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Forest species are affected by macroclimate, however, the microclimatic variability can be more extreme and change through climate change. Fungal fruiting community composition was affected by microclimatic differences. Here we ask whether differences in the fruiting community can be explained by morphological traits of the fruit body, which may help endure harsh conditions. We used a dead wood experiment and macrofungal fruit body size, color, and toughness. We exposed logs of two host tree species under closed and experimentally opened forest canopies in a random-block design for four years and identified all visible fruit bodies of two fungal lineages (Basidio- and Ascomycota). We found a consistently higher proportion of tough-fleshed species in harsher microclimates under open canopies. Although significant, responses of community fruit body size and color lightness were inconsistent across lineages. We suggest the toughness-protection hypothesis, stating that tough-fleshed fruit bodies protect from microclimatic extremes by reducing dehydration. Our study suggests that the predicted increase of microclimatic harshness with climate change will likely decrease the presence of soft-fleshed fruit bodies. Whether harsh microclimates also affect the mycelium of macrofungi with different fruit body morphology would complement our findings and increase predictability under climate change.
Autism spectrum disorder (ASD) is a common neurodevelopmental disorder with a multifarious clinical presentation. Even though many genetic risk factors have been identified and studied in mouse models, the neurophysiological mechanisms underlying the autistic phenotype are still unclear. Based on the high rates of comorbidity with epilepsy, it was hypothesized that the balance between excitation and inhibition in neural circuits may be disrupted in autistic individuals.
In this dissertation, synaptic and network activity was measured in three different genetically modified mouse models that exhibit the characteristic behavioral abnormalities of the disorder: the Neurobeachin (Nbea) haploinsufficient mouse, the Neuroligin-3 (Nlgn3) knockout (KO) mouse, and the Neuroligin-4 (Nlgn4) KO mouse. Each of the affected proteins is involved in the formation and/or function of synapses in the central nervous system. Therefore, it was posited that the reduction or deletion of these proteins might alter the balance of excitatory to inhibitory synaptic transmission in individual neurons and in neural circuits. Extracellular recordings in the hippocampal dentate gyrus of anesthetized mice revealed that the excitation-inhibition (E-I) balance was reduced in Nbea haploinsufficient and Nlgn4 KO mice, but unchanged in Nlgn3 KO mice despite a reduction in excitatory synaptic transmission to dentate granule cells. Unexpectedly, the intrinsic excitability of dentate granule cells was altered in all three mouse models. These results imply that a homeostatic increase in the intrinsic excitability is able to compensate for the decreased excitatory transmission in Nlgn3 KO mice, whereas the decreased intrinsic excitability in the Nbea haploinsufficient and Nlgn4 KO mice leads to a reduction in the E-I balance. Taken together, these findings suggest that the influence of genetic factors on the E-I balance might be a potential common mechanism underlying the development of ASD.
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.
Chemical pollution is one of the main contributors to the degradation of lotic ecosystems and their biodiversity. Among chemicals driving lotic biodiversity decline are anthropogenic organic micropollutants (AOM), which affect the survival and functioning of freshwater organisms. Continuous exposure of freshwater organisms to AOM leads to adverse effects that sometimes cannot be traced with standard toxicity methods such as standard toxicity testing or biodiversity indices. Among these effects of AOM are selective or mutagenic effects that cause impaired species genetic diversity. Thus, the correlation between different levels of AOM and genetic diversity of species is still poorly understood. However, it can be explored by applying population genetics screening.
In Chapter 1 of this thesis, background information on environmental pollution, genetic screening, and the detection of evolutionary-relevant AOM effects in freshwater organisms are described and the thesis goals are identified. The main goal of the thesis is to study whether AOM exposure occurring in European rivers causes a significant evolutionary footprint in freshwater species and leads to a selection of more tolerant geno-and phenotypes. Therefore, population genetics indices together with high-resolution chemical exposure screening of a widespread indicator invertebrate species, Gammarus pulex (Linnaeus, 1758), living in polluted and pristine European rivers were investigated.
In Chapter 2, the development of a genetic screening method for G. pulex (microsatellites) is described. Due to genetic differentiation and the presence of morphologically cryptic lineages, the available sets of target loci do not enable a reliable population genetic characterization of G. pulex from central Germany. Thus, a novel set of microsatellite loci for a high-precision assessment of population genetic diversity was here applied. Eleven loci were first identified and thereafter amplified in G. pulex from three rivers. The new loci reliably amplified and indicated polymorphisms in the studied amphipods. The amplification resulted in the successful identification of genetically distinct populations of G. pulex from the analyzed rivers. Moreover, the microsatellite loci were amplified in other genetic lineages of G. pulex and another Gammarus species, G. fossarum, promising a broader applicability of the loci in related amphipod species.
In Chapter 3, the effects of AOM on species genetic differentiation and sensitivity to toxic chemicals in a typical central European river with pristine and AOM-polluted sections was investigated. The river’s site-specific concentrations of AOM were assessed by chemical analysis of G. pulex tissue and water samples. To test, whether different levels of AOM in the river select for pollution-dependent genotypes, the genetic structure of G. pulex from the river was analyzed. Finally, the toxicokinetics of and sensitivity to the commonly used insecticide imidacloprid were determined for amphipods sampled at pristine and polluted sections to assess whether various levels of AOM in the river influence sensitivity of G. pulex to imidacloprid. The results indicated that different levels of AOM did not drive genetic divergence of G. pulex within the river but led to an increased sensitivity of exposed amphipods to imidacloprid. The amphipods living in polluted river sections were more sensitive to the insecticide due to chronic exposure to toxic levels of AOM.
