML-Zellen untersuchen lässt. Zusätzlich sollen die kompensatorischen Mechanismen, die durch die Autophagie-Hemmung in AML-Zellen entstehen können, untersucht werden, um neue metabolische Angriffspunkte zu identifizieren, die für Kombinationstherapien genutzt werden können.
Zu Beginn der Arbeit wurde ein gezielter CRISPR/Cas9 Screen in zwei humanen AML-Zelllinien durchgeführt, um Autophagie-Gene zu identifizieren, deren Verlust eine Proliferationsstörung in AML-Zellen verursacht, welche überwunden werden kann. Validierungsexperimente zeigten, dass der Verlust von ATG3 das Zellwachstum signifikant verminderte. Außerdem zeigte die Messung des Autophagie-Fluxes, dass der Verlust von ATG3 die Autophagie stark beeinträchtigte. Dies wurde durch eine Western-Blot-Analyse, die eine beeinträchtigte LC3-Lipidierung zeigte, und durch eine Immunfluoreszenzanalyse der Autophagosomen-Bildung mittels konfokaler Mikroskopie, die eine geringere Anzahl von Autophagosomen in ATG3-defizienten Zellen ergab, bestätigt. Deshalb wurde der Knockdown von ATG3 in AML Zellen verwendet, um die Mechanismen, die zum Ausgleichen der Autophagie-Hemmung entstehen, zu untersuchen. Zuerst wurde die Zellproliferation in fünf verschiedenen AML Zelllinien über sieben Tage betrachtet. In allen Zellenlinien führte der Verlust von ATG3 mittels small hairpin RNA zu verminderter Zellproliferation. Diese Ergebnisse zeigen die wichtige Rolle von ATG3 in der Autophagie und dass Autophagie-Hemmung durch ATG3-Verlust das Wachstum von AML-Zellen beeinträchtigt.
Da der Verlust von ATG3 die Proliferation von AML-Zellen beeinträchtigte, wurde eine Zellzyklusanalyse durchgeführt. Eine reduzierte S-Phase bestätigte die verminderte Proliferation in ATG3-depletierten AML-Zellen, doch der Zellzyklus war grundsätzlich nicht gestoppt. Darüber hinaus ergab die Analyse der Apoptose, dass diese unter dem Verlust von ATG3 erhöht war, aber etwa 50% der Zellen blieben vital. Diese Beobachtungen deuten darauf hin, dass AML-Zellen trotz des Verlusts der ATG3-abhängigen Autophagie weiter proliferieren können.
Um die Mechanismen zur Kompensation der Autophagie-Hemmung zu untersuchen, wurden die Auswirkungen des ATG3-Verlusts auf die mitochondriale Homöostase untersucht. Die Mitophagie sowie das mitochondriale Membranpotenzial und die Masse unterschieden sich zwischen Kontroll- und ATG3-depletierten AML-Zellen nicht, was darauf hindeutet, dass die mitochondriale Homöostase durch den Verlust von ATG3 nicht beeinträchtigt ist. Als nächstes wurde die mitochondriale Funktion durch Messung des ATP-Spiegels und der OXPHOS untersucht. Die ATP-Level und die OXPHOS waren nach dem Verlust von ATG3 in AML-Zellen erhöht, was auf eine gesteigerte mitochondriale Aktivität bei Autophagie-Defizienz hinweist.
Young poplar cuttings (Populus nigra L. cv. Loenen and P. maximowiczii Henry x P. nigra L. cv. Rochester) were exposed for six weeks in open-top chambers to realistic concentrations of pollutant mixtures: 1) control; 2) SO2/NOx; 3)O3/ NOx and 4)SO2/O3/NOx. In this sequence of fumigation variants, the degree of influence of the various parameters of the nitrogen metabolism and of premature leaf drop increased very frequently compared to the control plants, P. nigra L. proving to be the more sensitive species.
The elevated Kjeldahl nitrogen content of the fumigated leaves was accompanied by either an increase in free amino acids or in total protein or, in the case of particularly large rises (SO2/O3/NOx variants), by increases in both substance groups. Proteolytic processes as a cause of the elevated content of free amino acids could be excluded to a large extent. A diminished de novo synthesis of proteins obviously led to a shift in the amino acid/protein relationship. In the younger fumigated leaves, the total concentration of free amino acids exceeded the values of the older leaves. The elevated amino acid content of the fumigated leaves was produced to a high degree by the glycolate pathway and the Krebs cycle. The increased turnover of the carbon skeletons was connected with a drastic starch degradation, especially in the older leaves.
The interaction of the amino acid and carbohydrate metabolisms is probably an important regulator in the promotion of rapid growth of young leaves in order to compensate premature leaf loss.
Mit der Optogenetik hat sich in der Neurowissenschaft eine Revolution vollzogen. Die Optogenetik erlaubt, Nervenzellen einfach mit Licht und mit bis dato nicht gekannter Genauigkeit zeitlich und räumlich elektrodenfrei an- und abzuschalten. Dies wird durch das Einbringen genetisch codierter Lichtschalter, sogenannter mikrobieller Rhodopsine, in den Nervenzellen erreicht. Die Methode, die in Frankfurt und in Regensburg ihren Ursprung genommen hat, wird heute in der Neurobiologie weltweit eingesetzt. Neben der Grundlagenforschung eröffnen sich dank der Optogenetik auch neue biomedizinische Perspektiven zur Gentherapie neurodegenerativer Krankheiten.
Seit mehr als 200 Jahren gibt es durch die Wissenschaftler der Wetterstation auf dem Hohenpeißenberg systematische Wetterbeobachtungen, doch erst seit wenigen Jahren gibt es unter den Klimaforschern einen Konsens, dass sich das Klima durch anthropogene Einflüsse schon verändert hat – und weiter verändern wird. Die bisherigen Auswirkungen, wie zum Beispiel ein globaler Temperaturanstieg von 0,85°C seit Beginn der Industrialisierung, sind heute gut belegbar. Mögliche zukünftige Entwicklungen des Klimas werden heute ebenso erforscht wie die Auswirkungen des Klimawandels auf Mensch und Umwelt. Zu diesen Auswirkungen gehören unter anderem Folgen für die Landwirtschaft. Durch veränderte Niederschläge und den Temperaturanstieg werden sich die Lebensbedingungen von Bodenorganismen und Anbaubedingungen für Pflanzen ändern. Letztendlich ist aufgrund dieser Veränderungen auch ein verstärkter Einsatz von Pestiziden zu erwarten. Allerdings wurde bisher kaum untersucht, ob der Einsatz von Pestiziden in der Landwirtschaft unter den Bedingungen des Klimawandels (konkret durch die Interaktion von klimatischen und chemischen Faktoren) ein erhöhtes Umweltrisiko für Bodenorganismen darstellt. Bisher werden klimatische Faktoren bei den Tests für die Zulassung von Pestiziden nicht berücksichtigt.
Daher wurde diese Fragestellung in der hier vorliegenden Dissertation am Beispiel der Effekte von zwei zugelassenen Pestiziden auf Bodenorganismen unter verschiedenen klimatischen Bedingungen untersucht. Konkret wurden dazu mit Labor- und Halbfreilandversuchen die Wirkung eines Insektizids und eines Fungizids in Interaktion von Temperatur und Bodenfeuchte auf Vertreter zweier Invertebratengruppen (Collembola: zwei Arten; Enchytraeidae: eine Art) untersucht.
In einem modifizierten Standardtest mit Collembolen erhöhte sich die Toxizität des Insektizids Lambda-Cyhalothrin, wenn die Exposition der beiden Arten bei einer erhöhten Bodenfeuchte stattfindet. Die kühl adaptierte Art Folsomia candida reagierte bei erhöhter Testtemperatur am empfindlichsten auf diese Testsubstanz: Die EC50 aus diesem Experiment lag bei 2,84 mg (a.s.)/kg Boden Trockengewicht (dw). Unter Standardbedingungen, wie sie in Tests für die Zulassung von Pestiziden angewandt werden, lag die EC50 von F. candida dagegen bei 8,65 mg a.s./kg dw.
Unter den gleichen Versuchsbedingungen wurde auch das Fungizid Pyrimethanil an Collembolen getestet. Hier erwies sich die Testsubstanz für beide Arten bei
gleichzeitigem Trockenstress und / oder erhöhter Temperatur als toxischer im Vergleich zu den Standard-Testbedingungen. Dabei zeigte F. candida mit einer EC50 von 28,3 mg a.s./kg dw die höchste Empfindlichkeit. Ohne die veränderten klimatischen Faktoren, betrug die EC50 von F. candida 52,3 mg a.s./kg dw.
In Reproduktionstests mit der Enchytraeen-Art Enchytraeus bigeminus wurde die Bodenfeuchte als klimatischer Faktor in Kombination mit jeweils einer Testsubstanz untersucht. Bei beiden Chemikalien reagierte E. bigeminus in trockenem Boden empfindlicher. Die ermittelten EC50 betrugen 1,34 mg a.s./kg dw für Lambda-Cyhalothrin und 437 mg a.s./kg dw für Pyrimethanil. Getestet unter Standardbedingungen lagen die EC50-Werte bei 3,79 bzw. 499 mg a.s./kg dw.
Neben den Laborexperimenten wurden Tests in „Terrestrischen Modellökosystemen“ (TME) mit den gleichen Chemikalien in Kombination mit variierender Bodenfeuchte als klimatischer Faktor vorgenommen. Diese Experimente wurden in Deutschland und in Portugal durchgeführt, um die Reaktion einer zentraleuropäischen und einer mediterranen Artengemeinschaft zu untersuchen. Aus der terrestrischen Lebensgemeinschaft wurden verschiedene Organismengruppen untersucht. Die Effekte auf Enchytraeen aus dem Experiment mit Pyrimethanil waren als Veröffentlichung Teil dieser Dissertation. In der portugiesischen Halbfreilandstudie wurden keine Effekte auf die Enchytraeen durch Pyrimethanil bei umweltrelevanten Konzentrationen festgestellt, jedoch beeinflusste die Bodenfeuchte die Zusammensetzung der Artengemeinschaft. Im deutschen TME-Experiment wurde eine verstärkte Wirkung des Fungizids in trockenem Boden festgestellt, d.h. die jeweiligen Effektkonzentrationen (niedrigste EC50 3,48 mg a.s./kg dw für Fridericia connata in trockenem Boden) lagen deutlich unterhalb der aus den Labortests mit Enchytraeus bigeminus bekannten Werten (499 mg a.s./kg dw).
Zusammenfassend lässt sich feststellen, dass klimatische Faktoren die Effekte von Pflanzenschutzmittel auf Bodenorganismen beeinflussen können. Für Laborversuche ist eine generelle Berücksichtigung von klimatischen Faktoren im Zulassungsverfahren aus heutiger Sicht zu weit gegriffen. Die TME-Versuche zeigten sich als geeignetes Testverfahren, interaktive Effekte von Pestiziden und Klima bzw. multiplen Stressoren generell auf Artengemeinschaften zu untersuchen. Für TME-Experimente wäre unter Beachtung der Vielzahl möglicher Fragestellungen, Endpunkte und moderner statistischer Auswerteverfahren eine internationale Richtlinie wünschenswert.
Compared to all other organisms with 1 to 3 heat stress transcription factors (Hsfs) or Hsf-related factors, plants have extraordinarily large Hsf families with more than 20 Hsfs. Plant Hsfs are classified into three classes according to their oligomerization domains which is built of hydrophobic heptad repeats (HR) in two parts, HR-A and HR-B. Both parts may be immediately adjacent (class B), or they are separated by insertion of 21 (class A) and 7 amino acid residues (class C). In plant Hsf family, detailed investigations are so far limited to Hsfs A1a, A2, A3, A4d, A9, and B1. They strongly indicate functional diversification to be the main reason for the coexistence of multiple Hsfs. As an example the functional triad of HsfA1a, HsfA2, and HsfB1 is essential for all three phases of the hs response, (i) the triggering of the response by HsfA1a as master regulator, (ii) the maintenance and high efficiency of hs gene transcription by cooperation of HsfA1a with Hsfs A2 and B1, and finally, (iii) the restoration of house-keeping gene transcription during the recovery phase mediated by HsfB1 in cooperation with house-keeping transcription factors. The results presented in this thesis for Hsfs A4 and A5 open completely different aspects of functional diversification and cooperation of Hsfs. HsfA4 and HsfA5 homooligomerize and bind to corresponding HSE motifs. But in contrast to the highly active HsfA4, HsfA5 is completely inactive as transcriptional activator. Yeast two hybrid and GST pull-down techniques showed that both Hsfs have strong tendency for heterooligomerization. Using fluorescence microscopy the HsfA4/A5 heterooligomers were found to localize in the nucleus. These complexes are transcriptionally inactive due to the impairment of DNA binding. The repressor function of HsfA5 requires only its OD and no additional factors, e.g. a putative co-repressor recruited by the C-terminal domain, are involved. Evidently, the repressor effect mainly results from the interference with the oligomeric state of HsfA4b, which is essential for efficient DNA binding and activator functions. EST database search revealed that plants have a single HsfA5 and usually two A4-type Hsfs. Using bioinformatics tools, Hsfs A4 and A5 were found to be phylogenetically closely related and clearly distinct from the other members of the Hsf family. On the basis of RT-PCR and Microarray data the representatives of the A4/A5 group are well expressed in different plant tissues albeit at very different levels which change with the developmental stages and stress conditions In rice and Arabidopsis, HsfA4 functions as an anti-apoptotic factor for stress induced oxidative damages. Based on my results, I hypothesize that HsfA5 functions as a novel type of selective repressor, regulating the function of A4-type Hsfs in plants. Considering the high sequence conservation with in plant Hsf family, it is tempting to speculate that this role of Hsf4/A5 pair is a fundamental feature of the Hsf system in plants.
Unlike other eukaryotes, plants possess a complex family of heat stress transcription factors (Hsfs) with usually more than 20 members. Among them, Hsfs A4 and A5 form a group distinguished from other Hsfs by structural features of their oligomerization domains and by a number of conserved signature sequences. We show that A4 Hsfs are potent activators of heat stress gene expression, whereas A5 Hsfs act as specific repressors of HsfA4 activity. The oligomerization domain of HsfA5 alone is necessary and sufficient to exert this effect. Due to the high specificity of the oligomerization domains, other class A Hsfs are not affected. Pull-down assay and yeast two-hybrid interaction tests demonstrate that the tendency to form HsfA4/A5 heterooligomers is stronger than the formation of homooligomers. The specificity of interaction between Hsfs A4 and A5 was confirmed by bimolecular fluorescence complementation experiments. The major role of the representatives of the HsfA4/A5 group, which are not involved in the conventional heat stress response, may reside in cell type-specific functions connected with the control of cell death triggered by pathogen infection and/or reactive oxygen species.
Cell–matrix adhesion and cell migration are physiologically important processes that also play a major role in cancer spreading. In cultured cells, matrix adhesion depends on integrin-containing contacts such as focal adhesions. Flotillin-1 and flotillin-2 are frequently overexpressed in cancers and are associated with poor survival. Our previous studies have revealed a role for flotillin-2 in cell–matrix adhesion and in the regulation of the actin cytoskeleton. We here show that flotillins are important for cell migration in a wound healing assay and influence the morphology and dynamics of focal adhesions. Furthermore, anchorage-independent growth in soft agar is enhanced by flotillins. In the absence of flotillins, especially flotillin-2, phosphorylation of focal adhesion kinase and extracellularly regulated kinase is diminished. Flotillins interact with α-actinin, a major regulator of focal adhesion dynamics. These findings are important for understanding the molecular mechanisms of how flotillin overexpression in cancers may affect cell migration and, especially, enhance metastasis formation.
Climate change imposes severe stress on European forests, with forest degradation already visible in several parts of Europe. Thus adaptation of forestry applications in Mediterranean areas and central Europe is necessary. Proactive forestry management may include the planting of Mediter- ranean oak species in oak-bearing Central European regions. Five replicate common gardens of Greek and Italian provenances of Quercus ilex, Q. pubescens and Q. frainetto seedlings (210 each per plantation) were established in Central Italy, NE Greece (two) and Southern Germany (two, including Q. robur) to assess their performance under different climate conditions. Climate and soil data of the plantation sites are given and seedling establishment was monitored for survival and morphological parameters. After 3 years (2019) survival rates were satisfactory in the German and Italian sites, whereas the Greek sites exerted extremely harsh conditions for the seedlings, including extreme frost and drought events. In Germany, seedlings suffered extreme heat and drought periods in 2018 and 2019 but responded well. Provenances were ranked for each country for their performance after plan- tation. In Greece and Italy, Q. pubescens was the best performing species. In Germany, Q. pubescens and Q. robur performed best. We suggest that Greek or Italian provenances of Q. pubescens may be effectively used for future forestation purposes in Central Europe. For the establishment of Quercus plantations in Northern Greece, irrigation appears to be a crucial factor in seedling establishment.
The ongoing biodiversity crisis becomes evident in the widely observed decline in abundance and diversity of species, profound changes in community structure, and shifts in species’ phenology. Insects are among the most affected groups, with documented decreases in abundance up to 76% in the last 25–30 years in some terrestrial ecosystems. Identifying the underlying drivers is a major obstacle as most ecosystems are affected by multiple stressors simultaneously and in situ measurements of environmental variables are often missing. In our study, we investigated a headwater stream belonging to the most common stream type in Germany located in a nature reserve with no major anthropogenic impacts except climate change. We used the most comprehensive quantitative long‐term data set on aquatic insects available, which includes weekly measurements of species‐level insect abundance, daily water temperature and stream discharge as well as measurements of additional physicochemical variables for a 42‐year period (1969–2010). Overall, water temperature increased by 1.88 °C and discharge patterns changed significantly. These changes were accompanied by an 81.6% decline in insect abundance, but an increase in richness (+8.5%), Shannon diversity (+22.7%), evenness (+22.4%), and interannual turnover (+34%). Moreover, the community's trophic structure and phenology changed: the duration of emergence increased by 15.2 days, whereas the peak of emergence moved 13.4 days earlier. Additionally, we observed short‐term fluctuations (<5 years) in almost all metrics as well as complex and nonlinear responses of the community toward climate change that would have been missed by simply using snapshot data or shorter time series. Our results indicate that climate change has already altered biotic communities severely even in protected areas, where no other interacting stressors (pollution, habitat fragmentation, etc.) are present. This is a striking example of the scientific value of comprehensive long‐term data in capturing the complex responses of communities toward climate change.
Highlights
• Seed size mediates seedling recruitment in tropical forests and pastures.
• Large-seeded species recruited better than small-seeded species in the forest.
• Recruitment of large-seeded species in pastures was limited by surface temperature.
• Large-seeded species should be protected against drought in regenerating pastures.
Abstract
Seedling recruitment is a key process of plant regeneration that often depends on plant functional traits, such as seed size. To optimize forest restoration efforts, we need to better understand how seedling recruitment of different seed sizes varies along environmental gradients with strong variation in abiotic and biotic factors. To understand these interacting effects, we conducted a sowing experiment with different-sized seeds in forests and pastures in the tropical mountains of southern Ecuador. We quantified seedling recruitment in relation to temperature, soil moisture and biotic pressures. We sowed seeds of five tree species of varying seed size at three elevations (1000, 2000 and 3000 m a.s.l.) in primary forest and pastures. We tested (1) how habitat type influences the recruitment of seedlings belonging to three small- and two large-seeded species, and (2) how abiotic and biotic factors limit seedling recruitment of species with different seed sizes. We found that seedlings of the two large-seeded species recruited better than seedlings of the three small-seeded species, but only in the forest habitat. Seedling recruitment of large seeds was primarily limited by high surface temperature, which explains lower recruitment of large seeds in pastures compared to forests. Our study shows that seed size can be a key trait mediating variability in seedling recruitment in tropical ecosystems. We conclude that restoration measures should aim to mitigate extreme temperatures in tropical pastures to aid the natural regeneration of large-seeded tree species.
Trait-dependent effects of biotic and abiotic filters on plant regeneration in Southern Ecuador
(2024)
Tropical forests have always fascinated scientists due to their unique biodiversity. However, our understanding of ecological processes shaping the complexity of tropical rainforests is still relatively poor. Plant regeneration is one of the processes that remain understudied in the tropics although this is a key process defining the structure, diversity and assembly of tropical plant communities. In my dissertation, I combine experimental, observational and trait-based approaches to identify processes shaping the assembly of seedling communities and compare associations between environmental conditions and plant traits across plant life stages. By working along a steep environmental gradient in the tropical mountains of Southern Ecuador, I was able to investigate how processes of plant regeneration vary in response to biotic and abiotic factors in tropical montane forests.
My dissertation comprises three complementary chapters, each addressing an individual research question. First, I studied how trait composition in plant communities varies in relation to the broad- and local-scale environmental conditions and across the plant life cycle. I measured key traits reflecting different ecological strategies of plants that correspond to three stages of the plant life cycle (i.e., adult trees, seed rain and recruiting seedlings). I worked on 81 subplots along an elevational gradient covering a large climatic gradient at three different elevations (1000, 2000 and 3000 m a.s.l.). In addition, I measured soil and light conditions at the local spatial scale within each subplot. My findings show that the trait composition of leaves, seeds and seedlings changed similarly across the elevational gradient, but that the different life stages responded differently to the local gradients in soil nutrients and light availability. Consequently, my findings highlight that trait-environment associations in plant communities differ between large and small spatial scales and across plant life stages.
Second, I investigated how seed size affects seedling recruitment in natural forests and in pastures in relation to abiotic and biotic factors. I set up a seed sowing experiment in both habitat types and sowed over 8,000 seeds belonging to seven tree species differing in seed size. I found that large-seeded species had higher proportions of recruitment in the forests compared to small-seeded species. However, small-seeded species tended to recruit better in pastures compared to large-seeded species. I showed that high surface temperature was the main driver of differences in seedling recruitment between habitats, because it limited seedling recruitment of large-seeded species. The results from this experiment show that pasture restoration requires seed addition of large-seeded species and active protection of recruiting seedlings in order to mitigate harmful conditions associated with high temperatures in deforested areas.
Third, I examined the associations between seedling beta-diversity and different abiotic and biotic factors between and within elevations. I applied beta-diversity partitioning to obtain two components of beta-diversity: species turnover and species richness differences. I associated these components of beta-diversity with biotic pressures by herbivores and fungal pathogens and environmental heterogeneity in light and soil conditions. I found that species turnover in seedling communities was positively associated with the dissimilarity in biotic pressures within elevations and with environmental heterogeneity between elevations. Further, I found that species richness differences increased primarily with increasing environmental heterogeneity within elevations. My findings show that the associations between beta-diversity of seedling communities and abiotic and biotic factors are scale-dependent, most likely due to differences in species sorting in response to biotic pressures and species coexistence in response to environmental heterogeneity.
My dissertation reveals that studying processes of community assembly at different plant life stages and spatial scales can yield new insights into patterns and processes of plant regeneration in tropical forests. I investigated how community assembly processes are governed by abiotic and biotic filtering across and within elevations. I also experimentally explored how the process of seedling recruitment depends on seed size-dependent interactions, and verified how these effects are associated with abiotic and biotic filtering. Identifying such processes is crucial to inform predictive models of environmental change on plant regeneration and successful forest restoration. Further exploration of plant functional traits and their associations with local-scale environmental conditions could effectively support local conservation efforts needed to enhance forest cover in the future and halt the accelerating loss of biodiversity.
Prion diseases or transmissible spongiform encephalopathies (TSEs) are rare neurological disorders that may be of genetic or infectious origin, but most frequently occur sporadically in humans. Their outcome is invariably fatal. The infectious agent has been defined as prion (from proteinaceous infectious only) in 1992 by Stanley B. Prusiner and represent mainly, if not solely, an abnormal, protease-resistant isoform (PrPSc) of a cellular protein, the prion protein or PrPC. According to the “protein only” hypothesis, the prion is devoid of informational nucleic acids and consists of an “infectious” protein that is capable of converting the normal host protein PrPC into a likeness of itself. TSEs can be distinguished from other neurodegenerative diseases because of their infectivity and transmission capability. The only organ system in which severe histopathological damage can be demonstrated as a consequence of infection with prions is the nervous system. The communal lesions are neuronal loss, spongiosis and astrogliosis, accompanied by an intra- and extracellular accumulation of PrPSc, occasionally in form of amyloid plaques. Even if a strong activation of microglia and astrocytes occurs, no immunological response is usually detectable as consequence of prion infection. Despite the considerable attention for its involvement in TSEs, the physiological role of the cellular, nonpathogenic isoform of PrPC, has not yet been determined. In the last years, several putative cellular functions have been attributed to PrPC: its localization in “lipid rafts” is consistent with a possible role in cell adhesion, transmembrane signalling or as a recognition molecule. Furthermore, PrPC has been implicated in protection against oxidative stress, copper metabolism, apoptosis, cell proliferation and in the regeneration of blood precursors stem cells in the adult. It has also been shown that PrPC interacts with the neuronal cell adhesion molecule NCAM, promoting neurite outgrowth. However, both the PrPC-mediated effects and the role of PrPC-dependent pathways on neuronal differentiation are still not elucidated. First objective of this Ph.D thesis was the establishment of a novel in vitro cellular model for the study of the role of PrPC in neuronal differentiation and neurite outgrowth. Furthermore, an additional goal of this project was the indentification of the PrPC domains responsible for the induction of neuronal differentiation. A novel PrPC-depleted cell line (PrP0/0 ML) was derived from murine primary PrP-knockout neuronal cells by SV40 large T antigen-mediated immortalization. A temperature sensitive form of this oncogenic protein was used, allowing a temperature-mediated regulation of its expression. This cell line was then characterised for its growth potential, for the expression of specific cellular markers and for its ability to differentiate. It was found that, under culture conditions promoting the expression of the temperature-sensitive SV40 large T antigen, the cells expressed nestin, a specific marker of neuronal precursor cells. Therefore, the PrP0/0 ML cell line was identified as a potential neuronal stem cell line. In fact, under nonpermissive culture conditions when the expression of the temperature-sensitive SV40 large T antigen is downregulated, the PrP0/0 ML cells differentiated into neurons. Noteworthy, maintenance of the cells in conditions that promote cell differentiation induced a progressive reduction in the expression levels of nestin, an event that strongly correlated with the appearance of the specific neuronal markers MAP-2b and NeuN. In order to investigate the role of PrPC in the process of neuronal differentiation, the PrP0/0 ML cells were then reconstituted for the expression of either the full-length PrP or a N-terminal truncated PrPC form (PrPdel32-134). The differentiation potential of both reconstituted cell lines under nonpermissive culture conditions was then compared with that of the parenteral PrP0/0 ML cells. This in vitro study clearly highlights that PrPC expression in the PrP0/0 ML cell line accelerates neuronal differentiation and that the N-terminal domain of the prion protein is not necessary for this PrP-mediated function. Prion diseases like BSE, vCJK, Kuru and the majority of iatrogenic cases of CJK are caused by a peripheral infection. Infectious prions accumulate in the central and peripheral nervous system as well as in extracerebral tissues, such as the secondary lymphoid organs and muscles. The prion pathogenesis is a dynamic process which can be defined temporary and spatially in different phases: i) infection and peripheral replication, ii) neuroinvasion, transport of prions from the periphery to the central nervous system (CNS), and iii) neurodegeneration. In the last years, progresses in the elucidation of the peripheral prion pathogenesis were achieved. The identification of the cell types involved in the lymphoreticular prion replication phase and the recognition of the role of the peripheral nervous system in the process of prion spread from the periphery to the CNS have elucidated some of the cellular mechanisms that are involved in prion uptake, replication and propagation. However, relatively little information is available about the mechanism(s) underlying intercellular prion transfer and tissue-to tissue prion spread. Microvesicles (MVs) are submicron vesicles (0,03-1 microm.) with a single membrane and are shed from most eukaryotic cells undergoing activation or apoptosis. The segregation of specific proteins is followed by blebbing of the membrane surface, leading to the formation of MVs and their release in the extracellular environment. MVs can be also secreted upon fusion of multivesicular endosomes with the plasma membrane (exosomes). The secretion of MVs is the result of a complex cellular process involving changes in the metabolism of lipids and proteins. The functional role of MVs is still largely unknown. However, there is evidence showing that they are important modulators of cell-to-cell communication, participate in a variety of intracellular adhesion processes and are able to induce cellular response(s). The release of PrPC and infectious PrPSc by prion infected epithelial, neuroglial and neuronal cells in association with exosomes has recently been highlighted. Furthermore, it has been shown that exosomes can propagate prion infectivity both in vitro and in vivo, suggesting that PrPSc-bearing exosomes may provide a mechanism for intercellular transmission of infectious prions in addition to cell-to-cell contact. Second objective of this Ph.D thesis was to determine the possible role of plasma membrane-derived microvesicles in the propagation and transmission of prions. The release of MVs was first studied in different murine neuronal cell lines. Here it is shown for the first time that neurons also shed plasma membrane derived MVs, in addition to exosomes. Immunoelectron microscopy and immunoblot analyses clearly demonstrated the presence of PrPC on the membrane of MVs released from PrPC-expressing cells. Characterization of lipid rafts components in MVs highlighted the presence of the ganglioside GM2, the tyrosine kinase p59Fyn, flotillin-2 and the neuronal protein GAP-43. In order to investigate whether MVs are involved in the intercellular transmission of prions, MVs were first isolated from two prion infected murine neuronal cell lines, namely the Neuro-2a PK1 and the N2a58 cells, and then used for in vitro and in vivo infection assays. Immunoblot analyses after proteinase K treatment demonstrated the association of PrPSc with the secreted MVs. The PrPSc-bearing MVs were then used to perform infection experiments on noninfected cells. By the use of cell blot assay, a method that allows the detection of PrPSc-amplification and -accumulation in cultured cells, the kinetic of prion infection in the de novo infected cells was followed. Noteworthy, it was found that PrPSc-bearing MVs were capable to transmit prions in vitro and to stably infect the recipient cells. In order to investigate the role of MVs in the transmission of infectivity in vivo, PrPSc-bearing MVs as well as MVs isolated from noninfected cells (as negative control) were injected intracerebrally in PrPC-overexpressing indicator mice (tga20). The development of clinical disease was followed in a time-dependent manner. Clinical symptoms could be observed only in the group of indicator mice inoculated with the PrPSc-bearing MVs, which then succumbed to desease. These findings clearly demonstrated that MVs are biological carriers of both PrPSc and prion infectivity. MVs could therefore participate in vivo in the processes of intercellular prion transmission and propagation.
Mitochondrial membrane dynamics is increasingly implicated in various human diseases. Numerous studies show that the protein OPA1 plays a central role in determining mitochondrial ultrastructure and apoptotic remodeling of the inner mitochondrial membrane during Cytochrome c release and apoptosis. Crista junctions are crucial for the regulation of apoptotic Cytochrome c release. Previous publications suggest that OPA1 is required to maintain a normal structure of the inner mitochondrial membrane. The protein MIC60 (Mitofilin) appears to be an essential physical constituent of crista junctions and is also crucial for the general determination of mitochondrial ultrastructure. Furthermore, recent studies suggest that MIC60 is also implicated in Cytochrome c release during apoptosis.
In this regard, the question whether OPA1 is essential for crista junction formation was investigated. In addition to that, the interplay between OPA1 and MIC60 and its physiological role were analyzed. Electron microscopy of OPA1+/- and OPA1+/+ mice, as well as of OPA1-/- and OPA1+/+ MEFs clearly showed that OPA1 plays a role but is not essential for crista junction formation. In contrast to that, the results indicate that OPA1 is crucial to maintain a normal structure of the inner mitochondrial membrane. Immunogold experiments fit well to these observations as OPA1 was found equally distributed throughout the cristae membrane with only a minor part located at crista junctions. MIC60 localization studies showed a clear enrichment at crista junctions. Interaction studies revealed that endogenous OPA1 and MIC60 physically interact with each other. Analysis of protein levels upon OPA1 or MIC60 depletion indicate that both proteins play a dual role in cristae- and crista junction formation in which MIC60 is a physical constituent of crista junctions essential for their formation while OPA1 primarily has a regulatory impact on MIC60 function. Finally, apoptosis assays and cell viability measurements showed that knockout of OPA1 in MEFs leads to increased cellular resistance suggesting that the interplay of these proteins is important for the regulation of crista junction remodeling during apoptosis.
Besides its role in determining mitochondrial ultrastructure, OPA1 mediates inner membrane fusion of mitochondria thereby contributing to mitochondrial quality control. Additionally, proteolytic processing is crucial for the ability of OPA1 to distinguish between functional and dysfunctional mitochondria. Functional mitochondria are fused while dysfunctional mitochondria are not, a process termed selective mitochondrial fusion. Dysfunctional mitochondria were shown to be degraded by mitophagy in a fission-dependent manner. Numerous studies suggest that OPA1 and mitophagy are directly linked. However, this idea is still under debate. Mitophagy is also crucial for mitochondrial quality control, which directly impacts mitochondrial integrity. Furthermore, mitochondrial quality control has been linked to neurodegeneration as demonstrated by the observation that mutations in OPA1 cause the disorder ADOA-1.
In order to analyze a potential link between OPA1 and mitophagy, mitochondrial colocalization with LC3 was analyzed microscopically in primary adult skin fibroblasts isolated from OPA1+/- and OPA1+/+ mice in an age-dependent manner. Fibroblasts from young OPA1+/- mice showed increased colocalization of mitochondria with autophagosomes compared to fibroblasts from young wild type mice suggesting that OPA1 exerts an inhibitory role in mitophagy. This effect was even more pronounced in old mice, which also displayed higher mitophagy levels in general than young mice, consistent with the finding that old mice had higher Parkin levels than young mice. Mitochondrial fragmentation was elevated in fibroblasts from young and old OPA1+/- mice compared to control fibroblasts. However, extensive mitochondrial fusion, which occurred in fibroblasts from old wild type mice, was prevented in old OPA1+/- mice. Furthermore, old wild type mice had decreased numbers of crista junctions compared to young wild type mice, an effect that was not observed in OPA1+/- mice. Despite the observed age-dependent phenotypes in mitochondrial quality control and mitochondrial integrity, deletion of one allele of OPA1 had no influence on the life span in vivo. Analysis of the OPA1-dependent proteome of aging mice, which was performed in collaboration with Ansgar Poetsch and Carina Ramallo-Guevara from Bochum, showed that OPA1-dependent aging is accompanied by a reduction of proteins involved in autophagy. In contrast to that, a switch from glucose to fatty acid metabolism and alterations in apoptotic proteins were observed in both OPA1+/- and OPA1+/+ mice in an age-dependent manner indicating that the changes in proteins implicated in autophagy could be a compensatory response to the diminished inhibitory effect of OPA1 on mitophagy. On the other hand, increased mitochondrial degradation by mitophagy could be a cellular response to itself compensating for the loss of OPA1 mediated fusion thereby contributing to the observation that OPA1+/- and OPA1+/+ mice had no differences in life span. Furthermore, analysis of the OPA1-dependent proteome of aging mice revealed that OPA1, besides its role in mitochondrial fusion, could interact with the fission machinery: MFF and Neuronal pentraxin 1, two proteins involved in mitochondrial fission, were up-regulated in 12-month-old OPA1+/- mice suggesting that a reduced fission activity could contribute to mitochondrial hyperfusion in aged wild- type mice. Nonetheless, the exact nature of the possible interplays between OPA1 and these candidates remains to be investigated.
Im Rahmen dieser Arbeit konnte die Bindeeigenschaft des synaptischen Vesikelproteins SV31 zu den divalenten Metallionen Zn2+, Ni2+ sowie Cu2+ nachgewiesen und reproduziert werden. Die Bindung an Zn2+ wurde dabei sowohl in vitro an der Sepharosesäule als auch in vivo in NGF-differenzierten PC12-Zellen bestätigt (3.2.1 - 3.2.3). In einer Kollaboration mit dem Max-Planck-Institut für Biophysik wurde des Weiteren eine mögliche Zinktransportfunktion von SV31 untersucht. Dafür wurde die Ladungstranslokation durch myc-SV31-enthaltene CHO-Zellmembranen nach Zinkzugabe gemessen (3.2.5). Weiterhin konnte durch subzelluläre Fraktionierung von PC12-Zellen ein Verteilungsmuster des neuen Proteins in Mikrosomen unterschiedlicher Dichte dokumentiert werden. Durch die andauernde Expression von SV31-RFP in stabil transfizierten PC12-Zellen kommt es außerdem zur Beeinflussung des Expressionsmusters zahlreicher Markerproteine und damit einhergehend zu einer Dichteverschiebung somatischer Organellen (3.3.1 - 3.3.3). Kolokalisationsstudien von SV31 mit Markerproteinen zahlreicher Zellorganellen ergaben partielle Fluoreszenzüberlagerungen mit synaptischen Vesikelproteinen sowie eine Anreicherung von SV31 in Nähe der Plasmamembran. In diesem Zusammenhang zeigt sich ebenfalls eine Übereinstimmung der Lokalisation von SV31 mit den SNAREProteinen SNAP25 und Syntaxin1A (3.4.1 - 3.4.3). Die Ergebnisse der vorliegenden Arbeit erweitern nicht nur das Wissen um die funktionellen Eigenschaften von SV31, sie geben auch Anlass zum Nachdenken über mögliche Interaktionspartner des neuen Vesikelproteins. Die Fähigkeit zur Zinkbindung und -akkumulation auf präsynaptischer Seite rückt SV31, im Hinblick auf neurodegenerative Erkrankungen wie Alzheimer und Parkinson, auch in einen medizinisch relevanten Kontext. Durch Deduktion der hier aufgezeigten Ergebnisse entsteht ein erweitertes Verständnis der Relevanz von SV31 als funktionelle, zinkbindende Einheit im Rahmen der synaptischen Transmission.
The power to dissociate : molecular function of the twin-ATPase ABCE1 in archaeal ribosome recycling
(2010)
Synaptopodin is the founding member of a family of actin-associated proline-rich proteins. It is present in a subset of telencephalic dendritic spines, where it is tightly associated with the dendritic spine apparatus, a putative calcium store. Synaptopodin-deficient mice lack the spine apparatus and show deficits in long-term potentiation and spatial memory. Thus, synaptopodin appears to play a role in synaptic plasticity. In the present thesis, three major questions were addressed: (1) What is the distribution of synaptopodin and the spine apparatus in identified hippocampal neurons? (2) Is the distribution of synaptopodin affected by denervation? (3) Is synaptopodin involved in the regulation of denervation-induced spine loss? The major findings of this thesis are: (1) Immunohistochemistry in the hippocampus of wildtype and EGFP-transgenic mice revealed significant layer-specific differences in the prevalence of synaptopodin at the level of individual neurons. (2) Light and electron microscopic analysis also revealed the presence of synaptopodin in axon initial segments of cortical and hippocampal principal neurons. There, it was found to be an essential component of the cisternal organelle, a putative axonal homologue of the dendritic spine apparatus. (3) Immunohistochemistry in the rat fascia dentata before and following entorhinal deafferentation revealed changes in synaptopodin expression in denervated and non-denervated layers of the hippocampus, suggesting that the distribution of synaptopodin in hippocampal neurons is regulated by presynaptic signals. (4) The dynamics of denervation-induced spine plasticity were studied in vitro using confocal live imaging of organotypic entorhino-hippocampal slice cultures. Whereas spines were remarkably stable under control conditions, spine loss and spine formation were seen following denervation. No significant differences were observed between cultures from wildtype and synaptopodin-deficient mice, suggesting that synaptopodin is not involved in lesion-induced spine plasticity. (5) Finally, a set of transgenic mice expressing fluorescently tagged synaptopodin were generated to facilitate future experiments on the dynamics and function of synaptopodin. In summary, this thesis presents novel findings on (1) the subcellular distribution of synaptopodin in spines and the axon initial segment, (2) the molecular composition of the cisternal organelle, and (3) the dynamics of spines and the spine apparatus organelle following deafferentation in vivo and in vitro.
We examined substrate-induced conformational changes in MjNhaP1, an archaeal electroneutral Na+/H+-antiporter resembling the human antiporter NHE1, by electron crystallography of 2D crystals in a range of physiological pH and Na+ conditions. In the absence of sodium, changes in pH had no major effect. By contrast, changes in Na+ concentration caused a marked conformational change that was largely pH-independent. Crystallographically determined, apparent dissociation constants indicated ∼10-fold stronger Na+ binding at pH 8 than at pH 4, consistent with substrate competition for a common ion-binding site. Projection difference maps indicated helix movements by about 2 Å in the 6-helix bundle region of MjNhaP1 that is thought to contain the ion translocation site. We propose that these movements convert the antiporter from the proton-bound, outward-open state to the Na+-bound, inward-open state. Oscillation between the two states would result in rapid Na+/H+ antiport.
Panama, a small country between the major continents of North and South America, is one of the lesser studied regions in Central America, but is recognized for its mega-biodiversity. This is particularly true for Eastern Panama, which I am considering as the easternmost portion of the country, covering the area from the Chepo, which is also the beginning of the San Blas mountain range, towards east, up to the Darien Mountain range on the border with its neighboring country Colombia. In the lowland region I visited two physiographic areas: the Isthmian-Atlantic Moist Forests (IAMF) and the Chocó-Darién Moist Forests (CDMF). In the IAMF I worked at the localities of Río Mono, Wacuco, La Moneda, Arretí, Metetí, Filo del Tallo, and Laguna de Matusagaratí. In the CDMF I visited the localities of Cruce de Mono, Cana, Garachiné, Sambú, and Pavarandó. And I have worked in the highlands of Darién (DM), Majé (MM), Jingurudó-Sapo (JSM), Pirre (PM) and San Blas (SSM) in the highlands.
Before my research, 138 reptile and 104 amphibian species had been reported for EP. From 2008 to 2013, I collected specimens to evaluate the diversity of amphibians and reptiles for this region. I applied an integrative approach to evaluate the taxonomy, diversity, biogeography, and conservation of the herpetofauna of EP. I included analyses of morphometrics, molecular genetics (e.g. barcoding), biogeography, bioacoustics (in anurans), hemipenial morphology (in squamates), and ecology. This is the first regional evaluation of the biodiversity in EP applying integrative taxonomy. Aside from morphological and bioacoustic data, my work is based on the barcoding of 608 specimens, from which I obtained 16S mtDNA for 486 specimens and COI mtDNA for 455. In total I have got sequences for 69.2 %of the amphibian and 48.6 % of the reptile species present in EP. For the morphological analyses, I compared 1597 specimens, including my samples complemented by specimens obtained from various museums. The bioacoustic data were obtained from the analysis of 1504 calls of 27 species of frogs. Based on specimens collected in EP and according to external morphology, I could identify 65 species of amphibians and 72 reptiles, but after applying an integrative approach these numbers increased to 79 amphibians and 88 reptiles described species within my collected specimens. Additionally, I uncovered 33 taxonomic units that could not be assigned to any described species until now, 22 of them represent confirmed candidate species (CCS), and 11 were classified as Unconfirmed candidate species (UCS). Thus, increasing the known species of amphibian by 19.4 % and of reptiles by 4.8 %. Currently, there are 145 reptiles and 129 amphibians known to occur in EP. Based on my results, I have initiated several projects to solve taxonomic uncertanties, including the species of the genera Bolitoglossa, Diasporus, Dactyloa, Ecnomiohyla, Lepidoblepharis, and the taxonomic status of the species Pristimantis caryophyllaceus and Norops tropidogaster.
Out of the 22 CCS I found, I described nine species new to science with type locality in EP, six amphibians and four reptiles. Among these is a new species of Bolitoglossa described from Cerro Chucantí, Cordillera de Majé, Provincia de Darién, Panama. Additionally, I include comments on the other species of congeneric salamanders known to occur in the region. Among the tink frogs, only Diasporus quidditus was known to occur in EP. During my field work I collected six additional species of this genus, four of which are new to science, plus two species new for this region.
I also described one new species of Dactyloa (giant anole lizards) related to the former D. chocorum. I synonymized D. chocorum with D. purpurescens, and included information about the other species of the group from EP. The new species of Dactyloa resembles D. ibanezi, D. limon, and D. purpurescens in external morphology but differs from these species in dewlap coloration, dorsal color pattern, morphometrics, and scalation. I discovered one species of the genus Ecnomiohyla, which exhibits significant genetic distances (16S mtDNA gene) and morphological differences to all known Ecnomiohyla species. Along with the description of the new Ecnomiohyla species, I provide detailed comparisons of morphological and molecular characters of almost all members of the genus in Lower Central America, as well as an identification key for the entire genus. Two new species of the genus Lepidoblepharis from EP were described. In the corresponding work, I include an analysis of Lepidoblepharis spp. in the region, including phylogeography and taxonomy. One of the new species, Lepidoblepharis emberawoundule, can be differentiated from most species in the genus by its small size and its low number of lamellae under the fourth toe and finger. The other species described from EP, Lepidoblepharis rufigularis, can be differentiated from all species in the genus by its small size and the reddish throat in males.
The forest, savanna, and grassland biomes, and the transitions between them, are expected to undergo major changes in the future due to global climate change. Dynamic global vegetation models (DGVMs) are very useful for understanding vegetation dynamics under the present climate, and for predicting its changes under future conditions. However, several DGVMs display high uncertainty in predicting vegetation in tropical areas. Here we perform a comparative analysis of three different DGVMs (JSBACH, LPJ-GUESS-SPITFIRE and aDGVM) with regard to their representation of the ecological mechanisms and feedbacks that determine the forest, savanna, and grassland biomes, in an attempt to bridge the knowledge gap between ecology and global modeling. The outcomes of the models, which include different mechanisms, are compared to observed tree cover along a mean annual precipitation gradient in Africa. By drawing on the large number of recent studies that have delivered new insights into the ecology of tropical ecosystems in general, and of savannas in particular, we identify two main mechanisms that need improved representation in the examined DGVMs. The first mechanism includes water limitation to tree growth, and tree–grass competition for water, which are key factors in determining savanna presence in arid and semi-arid areas. The second is a grass–fire feedback, which maintains both forest and savanna presence in mesic areas. Grasses constitute the majority of the fuel load, and at the same time benefit from the openness of the landscape after fires, since they recover faster than trees. Additionally, these two mechanisms are better represented when the models also include tree life stages (adults and seedlings), and distinguish between fire-prone and shade-tolerant forest trees, and fire-resistant and shade-intolerant savanna trees. Including these basic elements could improve the predictive ability of the DGVMs, not only under current climate conditions but also and especially under future scenarios.
For thousands of years, S. cerevisiae has been employed by humans in brewing and baking. Nowadays, this budding yeast is more than that: it is a well investigated model organism and an established workhorse in biotechnology. S. cerevisiae serves as a production host for various applications such as i) bioethanol production ii) the biosynthesis of hormones including insulin or iii) cannabinoid biosynthesis. Hereby, the robustness of S. cerevisiae and its high tolerances regarding pH and salt concentrations qualifies it for a wide range of industrial applications. Moreover, products of S. cerevisiae are generally recognised as safe (GRAS), enabling diverse biotechnological applications. Various mechanisms for genetic engineering of S. cerevisiae are applicable and the engineering process itself is straightforward since methods are established and widely known. Due to the wide range of industrial applications of S. cerevisiae, this organism is an ideal candidate for applied research and implementation of the recombinant biosynthesis of tocochromanols in this study.
Tocochromanols encompass tocotrienols and tocopherols, which are lipid-soluble compounds that are commonly associated with vitamin E activity. Hereby, α-tocopherol is the most prevalent form, as it is an essential nutrient in the diet of humans and animals. Naturally, tocochromanols are almost exclusively synthesised by photoautotrophic organisms such as plants or cyanobacteria. They consist of an aromatic head group and a polyprenyl side chain which is saturated in tocopherols and 3-fold unsaturated in tocotrienols. The methylation status of the chromanol ring distinguishes α-, β-, γ- and δ-tocochromanol. All forms of tocochromanols represent a group of powerful antioxidants, scavenging reactive oxygen species (ROS) and preventing the propagation of lipid oxidation in lipophilic environments. Recently, attention has been drawn to tocotrienols, due to their benefits in neuroprotection as well as cholesterol-lowering and anti-cancer properties. Consequently, tocochromanols are valuable additives in the food, feed, cosmetic and pharmaceutical industries.
The metabolic engineering strategy of S. cerevisiae to enable tocochromanol biosynthesis was started in a preceding master thesis with the provision of the aromatic moiety, homogentisic acid (HGA), from the aromatic amino acid biosynthesis. Hereby, the upregulation and redirection of the native pathway was essential. Therefore, a strain with an engineered aromatic amino acid pathway for improved 4 hydroxyphenylpyruvate (HPP) production (MRY33) was utilised from Reifenrath and Boles (2018). Furthermore, a heterologous hydroxyphenylpyruvate dioxygenase (HPPD) was required to convert HPP into HGA. Thus, several heterologous HPPDs were expressed and characterised regarding their HGA production within the previous study. The best variant originated from Yarrowia lipolytica, YlHPPD, and was integrated into the genome of MRY33. The resulting strain JBY2, produced 435 mg/L HGA in a shake flask fermentation.
This work was started with the genetically highly modified strain JBY2, whose genome already contained a large number of genes artificially expressed behind strong promoters. For further strain development, it was advantageous to maintain a high degree of sequence variability in order to prevent genomic instabilities due to sequence homologies. Thus, 17 artificial promoters (AP1-AP17) were characterised regarding their strength of expression by the yellow fluorescent protein (YFP). These sequences were also part of a patent that was filed during this work (WO2023094429A1).
The key point of this study was the development of a metabolic engineering strategy for the strain JBY2. First, the sufficient supply of the second precursor, the polyprenyl side chain, was investigated. Natively, S. cerevisiae produces the precursor, geranylgeranyl diphosphate (GGPP), from the isopentenyl diphosphate pathway. However, without further engineering, GGPP was barely detectable in JBY2 (< 0.1 mg/L). Thus, engineering of the isopentenyl diphosphate biosynthesis was necessary. The limiting enzyme of the mevalonate pathway was the 3-hydroxy-3-methylglutaryl coenzyme A reductase (HMGCR), which is encoded by HMG1. Therefore, a truncation for feedback-resistance and its overexpression by a promoter exchange was performed. Furthermore, the promoter of the gene for the squalene synthase (pERG9) was exchanged by the ergosterol sensitive promoter pERG1 to limit the metabolic flux of the mevalonate pathway into the ergosterol pathway. The native GGPP synthase (BTS1) was another limitation that was observed throughout this study. To overcome this bottleneck, plasmid-based and integrative overexpression of the native BTS1 and a codon optimised BTS1 were investigated. Other strategies to improve GGPP production were the deletion of the gene for the diacylglycerol pyrophosphate phosphatase (DPP1) to prevent excessive dephosphorylation of GGPP to geranylgeraniol (GGOH), and the overexpression of the farnesyl pyrophosphate synthetase, encoded by ERG20. However, the best improvements of the GGPP biosynthesis, inferred through GGOH measurements, were achieved from the screening of several heterologous GGPP synthases in S. cerevisiae. The best performing strain was JBY61 (JBY2, hmg1Δ::pTDH3-HMG1tr[1573–3165], pERG9Δ::pERG1, ChrIV-49293-49345Δ::pTDH3-XdcrtE-tSSA1_LEU2), bearing the heterologous GGPP synthase crtE of Xanthophyllomyces dendrorhous and produced 64.23 mg/L GGOH. Consequently, this engineering strategy improved the GGOH production by a factor of 642 compared to the parent strain JBY2.
Previous studies towards reduced oxygen availability have mostly focused on changes in total mRNA expression, neglecting underlying transcriptional and post-transcriptional events. Therefore, we generated a comprehensive overview of hypoxia-induced changes in total mRNA expression, global de novo transcription, and mRNA stability in monocytic THP-1 cells. Since hypoxic episodes often persist for prolonged periods, we further compared the adaptation to acute and chronic hypoxia. While total mRNA changes correlated well with enhanced transcription during short-term hypoxia, mRNA destabilization gained importance under chronic conditions. Reduced mRNA stability not only added to a compensatory attenuation of immune responses, but also, most notably, to the reduction in nuclear-encoded mRNAs associated with various mitochondrial functions. These changes may prevent the futile production of new mitochondria under conditions where mitochondria cannot exert their full metabolic function and are indeed actively removed by mitophagy. The post-transcriptional mode of regulation might further allow for the rapid recovery of mitochondrial capacities upon reoxygenation. Our results provide a comprehensive resource of functional mRNA expression dynamics and underlying transcriptional and post-transcriptional regulatory principles during the adaptation to hypoxia. Furthermore, we uncover that RNA stability regulation controls mitochondrial functions in the context of hypoxia.
H. salinarum ist einer von zwei archaealen Organismen, die synchronisiert werden können. Die Synchronisations-Methode konnte in dieser Arbeit optimiert werden. Nahezu 100 % aller Zellen teilen sich in einer Zeitspanne von einem Viertel der Generationszeit. Die Analyse zweier aufeinanderfolgender Zellzyklen zeigte, dass die Zellen sich auch im zweiten Zyklus synchron teilen. Die Zellsynchronisation wurde angewendet, um zellzyklusabhängige Vorgänge in H. salinarum auf unterschiedlichen Ebenen zu charakterisieren. Mittels DNA-Mikroarrays wurden Transkriptomänderungen untersucht. Nur 87 Gene zeigten zellzyklusspezifische Regulationen. Dies entspricht 3 % aller vorhergesagten offenen Leserahmen und ist somit im Vergleich zu allen anderen Organismen, deren Transkriptome untersucht wurden, deutlich geringer. Die Transkriptmengen von 15 ausgewählten Genen wurden mit Northern Blot Analysen verifiziert. Die regulierten Gene konnten in sieben Gruppen mit unterschiedlichen Transkriptprofilen eingeordnet werden. Gruppenspezifische DNA-Sequenzmotive wurden gefunden, von denen angenommen wird, dass sie in die zellzyklusspezifische Transkriptionsregulation involviert sind. Überraschenderweise wurden die meisten als Zellzyklusgene annotierten Gene konstitutiv transkribiert. Die Analyse zellzyklusabhängiger Proteomänderungen erfolgte mittels 2D-Gelelektrophorese. 1200 Proteine konnten reproduzierbar detektiert werden. Die meisten Proteine wurden konstitutiv exprimiert. Nur 30 Proteine zeigten eine zellzyklusabhängige Regulation. Dies entspricht 2,5 % der reproduzierbar detektierten Proteine. Es konnten unterschiedliche Expressionsprofile gefunden werden. Aus den Transkriptom- und Proteomanalysen folgt, dass auf Ebene der Genexpression nur wenige zellzyklusabhängige Regulationen existieren. Sekundäre Botenstoffe spielen eine wesentliche Rolle bei Signaltransduktionen und sind an Regulationen von Zellzyklen beteiligt. Eine Methode zur Messung intrazellulärer cAMP-Konzentration in H. salinarum konnte etabliert werden. Die basale cAMP-Konzentration von 200 µM in haloarchaealen Zellen ist bedeutend höher als die von Hefe. Synchrone Kulturen wurden auf die Oszillation des sekundären Botenstoffes hin untersucht. Es konnte gezeigt werden, dass die Konzentration zellzyklusabhängig zweimal kurzfristig signifikant erhöht wird. Die cAMP-Konzentration steigt einmal vor und einmal direkt nach der Zellteilung an. cAMP könnte daher ein wichtiges Signal für das Fortschreiten des Zellzyklusses sein. Es konnte eine Methode zur Analyse der Replikation in H. salinarum entwickelt werden. Hierfür wurde das Basenanalogon BrdU und ein spezifischer Antikörper gegen dieses verwendet. Die Analyse synchroner Kulturen zeigte das überraschende Ergebnis, dass die Zellen ihre DNA während des gesamten Zellzyklusses zu replizieren scheinen. Vor allem die DNA-Synthese in synchronen Kulturen während der Teilungsphase der Zellen stellt einen völlig neuartigen Zellzyklusablauf dar. Für in vivo Analyse von Zellzyklusproteinen können diese mit GFP markiert und fluoreszenzmikroskopisch analysiert werden. Mit dieser Methode konnten wichtige zellzyklusabhängige Aspekte in anderen Arten aufgeklärt werden. Für einen GFP-Modellversuch wurde in dieser Arbeit ein Fusionsgen bestehend aus den offenen Leserahmen von bop (bacterio-opsin) und gfp (green fluorescent protein) erstellt. Die Expression des chromosomalen bop Gens und des plasmidkodierten bop-gfp Fusionsgens wurde mit Northern Blot Analysen nachgewiesen. Die Purpurmembranbiogenese wurde fluoreszenzmikroskopisch in lebenden H. salinarum Zellen untersucht. Es stellte sich heraus, dass die Bildung der Purpurmembran ca. 15 Stunden nach Eintritt der Zellen in die stationäre Wachstumsphase beginnt. Innerhalb der folgenden sieben Stunden stieg sowohl die Anzahl an Zellen mit fluoreszierenden Signalen als auch die durchschnittliche Anzahl an Signalen pro Zelle gleichmäßig an. Die Ergebnisse zeigen, dass GFP-Fusionsproteine in H. salinarum z. B. zur Charakterisierung von differentieller Genexpression verwendet werden können. Des Weiteren könnten sie für die Untersuchung zellzyklusabhängiger Proteinlokalisation und für die Analyse der intrazellulären Verteilung putativer Cytoskelettproteine eingesetzt werden.
Background The cell cycle of all organisms includes mass increase by a factor of two, replication of the genetic material, segregation of the genome to different parts of the cell, and cell division into two daughter cells. It is tightly regulated and typically includes cell cycle-specific oscillations of the levels of transcripts, proteins, protein modifications, and signaling molecules. Until now cell cycle-specific transcriptome changes have been described for four eukaryotic species ranging from yeast to human, but only for two prokaryotic species. Similarly, oscillations of small signaling molecules have been identified in very few eukaryotic species, but not in any prokaryote. Results A synchronization procedure for the archaeon Halobacterium salinarum was optimized, so that nearly 100% of all cells divide in a time interval that is 1/4th of the generation time of exponentially growing cells. The method was used to characterize cell cycle-dependent transcriptome changes using a genome-wide DNA microarray. The transcript levels of 87 genes were found to be cell cycle-regulated, corresponding to 3% of all genes. They could be clustered into seven groups with different transcript level profiles. Cluster-specific sequence motifs were detected around the start of the genes that are predicted to be involved in cell cycle-specific transcriptional regulation. Notably, many cell cycle genes that have oscillating transcript levels in eukaryotes are not regulated on the transcriptional level in H. salinarum. Synchronized cultures were also used to identify putative small signaling molecules. H. salinarum was found to contain a basal cAMP concentration of 200 uM, considerably higher than that of yeast. The cAMP concentration is shortly induced directly prior to and after cell division, and thus cAMP probably is an important signal for cell cycle progression. Conclusions The analysis of cell cycle-specific transcriptome changes of H. salinarum allowed to identify a strategy of transcript level regulation that is different from all previously characterized species. The transcript levels of only 3% of all genes are regulated, a fraction that is considerably lower than has been reported for four eukaryotic species (6% - 28%) and for the bacterium C. crescentus (19%). It was shown that cAMP is present in significant concentrations in an archaeon, and the phylogenetic profile of the adenylate cyclase indicates that this signaling molecule is widely distributed in archaea. The occurrence of cell cycle-dependent oscillations of the cAMP concentration in an archaeon and in several eukaryotic species indicates that cAMP level changes might be a phylogenetically old signal for cell cycle progression.
Octanoic acid (C8 FA) is a medium-chain fatty acid which, in nature, mainly occurs in palm kernel oil and coconuts. It is used in various products including cleaning agents, cosmetics, pesticides and herbicides as well as in foods for preservation or flavoring. Furthermore, it is investigated for medical treatments, for instance, of high cholesterol levels. The cultivation of palm oil plants has surged in the last years to satisfy an increasing market demand. However, concerns about extensive monocultures, which often come along with deforestation of rainforest, have driven the search for more environmentally friendly production methods. A biotechnological production with microbial organisms presents an attractive, more sustainable alternative.
Traditionally, the yeast Saccharomyces cerevisiae has been utilized by mankind in bread, wine, and beer making. Based on comprehensive knowledge about its metabolism and genetics, it can nowadays be metabolically engineered to produce a plethora of compounds of industrial interest. To produce octanoic acid, the cytosolic fatty acid synthase (FAS) of S. cerevisiae was utilized and engineered. Naturally, the yeast produces mostly long-chain fatty acids with chain lengths of C16 and C18, and only trace amounts of medium-chain fatty acids, i.e. C8-C14 fatty acids. To generate an S. cerevisiae strain that produces primarily octanoic acid, a mutated version of the FAS was generated (Gajewski et al., 2017) and the resulting S. cerevisiae FASR1834K strain was utilized in this work as a starting strain.
The goal of this thesis was to develop and implement strategies to improve the production level of this strain. The current mode of quantification of octanoic acid includes labor-intensive, low-throughput sample preparation and measurement – a main obstacle in generating and screening for improved strain variants. To this end, a main objective of this thesis was the development of a biosensor. The biosensor was based on the pPDR12 promotor, which is regulated by the transcription factor War1. Coupling pPDR12 to GFP as the reporter gene on a multicopy plasmid allowed in vivo detection via fluorescence intensity. The developed biosensor enabled rapid and facile quantification of the short- and medium-chain fatty acids C6, C7 and C8 fatty acids (Baumann et al., 2018). This is the first biosensor that can quantify externally supplied octanoic acid as well as octanoic acid present in the culture supernatant of producer strains with a high linear and dynamic range. Its reliability was validated by correlation of the biosensor signal to the octanoic acid concentrations extracted from culture supernatants as determined by gas chromatography. The biosensor’s ability to detect octanoic acid in a linear range of 0.01-0.75 mM (≈1-110 mg/L), which is within the production range of the starting strain, and a response of up to 10-fold increase in fluorescence after activation was demonstrated.
A high-throughput FACS (fluorescence-activated cell sorting) screening of an octanoic acid producer strain library was performed with the biosensor to detect improved strain variants (Baumann et al., 2020a). For this purpose, the biosensor was genomically integrated into an octanoic acid producer strain, resulting in drastically reduced single cell noise. The additional knockout of FAA2 successfully prevented medium-chain fatty acid degradation. A high-throughput screening protocol was designed to include iterative enrichment rounds which decreased false positives. The functionality of the biosensor on single cell level was validated by adding octanoic acid in the range of 0-80 mg/L and subsequent flow cytometric analysis. The biosensor-assisted FACS screening of a plasmid overexpression library of the yeast genome led to the detection of two genetic targets, FSH2 and KCS1, that in combined overexpression enhanced octanoic acid titers by 55 % compared to the parental strain. This was the first report of an effect of FSH2 and KCS1 on fatty acid titers. The presented method can also be utilized to screen other genetic libraries and is a means to facilitate future engineering efforts.
In growth tests, the previously reported toxicity of octanoic acid on S. cerevisiae was confirmed. Different strategies were harnessed to create more robust strains. An adaptive laboratory evolution (ALE) experiment was conducted and several rational targets including transporter- (PDR12, TPO1) and transcription factor-encoding genes (PDR1, PDR3, WAR1) as well as the mutated acetyl-CoA carboxylase encoding gene ACC1S1157A were overexpressed or knocked out in producer or non-producer strains, respectively. Despite contrary previous reports for other strain backgrounds, an enhanced robustness was not observable. Suspecting that the utilized laboratory strains have a natively low tolerance level, four industrial S. cerevisiae strains were evaluated in growth assays with octanoic acid and inherently more robust strains were detected, which are suitable future production hosts.
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Hodgkin-Lymphom-Biopsien und abgeleitete Zelllinien sind charakterisiert durch die konstitutive Aktivität verschiedener Komponenten des JAK/STAT-Signalweges. Dennoch ist die Bedeutung dieser Signalvermittler für die Pathogenese des klassischen Hodgkin-Lymphoms nicht vollständig geklärt. Gegenstand dieser Arbeit war die Bedeutung der JAK/STAT-Signalkaskade, sowie insbesondere die zellulären Funktionen von STAT3 und STAT6 zu untersuchen. Zu diesem Zweck kamen zwei verschiedene synthetische Kinase-Inhibitoren (AG490, Cucurbitacin I) zum Einsatz. Beide Substanzen blockieren die Kaskade auf Ebene der Kinasen und sind als JAK2/STAT3-spezifische Inhibitoren beschrieben. In dieser Arbeit konnte gezeigt werden, dass die Behandlung mit beiden Substanzen das Wachstum der malignen Zellen hemmte. Gelretardierungsexperimente ergaben jedoch, dass beide Inhibitoren in allen HL-Zelllinien immer mehr als nur ein STAT-Molekül hemmten. Somit konnte keine Aussage über die Bedeutung einzelner STATs getroffen werden. Um die zellulären Funktionen von STAT3 und STAT6 zu untersuchen wurden daher spezifische siRNAs mittels lentiviraler Vektoren exprimiert. Die Rolle von STAT3 bei der Entstehung verschiedenster Krebsarten ist bereits gut charakterisiert. In dieser Arbeit konnte gezeigt werden, dass STAT3 auch in HL-Zellen ein wichtiger Regulator von Proliferation und Apoptose ist. Darüber hinaus konnte auch STAT6 als Vermittler proliferations-fördernder, anti-apoptotischer Signale identifiziert werden. Es konnte zum ersten Mal gezeigt werden, dass eine alleinige Hemmung von STAT6 ausreicht um Apoptose in einigen HL-Zellen auszulösen. Diese Induktion von Apoptose wurde durch Caspasen vermittelt. Um den genauen Mechanismus aufzuklären und um STAT6-Zielgene zu identifizieren, die anti-apoptotisch wirken, wurde eine Microarray-Analyse durchgeführt. Eine weitere Möglichkeit die Aktivierung der JAK/STAT-Signalkaskade zu beeinflussen bieten die SOCS-Proteine. Diese sind direkte Zielgene der STATs und regulieren die Signalvermittlung in einer negativen Rückkopplung. In vielen unterschiedlichen Krebsarten ist diese Negativregulation ausgefallen oder fehlerhaft. Das kann zu einer konstitutiven Aktivierung des JAK/STAT-Signalweges beitragen. Die Bedeutung der SOCS-Proteine im klassischen Hodgkin-Lymphom ist noch unbekannt und wurde in dieser Arbeit untersucht. Es wurden unterschiedliche Mengen endogenes SOCS1 und SOCS3 in verschiedenen HL-Zelllinien und in HL-Biopsien detektiert. In Überexpessionsexperimenten mit SOCS1 und SOCS3 konnte gezeigt werden, dass sowohl SOCS1, als auch SOCS3 nur in Zellen, die wenig endogene SOCS besitzen, die Aktivität von STAT3 und STAT6 inhibieren konnten. Die Überexpression resultierte in einem Wachstumsarrest und einem erhöhten Anteil toter Zellen. In Zellen, die bereits viel SOCS besaßen, konnten weder STAT3 noch STAT6 inhibiert werden. In diesem Zusammenhang wurde ein Modell, das potentielle Möglichkeiten zum Umgehen einer Negativregulation durch die SOCS-Proteine darstellt, diskutiert. Darüber hinaus konnte in Gelretardierungsexperimenten gezeigt werden, dass SOCS3 zusätzlich zu STAT3 und STAT6 in Zellen, die wenig SOCS besaßen, auch NF?B-Aktivierung hemmte. Da NF?B bereits als wichtiger Überlebensfaktor für HL-Zellen beschrieben wurde, trägt dessen Inhibition wahrscheinlich zu einer Hemmung des Wachstums bei. Zusammenfassend konnten in dieser Arbeit STAT3 und STAT6 als potentielle Ziele für therapeutische Ansätze für das klassische Hodgkin-Lymphom identifiziert werden. Einen weiteren Angriffspunkt für zukünftige Strategien liefern die SOCS-Proteine, die eine signalweg-übergreifende Hemmung von Transkritionsfaktoren erlauben.
Die vorliegende, publikationsbasierte Dissertation, bestehend aus den drei Einzelpublikationen Bayer (2011, 2012) und Bayer und Schönhofer (2012), verfolgte das Ziel, die Spinnenfamilie Psechridae zu revidieren. Weiterhin sollten die phylogenetische Position dieser Familie im System der höheren Webspinnen (Araneomorphae) sowie die phylogenetischen Beziehungen der einzelnen Arten innerhalb der beiden Gattungen der Psechridae untersucht werden. In Form von morphologisch-taxonomischen Bearbeitungen wurden die beiden die Psechridae bildenden Gattungen Psechrus und Fecenia revidiert, wobei sämtliches Typus-Material sowie reichhaltiges, weiteres Material eingehend beschrieben, illustriert und diagnostiziert wurde. Hierbei wurden auch intraspezifische Variabilität sowie die Prä-Epigynen subadulter Weibchen, die in taxonomischen Arbeiten bislang nur eine unwesentliche Rolle gespielt haben, beschrieben, illustriert und taxonomisch ausgewertet. Zudem wurden im Rahmen dieser Untersuchungen bereits Überlegungen über mögliche Verwandtschaftsbeziehungen innerhalb der beiden Gattungen angestellt. ...
Determining the structure and mechanisms of all individual functional modules of cells at high molecular detail has often been seen as equal to understanding how cells work. Recent technical advances have led to a flush of high-resolution structures of various macromolecular machines, but despite this wealth of detailed information, our understanding of cellular function remains incomplete. Here, we discuss present-day limitations of structural biology and highlight novel technologies that may enable us to analyze molecular functions directly inside cells. We predict that the progression toward structural cell biology will involve a shift toward conceptualizing a 4D virtual reality of cells using digital twins. These will capture cellular segments in a highly enriched molecular detail, include dynamic changes, and facilitate simulations of molecular processes, leading to novel and experimentally testable predictions. Transferring biological questions into algorithms that learn from the existing wealth of data and explore novel solutions may ultimately unveil how cells work.
European pea crabs - taxonomy, morphology, and host-ecology (Crustacea: Brachyura: Pinnotheridae)
(2010)
Pinnotherids are small crabs symbiotic to a variety of invertebrates. The European species infest bivalves and sea squirts. Their way of life is parasitic and poses a threat to commercially exploited bivalves. While juveniles of both sexes still look very similar - being agile swimmers and partially free living - a metamorphosis takes place in the female after mating and results in a conspicuous sexual dimorphism. Thereafter, the female settles in its host definitely and is morphologically strongly adapted to the parasitic life phase. A very high reproductive output was demonstrated among several pea crab species infesting bivalves. Despite from that, hardly any information is present in the literature on the pinnotherids’ reproductive biology and the underlying morphology.
Due to their cryptic way of life, the sexual dimorphism, and the different morphotypes of the female, the taxonomy of the Pinnotheridae is a serious challenge. Two widely accepted species are recognized on European coasts: Pinnotheres pisum and Nepinnotheres pinnotheres. Pinnotheres pectunculi was so far only known from the bivalve Glycymeris glycymeris in its type locality Roscoff (France), while Pinnotheres ascidicola and Pinnotheres marioni were described as living exclusively in ascidians without careful comparison with the previously described species. In order to produce standardized comparative descriptions, pea crabs were collected and studied from different hosts and localities in the Northeast Atlantic and in the Mediterranean. Nepinnotheres pinnotheres and Pinnotheres pisum were redescribed with consideration to characters of female and male. According to our morphological analysis, Pinnotheres ascidicola and Pinnotheres marioni are junior synonyms of Nepinnotheres pinnotheres, whereas the status of Pinnotheres pectunculi as a valid species was ascertained. Important characters are the mouthparts, the male gonopods, and especially chelipeds that showed consistent characteristics among different crab stages of both sexes.
Based on our sampling, we estimated the host-range of the European species. Nepinnotheres pinnotheres lives in ascidians and in the pen shell Pinna nobilis. Pinnotheres pisum infests numerous bivalve species - Pinna nobilis included. For Pinnotheres pectunculi novel host records are presented, all from the bivalve family Veneridae. Furthermore, feeding of the Pinnotheres-species was observed. They use a setae comb ventrally on the claw to brush mucus (and the accumulated food particles) from the bivalve gills. Feeding strategies and host-ecology will be thoroughly discussed in consideration to other Pinnotheridae.
We investigated the reproductive systems of European pinnotherids by histological methods, scanning and transmission electron microscopy, and confocal laser scanning microscopy.
The Eubrachyura have internal fertilization: paired vaginas enlarge into storage structures, the spermathecae, which are connected to the ovaries by oviducts. Sperm is stored until the oocytes are mature and transported into the spermathecae, where fertilization takes place. In the investigated pinnotherids, the vagina is of the ‘concave pattern’. Musculature is attached alongside flexible parts of the vagina-wall to control the dimension of its lumen. The genital opening is closed by a muscular mobile operculum.
The spermatheca can be divided into two distinct regions by function and morphology. The ventral part includes the connection with vagina and oviduct and is regarded as the zone where fertilization takes place. It is lined with cuticle except where the oviduct enters the spermatheca by the ‘holocrine transfer tissue’. At ovulation, the oocytes have to pass through this multi-layered glandular epithelium, which has a holocrine mode secretion. The dorsal part of the spermatheca is lined by a highly secretory apocrine glandular epithelium, which was to date only found in fiddler crabs of the genus Uca.
The male internal reproductive system consists of paired testes and corresponding vasa deferentia. The sperm morphology of pinnotherids conforms to other thoracotremes, with slight differences between Nepinnotheres pinnotheres and Pinnotheres pisum. Spermatozoa become enveloped into spermatophores in the secretory proximal vas deferens. The medial vas deferens is strongly enlarged and stores spermatophores embedded in seminal plasma. The distal vas deferens holds tubular appendices, which extend into the ventral cephalothorax and slightly into the pleon. These appendices produce and store vast quantities of seminal plasma. The copulatory system of the Brachyura is formed by paired penes and two pairs of gonopods, which function in sperm transfer. In pinnotherids, the long first gonopods transfers the sperm mass to the female. It holds the ejaculatory canal inside, which opens proximally and distally. The second gonopod is solid, short and conical. During copulation, the penis and the second gonopod are inserted into the base of the tubular first gonopod. The second gonopod functions in the transport of the sperm mass inside the ejaculatory canal towards its distal opening. The specific shape of the second gonopod is strongly adapted for a sealing of the tubular first gonopod with longitudinal cuticle foldings that interlock inside the first gonopod. The presented results are discussed concerning their function in reproduction and in respect of the systematic account.
The role of secretion in sperm transfer, storage and fertilization among the Brachyura is still under debate. It is notable that structure and function of secretion are more complex in pinnotherids and probably more efficient than in other brachyuran crabs, which will be discussed, in view of the parasitic way of life and the high fecundity of pinnotherids.
Schistosomiasis is a severe neglected tropical disease caused by trematodes and transmitted by freshwater snails. Snails are known to be highly tolerant to agricultural pesticides. However, little attention has been paid to the ecological consequences of pesticide pollution in areas endemic for schistosomiasis, where people live in close contact with non-sanitized freshwaters. In complementary laboratory and field studies on Kenyan inland areas along Lake Victoria, we show that pesticide pollution is a major driver in increasing the occurrence of host snails and thus the risk of schistosomiasis transmission. In the laboratory, snails showed higher insecticide tolerance to commonly found pesticides than associated invertebrates, in particular to the neonicotinoid Imidacloprid and the organophosphate Diazinon. In the field, we demonstrated at 48 sites that snails were present exclusively in habitats characterized by pesticide pollution and eutrophication. Our analysis revealed that insensitive snails dominated over their less tolerant competitors. The study shows for the first time that in the field, pesticide concentrations considered “safe” in environmental risk assessment have indirect effects on human health. Thus we conclude there is a need for rethinking the environmental risk of low pesticide concentrations and of integrating agricultural mitigation measures in the control of schistosomiasis.
Startle disease or hereditary hyperekplexia has been shown to result from mutations in the α1‐subunit gene of the inhibitory glycine receptor (GlyR). In hyperekplexia patients, neuromotor symptoms generally become apparent at birth, improve with age, and often disappear in adulthood. Loss‐of‐function mutations of GlyR α or β‐subunits in mice show rather severe neuromotor phenotypes. Here, we generated mutant mice with a transient neuromotor deficiency by introducing a GlyR β transgene into the spastic mouse (spa/spa), a recessive mutant carrying a transposon insertion within the GlyR β‐subunit gene. In spa/spa TG456 mice, one of three strains generated with this construct, which expressed very low levels of GlyR β transgene‐dependent mRNA and protein, the spastic phenotype was found to depend upon the transgene copy number. Notably, mice carrying two copies of the transgene showed an age‐dependent sensitivity to tremor induction, which peaked at ∼ 3–4 weeks postnatally. This closely resembles the development of symptoms in human hyperekplexia patients, where motor coordination significantly improves after adolescence. The spa/spa TG456 line thus may serve as an animal model of human startle disease.
Ziel der vorliegenden Promotionsarbeit war die Herstellung und Charakterisierung einer neuen Stat5 Reportermaus zur Analyse der transkriptionellen Aktivität von STAT5 in verschiedenen Entwicklungsstadien, Zelltypen und Organen auf Einzelzellebene in vivo. Die Zusammenfassung dieser Promotionsarbeit gibt im Folgenden einen Überblick über den JAK/STAT Signalweg und seine einzelnen Komponenten. Das Hauptaugenmerk liegt hierbei auf STAT5, da es eine wichtige Rolle in der zellulären Entwicklung, Differenzierung und Proliferation spielt. Anschließend werden die Klonierung des Stat5 Reportergenkonstruktes und die Herstellung der Reportermaus durch DNA-Mikroinjektion besprochen und die Ergebnisse sowie Schlussfolgerungen der funktionellen in vivo Analyse dieses neuen Reportermausmodells dargestellt. Signal transducer and activator of transcription (STAT) Proteine gehören zu einer Familie von Transkriptionsfaktoren, die latent im Zytoplasma vorkommen. Diese Proteinfamilie besteht aus sieben Mitgliedern: STAT1, STAT2, STAT3, STAT4, STAT5a, STAT5b und STAT6. Alle STAT Proteine weisen eine konservierte Struktur auf, bestehend aus einer N-terminalen Domäne (NTD), einer Coiled-Coil-Domäne (CCD), einer DNA-Bindedomäne (DBD), einer Linkerdomäne (LD), einer src-homology 2- Domäne (SH2) und einer Transaktivierungsdomäne (TAD). Eine Vielzahl löslicher, extrazellulärer Signalmoleküle wie zum Beispiel Hormone, Zytokine und Wachstumsfaktoren binden an ihre spezifischen Oberflächenrezeptoren und Aktivieren so die JAK/STAT Signalkaskade. Dabei führt die Ligandenbindung an den entsprechenden Rezeptor zunächst zur Dimerisierung des Rezeptors und anschließend zur Transphosphorylierung von Janus Kinasen (JAKs). Aktivierte JAKs phosphorylieren dann den Rezeptor an spezifischen Tyrosinresten. An diese können STAT Proteine über ihre SH2 Domäne binden. Die gebundenen STAT Proteine werden anschließend durch JAKs an einem Tyrosinrest (und Serinrest) in der TAD phosphoryliert und dimerisieren im Zytoplasma. Dimerisierte STAT Proteine translozieren anschließend in den Nukleus und binden an spezifische DNA-Sequenzen, die sogenannten GAS (gamma-IFN-aktivierende Seite) Elemente in der Promotorregion ihrer Zielgene. GAS Elemente sind kurze palindromische DNA Regionen mit einer TTTCCNGGAAA Konsensussequenz. Nach Bindung der aktivierten, phosphorylierten STAT Proteine an die GAS Elemente werden weitere Kofaktoren, wie zum Beispiel das CREB Bindeprotein p300/CBP rekrutiert, die gemeinsam als Transkriptionsfaktoren wirken und die Transkription ihrer Zielgene anschalten. Die Identifizierung von STAT5 erfolgte im Rahmen von Promotorstudien am β-Casein Milchgen in der murinen Brustepithelzelllinie HC11 (Schmitt-Ney et al., 1991). Kurz darauf wurde STAT5 auch im Brustgewebe von laktierenden Mäusen, Ratten und Kühen gefunden. Bevor eine Sequenzhomologie zu Proteinen der STAT Genfamilie festgestellt wurde, wurde STAT5 zunächst MGF – „mammary gland factor“ genannt (Schmitt-Ney et al., 1992b; Wakao et al., 1992). Es sind zwei Stat5 Gene bekannt, Stat5a und Stat5b, die eine Sequenzhomologie von 96 % aufweisen und ihren größten Unterschied in der TAD Domäne zeigen. Da keine STAT-ähnlichen Proteine in Hefezellen identifiziert wurden, ist der JAK/STAT Signalweg nur für multizelluläre Organismen von Bedeutung, vermutlich weil diese auf komplexe Zell-Zell Kommunikationen angewiesen sind, um im Zellverband auf Signale in der Umgebung reagieren zu können. STAT5 im Speziellen reguliert neben der Entwicklung des Brustgewebes während der Schwangerschaft, die Produktion von Blutzellen in der fötalen Leber sowie die Zellproliferation während der adulten Hämatopoese. Im Embryo ist die fötale Leber der Ort der Hämatopoese, bevor hämatopoetische Stammzellen im Knochenmark kolonialisieren und sich die Leber zu einem metabolischen Organ entwickelt. In der Maus gelangen ab dem Embryonaltag E12 hämatopoetische Stammzellen aus der Aorta, den Gonaden und dem Mesonephros (Urniere), der sogenannten AGM Region, sowie aus der Plazenta durch den Blutstrom in die fötale Leber. Die Zellen proliferieren hier und migrieren etwa zwei Tage vor der Geburt (E18) ins Knochenmark, wo die Hämatopoese nach der Geburt erfolgt. Durch die Übermittlung einer Vielzahl von Zytokinsignalen reguliert STAT5 die Differenzierung der pluripotenten Zellen in reife Blutzellen und sorgt zusätzlich für die Generierung von Zellen, die anschließend in der Lage sind, das Knochenmark zu repopulieren. Ein STAT5 Verlust führt aufgrund einer auftretenden Anämie zu einer pränatalen Letalität. Während der adulten Hämatopoese fördert STAT5 hingegen die Zellproliferation und den Zellzyklus sowie die Apoptose in hämatopoetischen Stammzellen. Im Brustgewebe ist STAT5 sowohl in der Mammogenese als auch in der Laktogenese involviert. Die Aktivierung von STAT5 erfolgt hierbei durch eine Vielzahl von Faktoren, wie zum Beispiel Prolaktin und Erythropoietin. Der Phosphorylierungsstatus von STAT5 im virgin Stadium ist hierbei gering, steigt aber während der Schwangerschaft und Laktation stetig an und führt zur Aktivierung von einer Reihe von Zielgenen wie Milchproteinen, aber auch Zellzyklusregulatoren wie CyclinD1 und negativen Regulatoren des JAK/STAT Signalweges, wie zum Beispiel SOCS3. Nach der Laktation nimmt die Phosphorylierung von STAT5 hingegen ab und aufgrund von Apoptose kommt es zu einer Rückbildung des alveolaren Gewebes. Die Regulation der Apoptose erfolgt durch eine erhöhte STAT3 Phosphorylierung. Eine Deregulierung des JAK/STAT Signalweges wird in einer Vielzahl von Tumoren beobachtet. Hier liegt STAT5 typischerweise konstitutiv aktiv vor, führt dadurch zu einer verstärkten Zellproliferation und Angiogenese und verhindert gleichzeitig die Apoptose der mutierten Zellen und eine Immunantwort, was zusammen die Tumorentstehung begünstigt. Konstitutiv aktives STAT5 spielt vor allem bei der Entstehung von soliden Tumoren wie Brustkrebs sowie verschiedenen Leukämieformen wie zum Beispiel akute und chronische myelogene Leukämien eine wichtige Rolle. Neben diesen bereits bekannten STAT5 Funktionen ist die Funktion von aktivem, phosphoryliertem STAT5 im Kontext der Mausentwicklung und in adultem Gewebe noch unklar. Um die Rolle von STAT5 während der Entwicklung näher zu charakterisieren, wurden bereits verschiedene Mausmodelle generiert. Seit dem ersten Gentransfer in Mäuse im Jahre 1980 bieten transgene Tiere eine Möglichkeit, detaillierte Einblicke in zelluläre Prozesse im Rahmen der Entwicklung, des Stoffwechsels und der Entstehung von (Krebs-) Erkrankungen zu erlangen. Transgene Mäuse wurden somit zu einem wichtigen Modellsystem, das in der Lage ist, die Mechanismen, die hinter diesen Prozessen stehen, näher zu beleuchten. STAT5a und STAT5b knock out Mäuse sind überlebensfähig, zeigen jedoch phänotypische Unterschiede. Da eine Signalweiterleitung nach Prolaktininduktion in Brustgewebszellen von STAT5a knock out Mäusen nicht erfolgt, sind diese nicht in der Lage während der Schwangerschaft zu Proliferieren und zu Differenzieren. Die Deletion von STAT5a und STAT5b hingegen ist pränatal letal und die Embryos zeigen schwere Anämien aufgrund einer erhöhten Apoptoserate der erythroiden Zellen in der fötalen Leber. Zusätzlich zu den knock-out und gain-of-function Mäusen wurde die Generierung von Reportermäusen immer wichtiger, um spezifische Signalwege im Kontext des gesamten Organismus zu untersuchen. Das Ziel dieser Promotionsarbeit war somit die Herstellung und funktionelle Analyse einer neuen Stat5 Reportermaus. Hierfür wurde zunächst ein neues Stat5 Reporterkonstrukt kloniert. Dieses Reporterkonstrukt sollte eine Vielzahl spezifischer Eigenschaften aufweisen, um speziell durch phosphoryliertes STAT5 aktiviert zu werden: (i) ein LacZ Reportergen, (ii) Stat5 Responsive-Elemente und (iii) einen minimalen Promoter. Das LacZ Reportergen wurde hierbei gewählt, um die transktiptionelle Aktivität von STAT5 in Gewebeschnitten direkt durch Blaufärbung der Zellen zeigen zu können. Bei dem gewählten Promoter handelt es sich um einen Minimalpromoter, für die Bindung genereller Transkriptionsfaktoren. Eine Aktivierung des LacZ Reportergens erfolgt jedoch nur nach vorheriger Bindung eines Transaktivators. Damit STAT5 diese Funktion übernimmt wurden zusätzliche Responsive-Elemente aus dem β-Casein Gen in das Konstrukt eingefügt. Nach erfolgreicher Klonierung von insgesamt sieben verschiedenen Stat5 Reporterkonstrukten, wurde ihre spezifische Induzierbarkeit nach STAT5 Phosphorylierung mittels transienter Transfektionsstudien in vitro analysiert und bestätigt. Das p(Stat5RE)4-CMVmin-LacZ Konstrukt wurde anschließend zwischen humane matrix attachment regions (MAR) kloniert, die als sogenannte Insulatoren fungieren. Diese sollen in der transgenen Maus verhindern, dass entfernt bindende Faktoren die Expression der Reportergenkassette positiv (enhancer) oder negativ (silencer) beeinflussen. Zusätzlich zu den sieben hier generierten Stat5 Reporterkonstrukten, wurde das p(Stat5RE)4-CMVmin-LacZ Reportergenkonstrukt im Rahmen einer Diplomarbeit in einen lentiviralen Gentransfervektor kloniert. Dieser erlaubt die stabile Transduktion von Krebszellen und Primärzellen, so dass eine ineffiziente Transfektion dieser Zellen umgangen werden kann (Gäbel, 2009). Zur Herstellung der transgenen Stat5 Reportermaus wurde das linearisierte und aufgereinigte Stat5 Reporterkonstrukt mittels DNA-Mikroinjektion in den Pronukleus von 470 Eizellen von FVB und C57BL/6 Mäusen injiziert. Die Eizellen wurden anschließend in Ammenmäuse transplantiert. Von den 470 Eizellen kamen 57 Mäuse auf die Welt. Die Integration des Transgens wurde anschließend mittels PCR und Southern Blot analysiert und die Integration des kompletten Transgens konnte in zwei der 57 Mäuse festgestellt werden. Bei beiden transgen-positiven Mäusen handelte es sich um C57BL/6 Mäuse, die anschließend mit Wildtyp C57BL/6 Mäusen verpaart wurden. Nachkommen der F2 Generation wurden dann auf die spezifische Induzierbarkeit des Stat5 Reportergenkonstruktes durch phosphoryliertes STAT5 in vivo untersucht. Da der Phosphorylierungsstatus von STAT5 im Brustgewebe bereits eingehend untersucht wurde und bekannt ist, erfolgte zunächst die Analyse der Reportergenaktivität im murinen Brustgewebe. Hierfür wurde das Brustgewebe isoliert, fixiert und über Nacht gefärbt. Anschließend wurden Paraffinschnitte hergestellt und im Detail analysiert. Im Vergleich zu Wildtyp-Kontrollmäusen konnte die Aktivierung des Reportergens im Brustgewebe in verschiedenen Entwicklungsstadien, vor allem während der späten Schwangerschaft und der Laktation, durch Blaufärbung einzelner Zellen, gezeigt werden. Eine Korrelation der Blaufärbung mit der Phosphorylierung von STAT5 in diesen Zellen wurde anhand von immunhistologischen Färbungen von Paraffinschnitten mit Antikörpern gegen Stat5 und P-Stat5 gezeigt. Zusätzlich zu der hormonell induzierten STAT5 Phosphorylierung bedingt durch eine Schwangerschaft, wurde die Aktivierung des Reportergens durch das Verabreichen von LPS gezeigt. Eine Behandlung der Stat5 Reportermäuse mit LPS führt zu einer Phosphorylierung von STAT5 in Zellen des hämatopoetischen Systems, speziell Granulozyten und Makrophagen, und sollte anschließend das LacZ Reportergen in diesen Zellen aktivieren. Dies konnte durch die Färbung von Blut- und Knochenmarkzellen mit spezifischen Oberflächenmarkern, sowie einer Färbung mit FDG (Fluoresceindi-β-D-galactopyranoside) mittels FACS Analysen bestätigt werden. Das nicht-fluoreszierende FDG wird hierbei von der exprimierten β-Galaktosidase zunächst zu Fluoreszein-monogalactosid (FMG) und anschließend zum hoch fluoreszierenden Fluoreszein hydrolysiert, was eine messbare Erhöhung der Fluoreszenz nach sich zieht. Zusammenfassend konnte das Stat5-Reportergen sowohl durch endogene Signale als auch durch extern zugeführte Signale induziert werden. Anschließend erfolgte die Analyse der Reportergenaktivierung in anderen Organen der Stat5 Reportermaus. Hierbei konnte die Aktivierung des LacZ Reportergens sowohl in der Leber (Hepatozyten), Milz (Pulpa) und Niere (Mark und Rinde) als auch im Thymus (Lymphozyten und antigen präsentierende Zellen) und im Uterus (endometrisches Epithel) bestätigt werden. Diese Ergebnisse korrelieren mit zuvor durchgeführten Western Blot Analysen, die eine Phosphorylierung von STAT5 in eben diesen Organen gezeigt haben. Zusätzlich wurde phosphoryliertes STAT5 auf Proteinebene im Herz und im Gehirn gefunden, jedoch nicht in Gewebsschnitten der β-Galactosidase gefärbten Organe. Dies deutet darauf hin, dass das Reportergen trotz der Anwesenheit von phosphoryliertem STAT5, nicht immer eingeschaltet wird und somit weitere Faktoren für die transkriptionelle Aktivität von STAT5 notwendig sind. Western Blot Analysen sind somit alleine nicht ausreichend, um eine Aussage über die transkriptionelle Aktivität von phosphoryliertem STAT5 zu treffen, so dass die im Rahmen dieser Arbeit generierte Stat5 Reportermaus einen wichtigen Beitrag zum Verständnis von aktivem STAT5 bietet. Das generierte Stat5 Reportermausmodel wurde dann im Rahmen dieser Arbeit genutzt, um die Beteiligung von aktivem STAT5 in der Entwicklung von ΔTrkA induzierter akuter myeloischer Leukämie näher zu untersuchen. Hierfür wurden lineage negative Knochenmarkszellen aus den Stat5 Reportermäusen isoliert. Dabei werden sogenannte „Lin“ Antigene (z.B. CD3, CD4, CD8, Gr-1, Ter-119) genutzt, um reife murine Blutzellen zu identifizieren. Zellen, die diese Oberflächenmarker nicht oder nur in sehr geringen Mengen exprimieren, werden als lineage negativ bezeichnet. Ein Mix monoklonaler Antikörper gegen lineage Antigene kann somit zur Isolation lineage negativer Knochenmarkszellen genutzt werden. Diese negative Selektion führt letztendlich zur Anreicherung hämatopoetischer Stammzellen oder früher Progenitorzellen, die diese Marker (noch) nicht exprimieren. Diese Progenitorzellen wurden dann retroviral mit einem ΔTrkA Konstrukt transduziert und anschließend in bestrahlte Rag-1-/- Mäuse transplantiert und repopulierten in diesen das Knochenmark. Durch die ΔTrkA Transduktion wurde in den Rag-1-/- Mäusen myeloische Leukämie induziert. Jedoch konnte im Rahmen dieser Arbeit keine Aktivierung des Stat5 Reportergenkonstruktes beobachtet werden. Dies deutet darauf hin, dass STAT5 in ΔTrkA induzierten Leukämien keine Rolle spielt und bestätigt die Annahmen von Meyer et al. Durch die hier vorgestellten Ergebnisse bestätigt sich sowohl die Generierung eines neuen Stat5 Reportermausmodels als auch ihre spezifische Induzierbarkeit sowohl durch endogene hormonelle Prozesse (Schwangerschaft) als auch durch externe Manipulation (LPS Behandlung). Diese neue Stat5 Reportermaus wird in Zukunft als wichtiges und effizientes Modell fungieren, um die Rolle von transkriptionel aktivem STAT5 näher zu beleuchten. Hierbei wird sich der Fokus nicht nur auf die Rolle einzelner Zellen bei der normalen Entwicklung von Organen während verschiedener Entwicklungsstadien beschränken, sondern sich mehr und mehr in Richtung Tumorinitiierung und Tumorentwicklung bewegen. Anhand des hier generierten Stat5 Reportermausmodels können in Zukunft weitere Brustkrebs- und Leukämie-Tumormodelle herangezogen werden, um die Rolle und Funktion von STAT5 in der Tumorentwicklung in vivo detailliert analysieren zu können. Auf diesen Ergebnissen aufbauend wird dann die Möglichkeit bestehen, dieses neue Stat5 Reportermausmodell als Plattform zu nutzen, um zahlreiche neue Krebsmedikamente zu entwickeln und zu evaluieren.
Die Diatomee C. meneghiniana reagiert sowohl auf Veränderung der Lichtintensität während des Wachstums, als auch auf Veränderungen der Eisenkonzentration im Medium. Die Erhöhung der Lichtintensität respektive die Erniedrigung der Eisenkonzentration im Medium wurden als Stresssituationen für C. meneghiniana definiert. Unter Stressbedingungen findet zunächst eine generelle Erhöhung der Zellzahl statt, wobei das Volumen der einzelnen Zellen unter Eisenmangelbedingungen stark reduziert wird. Aus diesem Grund findet man schließlich unabhängig von der Lichtintensität in den Eisenmangelkulturen niedrigere Werte für die Biovolumina als in den Kulturen mit Eisensättigung.
Es konnten je nach Kulturbedingung kleine Unterschiede in der äußeren Morphologie der Silikatschalen festgestellt werden, die sich jedoch im Rahmen der normalen Variationsbreite bewegen und daher nicht signifikant sind. In allen Kulturen konnten auf Grund der schonenden Präparationsmethode die für C. meneghiniana als typisch beschriebenen Schwebfäden aus Chitin beobachtet werden.
Die Größe der Phäoplasten ist in den Eisenmangelkulturen und in de Starklichtkulturen deutlich geringer, weshalb auch die Anzahl der Thylakoidbänder sinkt. Die für Diatomeen typische Dreifachbänderung der Thylakoide bleibt jedoch immer erhalten. Zudem zeigen die Phäoplasten der LL 12 – und HL 12 – Zellen Ansammlungen eines Stoffs, der zwar nicht näher identifiziert wurde, wobei es sich aber höchstwahrscheinlich weder um Lipid-Globuli noch um das als Speicherstoff bei Diatomeen vorkommende -1,3-Glucan Chrysolaminarin handelt.
Die Färbung der Kulturen zeigt bereits eine Veränderung in der Pigmentierung der Zellen in Abhängigkeit von der Kulturbedingung. Der Chlorophyllgehalt pro Zellen wird vor allem unter Eisenmangel reduziert, während es in Zellen der HL – Kulturen zu einer Verdoppellung des Gehalts an XC – Pigmenten kommt. Die Kombination beider Effekte führt dazu, dass die HL 12 und der LL 1 – Kultur gleichermaßen hellbraun gefärbt sind, die Färbung der HL 1 – Kultur jedoch beinahe gelb ist. Die hellere Färbung der Eisenmangelkulturen ist wahrscheinlich als Chlorose anzusehen und eine klassische Folge von Eisenmangel bei Diatomeen. Die zugehörigen DEORs der ganzen Zellen sind in den HL – Kulturen anfangs sehr hoch und sinken später.
Die Ursache ist vermutlich in der hohen Lichtintensität und der durch Erhöhung der Zellzahl im Verlauf der Anzucht entstehenden gegenseitigen Beschattung der Zellen zu sehen. Hierfür spricht auch die parallel stattfindende Abnahme der XC – Pigmente – Konzentration.
Die Ermittlung der PS I : PS II – Stöchiometrien zeigt, dass sich offenbar auch die innere Architektur der Thylakoidmembran verändert. So liegt das relative, berechnete Verhältnis von PS II zu PS I nur in der LL 12 – und der HL 1 – Kultur bei 2 : 1. Dieses Verhältnis wird üblicherweise für küstennahe unter den den Anzuchtbedingungen vergleichbaren Lichtverhältnissen lebende Spezies angenommen. Die HL 12 - und die LL 1 – Zellen hingegen weisen ein Verhältnis von 1 : 1 auf. Da es nicht möglich ist, die Veränderung in beiden Kulturen entweder mit Eisenmangel oder Starklichtstress zu erklären, muss hier von unterschiedlichen Ursachen ausgegangen werden.
Die Reoxidationskinetiken weisen darauf hin, dass die Übertragung der Energie von QA an QB je nach Kultur unterschiedlich schnellen Kinetiken folgt. Dies ist wiederum durch die Bindungsart des QB, bzw. seine Verfügbarkeit als Akzeptor bedingt.
In den O-J-I-P-Messungen zeigt sich zunächst, dass die F0 – Werte der Eisenmangelkulturen niedriger liegen. Als Ursache hierfür wird eine Verkleinerung der Antenne des PS II, die sich durch den unter Eisenmangel deutlich erniedrigten Chlorophyllgehalt pro Zelle erklären lässt, und die dadurch bedingte Verringerung der Fluoreszenz angenommen. Deutlich ist zudem, dass die Energie in den HL – Kulturen deutlich schlechter von QA an QB weitergegeben wird, weshalb auch die daraus resultierenden Fv/FM – Werte deutlich niedriger sind. Als Erklärung hierfür kommt der unter HL stark erhöhte XC – Pool in Frage, der bekanntermaßen am nichtphotochemischen Quenching beteiligt ist, das wiederum vor allem unter Lichtstress auftritt.
Mittels Anionenaustauscherchromatografie ist es möglich in den Thylakoiden der Zellen jeder Kulturbedingung mindestens fünf unterscheidbare Fraktionen zu isolieren. Fraktion I enthält ungebundenes Protein und Pigment, Fraktion II, die in bis zu drei Fraktionen untergliedert sein kann, enthält PS I, Fraktion III entspricht dem FCPa, Fraktion IV enthält ebenfalls ein Photosystem, wobei es sich hier um das bislang aus C. meneghiniana noch nicht isolierte PS II handeln könnte, und Fraktion V entspricht dem FCPb. Es fällt auf, dass die Größe der Fläche unter der 437 nm –Mittels Anionenaustauscherchromatografie ist es möglich in den Thylakoiden der Zellen jeder Kulturbedingung mindestens fünf unterscheidbare Fraktionen zu isolieren. Fraktion I enthält ungebundenes Protein und Pigment, Fraktion II, die in bis zu drei Fraktionen untergliedert sein kann, enthält PS I, Fraktion III entspricht dem FCPa, Fraktion IV enthält ebenfalls ein Photosystem, wobei es sich hier um das bislang aus C. meneghiniana noch nicht isolierte PS II handeln könnte, und Fraktion V entspricht dem FCPb. Es fällt auf, dass die Größe der Fläche unter der 437 nm – Absorption bei, Fraktion II und IV mit der Auswertung der Slotblotsignale für die Photosysteme korreliert.
Die endgültige Aufreinigung der FCPs wurde letztlich mit diskontinuierlichen Saccharosegradienten durchgeführt. Dabei zeigte sich, dass alle FCP – Fraktionen nach der Anionenaustauscherchromatografie einen mehr oder weniger großen Anteil an Verunreinigungen durch Photosysteme enthalten, die auf diese Weise abgetrennt werden konnten.
Die Kulturbedingungen haben zwar keinen Einfluss auf den Oligomerisierungsgrad von FCPa, bzw. FCPb, allerdings konnten Unterschiede in der Stabilität der Komplexe festgestellt werden. FCPa scheint unter LL weniger stabil zu sein, während der FCPb unter Eisenmangelbedingungen einen Teil seiner Stabilität einbüßt. Weiterhin kann in der Gelfiltration des FCPa kann nur eine Schulter beobachtet werden und im FCPb sieht man teilweise sogar zwei Schultern. Da sich die Schulter mit der längeren Retentionszeit auf Höhe der Monomerschulter des FCPa befindet, und die Retentionszeit der anderen Schulter beinahe der des FCPa-Trimers entspricht, könnte dies die Hypothese unterstützen, dass der FCPb ebenfalls aus Trimeren aufgebaut ist. Kleine Verschiebungen in der Retentionszeit wären durch das unterschiedliche Molekulargewicht der Monomere erklärbar.
Die SDS – PAGE zeigt zunächst keine Veränderungen in der Zusammensetzung der FCPs unterschiedlicher Kulturbedingungen. Einzig die beiden HL –FCPb – Proben weisen eine hochmolekulare Bande bei ca. 62 kDa auf, die nicht näher identifiziert werden konnte. Auf Grund der Größe kann jedoch ausgeschlossen werden, dass es sich um Kopurifikation des unter Eisenstress bei Diatomeen häufig als Ersatz für Ferredoxin vorkommenden Flavodoxins oder einen Eisentransporter handelt. Die Inkubation mit spezifischen Antikörpern gegen einzelne fcp – Proteine zeigt, dass die 18 kDa – Bande des FCPa fcp2 enthält und die 19 kDa – Bande fcp6. Die 19 kDa – Bande des FCPb reagiert jedoch nicht mit dem fcp6 – Antikörper. Da aus C. cryptica nur noch zwei weitere fcp – Proteine mit einem ungefähren Molekulargewicht von 19 kDa bekannt sind und fcp7 auf Aminosäureniveau eine sehr hohe Ähnlichkeit mit dem fcp6 aufweist, kann man vermuten, dass es das entsprechende Protein im FCPb der fcp5 ist.
Die aktuellen HIV Medikamente basieren sich zum größten Teil auf Substanzen, die gegen virale Proteine gerichtet sind. Ein großer Nachteil dieser Medikamente besteht darin, dass das HI-Virus durch Mutationen Resistenzen gegen diese Substanzen entwickeln kann. Zelluläre Co-Faktoren als antivirales Ziel in der HIV-Therapie zu nutzen, könnte ein neuer Lösungsansatz sein, da das menschliche Genom stabiler ist als das virale. Der Schwerpunkt dieser Arbeit konzentriert sich auf die RNA Helikase DDX3, welche als zellulärer Co-Faktor für die HIV-1 Replikation identifiziert wurde.
Im Rahmen der Dissertation wurde die RNA-Helikase DDX3 durch biochemische Untersuchungen von DDX3Wt und DDX3-Mutanten näher charakterisiert. Die Versuche zeigten, dass die konservierten Motive V und VI bei DDX3Wt für die Bindung und Hydrolyse von ATP essentiell sind. Die spezifische DDX3 Insertion wies ebenfalls eine mutmaßliche Rolle bei der ATP-Bindung und bei Ausbildung der ATP-Bindestelle auf. Ferner konnte für die spezifische Insertion von DDX3 eine Funktion bei der Bindung von viraler RNA Bindungsnachweise nachgewiesen werden. Daher bietet diese Insertion von DDX3 ein mögliches Ziel für die spezifische Modulation bzw. Manipulation der Interaktion von DDX3Wt und viralen Interaktionspartnern sein, ohne weitere RNA Helikasen zu beeinflussen.
Zusätzlich wurden weitere Eigenschaften von DDX3Wt entdeckt. Die ATPase-Aktivität von DDX3Wt konnte durch die Zugabe von ssDNA deutlicher stimuliert werden, als durch die Zugabe ssRNA. Das DDX3Wt eine höhere katalytische Effizienz durch DNA aufweist ist neu, da die meisten DEAD-box Helikasen eine Präferenz für RNA als Co-Faktor für die ATPase-Aktivität besitzen. Des Weiteren konnte erstmalig nachgewiesen werden, dass DDX3 neben der ATPase-Aktivität auch eine Exonuklease-Aktivität besitzt. Die Versuche zeigten, dass DDX3Wt in der Lage war, ssDNA und dsDNA effizient zu spalten. In der DDX3Wt AS-Sequenz wurden fünf Aminosäuresequenz-Motive, sogenannte Exonuklease-Boxen identifiziert, die mit der Exonukleaseaktivität in Verbindung gebracht werden. Die Untersuchung der Bindungseigenschaften von DDX3Wt zeigte auf, dass DDX3Wt auch ohne den zellulären Co-Faktor XPO1 in der Lage ist, virale HIV-1 RNA und DNA direkt zu binden. Diese Erkenntnisse tragen dazu bei, die Funktionen von DDX3Wt im zellulären System besser zu verstehen. Eine genaue Analyse ist Voraussetzung für die Entwicklung von spezifischen Inhibitoren, die die Interaktion von HIV-1 und DDX3Wt hemmen sollen ohne dabei zelluläre Prozesse negativ zu beeinflussen.
Durch Lokalisationsstudien konnte ein neuer relevanter Angriffspunkt für die Inhibition der HIV-1 Replikation identifiziert werden. Denn entgegen den Literaturangaben spielt das putative Leucin-reiche Exportsignal im N-Terminus von DDX3Wt eine wichtige Rolle beim Export aus dem Zellkern und somit auch für die Interaktion mit XPO1.
Mithilfe der Phagen-Display-Technologie konnte im Rahmen dieser Arbeit ein Sequenz-spezifischer Peptid-Ligand für die Insertion von DDX3 identifiziert werden, der eine Aminosäurehomologie zu dem zellulären Co-Faktor XPO1 zeigt. Das identifizierte Peptid DDX3-INS1 wurde für weitere Untersuchungen in Verbindung mit einer Proteintransduktionsdomäne synthetisiert. Das Peptid DDX3-INS1 ist in HIV-1 infizierten Zellen funktionell aktiv und inhibiert die Produktion von HI-Viren ab einer Konzentration von 20 µM ohne dabei toxische oder virolytische Effekte auszuüben. Weitere funktionelle Untersuchungen werden zeigen, ob das selektionierte Peptid DDX3-INS1 als therapeutisches Medikament für die Inhibition von HIV-1 geeignet ist.
Echolocation allows bats to orientate in darkness without using visual information. Bats emit spatially directed high frequency calls and infer spatial information from echoes coming from call reflections in objects (Simmons 2012; Moss and Surlykke 2001, 2010). The echoes provide momentary snapshots, which have to be integrated to create an acoustic image of the surroundings. The spatial resolution of the computed image increases with the quantity of received echoes. Thus, a high call rate is required for a detailed representation of the surroundings.
One important parameter that the bats extract from the echoes is an object’s distance. The distance is inferred from the echo delay, which represents the duration between call emission and echo arrival (Kössl et al. 2014). The echo delay decreases with decreasing distance and delay-tuned neurons have been characterized in the ascending auditory pathway, which runs from the inferior colliculus (Wenstrup et al. 2012; Macías et al. 2016; Wenstrup and Portfors 2011; Dear and Suga 1995) to the auditory cortex (Hagemann et al. 2010; Suga and O'Neill 1979; O'Neill and Suga 1982).
Electrophysiological studies usually characterize neuronal processing by using artificial and simplified versions of the echolocation signals as stimuli (Hagemann et al. 2010; Hagemann et al. 2011; Hechavarría and Kössl 2014; Hechavarría et al. 2013). The high controllability of artificial stimuli simplifies the inference of the neuronal mechanisms underlying distance processing. But, it remains largely unexplored how the neurons process delay information from echolocation sequences. The main purpose of the thesis is to investigate how natural echolocation sequences are processed in the brain of the bat Carollia perspicillata. Bats actively control the sensory information that it gathers during echolocation. This allows experimenters to easily identify and record the acoustic stimuli that are behaviorally relevant for orientation. For recording echolocation sequences, a bat was placed in the mass of a swinging pendulum (Kobler et al. 1985; Beetz et al. 2016b). During the swing the bat emitted echolocation calls that were reflected in surrounding objects. An ultrasound sensitive microphone traveling with the bat and positioned above the bat’s head recorded the echolocation sequence. The echolocation sequence carried delay information of an approach flight and was used as stimulus for neuronal recordings from the auditory cortex and inferior colliculus of the bats.
Presentation of high stimulus rates to other species, such as rats, guinea pigs, suppresses cortical neuron activity (Wehr and Zador 2005; Creutzfeldt et al. 1980). Therefore, I tested if neurons of bats are suppressed when they are stimulated with high acoustic rates represented in echolocation sequences (sequence situation). Additionally, the bats were stimulated with randomized call echo elements of the sequence and an interstimulus time interval of 400 ms (element situation). To quantify neuronal suppression induced by the sequence, I compared the response pattern to the sequence situation with the concatenated response patterns to the element situation. Surprisingly, although the bats should be adapted for processing high acoustic rates, their cortical neurons are vastly suppressed in the sequence situation (Beetz et al. 2016b). However, instead of being completely suppressed during the sequence situation, the neurons partially recover from suppression at a unit specific call echo element. Multi-electrode recordings from the cortex allow assessment of the representation of echo delays along the cortical surface. At the cortical level, delay-tuned neurons are topographically organized. Cortical suppression improves sharpness of neuronal tuning and decreases the blurriness of the topographic map. With neuronal recordings from the inferior colliculus, I tested whether the echolocation sequence also induced neuronal suppression at subcortical level. The sequence induced suppression was weaker in the inferior colliculus than in the cortex. The collicular response makes the neurons able to track the acoustic events in the echolocation sequence. Collicular suppression mainly improves the signal-to-noise ratio. In conclusion, the results demonstrate that cortical suppression is not necessarily a shortcoming for temporal processing of rapidly occurring stimuli as it has previously been interpreted.
Natural environments are usually composed of multiple objects. Thus, each echolocation call reflects off multiple objects resulting in multiple echoes following the calls. At present, it is largely unexplored how neurons process echolocation sequences containing echo information from more than one object (multi-object sequences). Therefore, I stimulated bats with a multi-object sequence which contained echo information from three objects. The objects were different distances away from each other. I tested the influence of each object on the neuronal tuning by stimulating the bats with different sequences created from filtering object specific echoes from the multi-object sequence. The cortex most reliably processes echo information from the nearest object whereas echo information from distant objects is not processed due to neuronal suppression. Collicular neurons process less selectively echo information from certain objects and respond to each echo.
For proper echolocation, bats have to distinguish between own biosonar signals and the signals coming from conspecifics. This can be quite challenging when many bats echolocate adjacent to each other. In behavioral experiments, the echolocation performance of C. perspicillata was tested in the presence of potentially interfering sounds. In the presence of acoustic noise, the bats increase the sensory acquisition rate which may increase the update rate of sensory processing. Neuronal recordings from the auditory cortex and inferior colliculus could strengthen the hypothesis. Although there were signs of acoustic interference or jamming at neuronal level, the neurons were not completely suppressed and responded to the rest of the echolocation sequence.
Echolocation behavior, a navigation strategy based on acoustic signals, allows scientists to explore neural processing of behaviorally relevant stimuli. For the purpose of orientation, bats broadcast echolocation calls and extract spatial information from the echoes. Because bats control call emission and thus the availability of spatial information, the behavioral relevance of these signals is undiscussable. While most neurophysiological studies, conducted in the past, used synthesized acoustic stimuli that mimic portions of the echolocation signals, recent progress has been made to understand how naturalistic echolocation signals are encoded in the bat brain. Here, we review how does stimulus history affect neural processing, how spatial information from multiple objects and how echolocation signals embedded in a naturalistic, noisy environment are processed in the bat brain. We end our review by discussing the huge potential that state-of-the-art recording techniques provide to gain a more complete picture on the neuroethology of echolocation behavior.
Precise temporal coding is necessary for proper acoustic analysis. However, at cortical level, forward suppression appears to limit the ability of neurons to extract temporal information from natural sound sequences. Here we studied how temporal processing can be maintained in the bats’ cortex in the presence of suppression evoked by natural echolocation streams that are relevant to the bats’ behavior. We show that cortical neurons tuned to target-distance actually profit from forward suppression induced by natural echolocation sequences. These neurons can more precisely extract target distance information when they are stimulated with natural echolocation sequences than during stimulation with isolated call-echo pairs. We conclude that forward suppression does for time domain tuning what lateral inhibition does for selectivity forms such as auditory frequency tuning and visual orientation tuning. When talking about cortical processing, suppression should be seen as a mechanistic tool rather than a limiting element.
Summary statement When echolocating under demanding conditions e.g. noisy, narrow space, or cluttered environments, frugivorous bats adapt their call pattern by increasing the call rate within biosonar groups.
Abstract For orientation, echolocating bats emit biosonar calls and use echoes arising from call reflections. They often pattern their calls into groups which increases the rate of sensory feedback over time. Insectivorous bats emit call groups at a higher rate when orienting in cluttered compared to uncluttered environments. Frugivorous bats increase the rate of call group emission when they echolocate in noisy environments. Here, calls emitted by conspecifics potentially interfere with the bat’s biosonar signals and complicate the echolocation behavior. To minimize the information loss followed by signal interference, bats may profit from a temporally increased sensory acquisition rate, as it is the case for the call groups. In frugivorous bats, it remains unclear if call group emission represents an exclusive adaptation to avoid interference by signals from other bats or if it represents an adaptation that allows to orient under demanding environmental conditions. Here, we compared the emission pattern of the frugivorous bat Carollia perspicillata when the bats were flying in noisy versus silent, narrow versus wide or cluttered versus non-cluttered corridors. According to our results, the bats emitted larger call groups and they increased the call rate within the call groups when navigating in narrow, cluttered, or noisy environments. Thus, call group emission represents an adaptive behavior when the bats orient in complex environments.
Animals extract behaviorally relevant signals from “noisy” environments. To investigate signal extraction, echolocating provides a rich system testbed. For orientation, bats broadcast calls and assign each echo to the corresponding call. When orienting in acoustically enriched environments or when approaching targets, bats change their spectro-temporal call design. Thus, to assess call adjustments that are exclusively meant to facilitate signal extraction in “noisy” environments, it is necessary to control for distance-dependent call changes. By swinging bats in a pendulum, we tested the influence of acoustic playback on the echolocation behavior of Carollia perspicillata. This paradigm evokes reproducible orientation behavior and allows a precise definition of the influence of the acoustic context. Our results show that bats dynamically switch between different adaptations to cope with sound-based navigation in acoustically contaminated environments. These dynamics of echolocation behavior may explain the large variety of adaptations that have been reported in the bat literature.
Die lösliche Guanylyl Zyklase (sGC) ist das Schlüsselenzym, das die Stickstoffmonoxid (NO)-induzierte Vasodilatation über eine Erhöhung des intrazellulären zyklischen 3´5´-Guanosinmonophosphats (cGMP) vermittelt. Obwohl die sGC oft als "Haushalts"-Gen bezeichnet wurde, dessen Aktivität nur akut durch die verfügbare NO-Menge reguliert wird, zeigen einige neuere Befunde, dass eine Regulation auch auf Ebene der Gen-Expression stattfindet. Z.B. wurde in zwei Rattenmodellen, der Nitrat-Toleranz (Mülsch et al., 2001) bzw. des chronischen Herzversagens (Bauersachs et al., 1999), eine zwei- bis dreifache Induktion der sGC-Expression beobachtet. Bei der Nitrat-Toleranz wurde zudem ein Anstieg der Endothelin- 1 (ET-1)-Expression beobachtet (Münzel et al., 1995). In dieser Arbeit wurde deshalb untersucht, ob ET- 1 einen Einfluss auf die sGC-Expression und die sGC/cGMP vermittelte Relaxation von Rattengefäßen hat. Um den möglichen Einfluss von ET-1 auf die Transkription der sGC zu untersuchen sollten die Promotoren der beiden Untereinheiten (UE) a1 und ß1 der Ratte kloniert werden. Dazu wurde zuerst eine Bestimmung der Transkriptionsstarts für beide UE durchgeführt. Es konnte gezeigt werde, dass die Sequenz der bis dahin bekannten 5´ Untranslatierten Region (5´ UTR) der a1-UE (Nakane et al., 1990) nicht korrekt war. Die ersten 213 bp dieser Sequenz konnten nicht gefunden werden. Für die ß1-UE konnte der 5´ UTR um 30 bp, im Vergleich zu der von Nakane (1990) publizierten Sequenz, verlängert werden. Letztlich konnten mit Hilfe einer PCR-Technik 2864 bp (a1) und 1287 bp (ß1) in 5´ Richtung des Transkriptionsstarts kloniert und sequenziert werden. Beide Promotoren zeigten eine basale Aktivität, die sich mit zunehmender Verkürzung der Bereiche in Richtung Transkriptionsstart erhöhte. Die basale Aktivität der beiden UE-Prornotoren zeigte, dass die Gene der beiden UE nicht in Tandemorganisation, wie im Medakafisch (Mikami et aI., 1999) vorliegen, sondern ähnlich wie bei der Maus (Sharina et al., 2000) beide UE unabhängig voneinander reguliert werden. Beide Promotoren ließen sich durch eine 6 stündige Stimulation mit ET-1 [10nM] um das ca. 1,6 bis l,9fache aktivieren. Bei Verkürzung des a1-Promotors wurde zudem festgestellt, dass das kürzeste Fragment sich nicht mehr durch ET-1 stimulieren ließ. In den 146 bp, die diesem Konstrukt fehlten, befinden sich mögliche Bindestellen für die Transkriptionsfaktoren PEA3, NF-Il6 und E2A. In kultivierten glatten Gefäßmuskelzellen der Ratte konnte mit Hilfe der RT-PCR gezeigt werden, dass ET-I (10 nM, 6 Std.) die Expression beider UE auf mRNA-Ebene um das ca. dreifache erhöht. Zudem konnte für die ß1-UE mit Hilfe der Real-Time-PCR (TaqManTM) und für die ET-Rezeptortypen spezifische Antagonisten gezeigt werden, dass dieser ET-1 Effekt über den ETA-Rezeptor vermittelt wird. Bei isometrischen Kontraktionsmessungen an Endothel-freien Rattengefäßen konnte gezeigt werden, dass eine 4 stündige Vorstimulation mit 10 nM ET-1 die für eine 50%ige Relaxation der Gefäße nötige Konzentration des NO-Donors Natriumnitropussuid (SNP) um ca. eine Zehnerpotenz verringert. ET-1 erzeugt also eine deutliche Sensitivierung der Gefäße gegenüber NO. Durch Versuche mit einem stabilem cGMP-Analogon (8-Bromo-cGMP) konnte zudem gezeigt werden, dass nachfolgenden Elemente der NO/cGMP Signalkette nicht durch die ET-1 Stimulation beeinflusst wurden. Auch Teile der Signalkette, die die cAMP-induzierte Relaxation vermitteln, wurden nicht durch ET-1 beeinflusst. Schließlich konnte in in-vitro Versuchen gezeigt werden, dass ET-1 sowohl in Endothel-freien Rattenaorten und Koronargefäßen des Schweins, als auch in kultivierten, glatten Rattengefäßmuskelzellen eine signifikante Steigerung der spezifischen NO-induzierten sGC-Aktivität bewirkt. Die in dieser Arbeit gezeigte Steigerung der Promotoraktivität, der mRNA-Mengen und der enzymatischen Aktivität der sGC durch ET-1 deutet auf einen biologischen Rückkoppelungsmechanismus hin. Dieser würde einer übermässigen Vasokontraktion und den mitogenen Effekten von ET-l bei einer Überexpression entgegen wirken und wäre somit ein wichtiges Element der Feineinstellung der ET-1 Wirkung.