In Chapter 4, the relationship between site-specific pollution levels of AOM and genetic diversity parameters of G. pulex was analyzed at the regional scale within six rivers in central Germany. The genetic structure of G. pulex in the studied area was tested for relatedness to the waterway distance between sites. Gammarus pulex genetic diversity parameters, including allelic richness and inbreeding rate, were tested against environmental pollution parameters using linear mixed-effect- and structural-equation models. According to the results, G. pulex genetic diversity parameters were significantly associated with the detected AOM levels. At sites with high concentrations of AOM and toxicity potential G. pulex showed reduced genetic diversity and increased rates of inbreeding. These results suggest that AOM play a major role in shaping the genetic diversity of G. pulex in rivers.
According to the findings presented here, the applied microsatellites can be used to successfully detect changes in genetic patterns in freshwater amphipods facing increased levels of AOM. The findings indicate that levels of AOM representative for European rivers do not lead to the separation of genotypes among G. pulex as the connectivity between sites majorly contributes to species’ genetic structure. However, the chronic exposure to increased levels of toxic AOM leads to a reduction of species genetic diversity and increases the sensitivity of G. pulex to the toxic chemical effects.
A promising strategy to reduce the dependency from fossil fuels is to use the yeast Saccharomyces cerevisiae to bioconvert renewable non-food feedstocks or waste streams, like lignocellulosic biomass, into bioethanol and other valuable molecule blocks. Lignocellulosic feedstocks contain glucose and significant fractions of the pentoses xylose and arabinose in varying proportions depending on the biomass type. S. cerevisiae is an efficient glucose consumer, but it cannot metabolize xylose and arabinose naturally. Therefore, extensive research using recombinant DNA techniques has been conducted to introduce and improve the biochemical pathways necessary to utilize these non-physiological substrates. However, any functional pathway capable of metabolizing D xylose and L arabinose in S. cerevisiae requires the transport of these sugars across the plasma membrane. The endogenous sugar transport system of S. cerevisiae can conduct a limited uptake of D-xylose and L-arabinose; this uptake enables only basal growth when the enzymatic pathways are provided. For this reason, the uptake of D xylose and L-arabinose has been recognized as a limiting step for the efficient utilization of these non-physiological substrates.
Gal2, a member of the major facilitator superfamily, is one of the most studied hexose transporters in S. cerevisiae. Although its expression is repressed in the presence of glucose, it also transports this sugar with high affinity when constitutively expressed. Recent efforts to engineer yeast strains for the utilization of plant biomass have unraveled the ability of Gal2 to transport non-physiological substrates like xylose and arabinose, among others. Improving Gal2 kinetic and substrate specificity, particularly for pentoses, has become a crucial target in strain engineering. The main goal of this study is to improve the utilization of xylose and arabinose by increasing the cell permeability of these non physiological substrates through the engineering of the galactose permease Gal2.
GAL2 gene expression depends on galactose, which acts as an inducer; nevertheless, even in the presence of galactose, glucose act as a strict repressor; consequently, GAL2 gene is usually placed under the control of a constitutive promoter. However, the presence of glucose additionally triggers the Gal2 degradation, which is mediated by the covalent attachment of the small 76 amino acid protein ubiquitin (Ub) to the targeted transporter; in a multi-step process called ubiquitination.
Ubiquitination of hexose permeases involves the activation of the Ub molecule by the E1 Ub-activating enzyme using ATP; then, the activated Ub is transferred to a specific Ub-conjugating enzyme E2, which donates the Ub indirectly through a specific HECT E3 enzyme (Rsp5) to a lysine residue of the substrate, with the aid of an adaptor protein which recognizes the target (Rsp5-adaptor). Ubiquitinated permeases are sent by membrane invagination to early endosomes, where they encounter ESCRTs (endosomal sorting complex required for transport). The targeted permeases are sorted in intralumenal vesicles (ILV) inside of the endosome, which after several cycles, turns into a multivesicular body (MVB) that subsequently fuses with the vacuole to expose the protein content of the ILVs to lumenal hydrolases for degradation.
Gal2 contains 30 lysine residues that may accept the ubiquitin molecule, which targets its degradation. It is known that mono-ubiquitination by Rsp5 on multiple lysine residues is necessary to internalize Gal2 (Horak & Wolf, 2001). However, the authors did not identify the specific lysine residues involved in the ubiquitination processes. This study screened several Gal2 variants where lysine residues were mutated or removed from the protein sequence to discover which lysine residues are likely involved in ubiquitination and consequent turnover of the transporter. The results of the screening showed that mutation of the N terminal lysine residues 27, 37, and 44 to arginine (Gal23KR) produced a functional transporter that, when fused with GFP (Gal23KR_GFP), showed an exclusive localization at the plasma membrane in cells growing in galactose or glucose as a sole carbon source (Tamayo Rojas et al., 2021b).
This study furthermore evaluated upstream signals caused by phosphorylation which triggers ubiquitination and consequent turnover of the targeted protein; using similar screening approaches to assess the stabilization of Gal2 by lysine residue modifications, it was possible to identify that N terminal serine residues 32, 35, 39, 48, 53, and 55 are likely involved in the internalization of Gal2, since a Gal2 construct where all these serines were mutated to alanine residues and tagged with GFP (Gal26SA_GFP) exhibited practically complete localization at the plasma membrane in cells growing in galactose or glucose as a sole carbon source (Tamayo Rojas et al., 2021b)...
Mutational analysis of ribosomal DNA and maturation-scheme analysis of ribosomal RNA in A. thaliana
(2022)
Ribosome biogenesis is a fundamental cellular process beginning with long precursor rRNA transcription from multi-copies of repetitive 45S ribosomal DNAs. At the subunit level, the primary pre-rRNA transcript encapsuled in 90S protein-RNA complex undergoes decisive splitting in two chief ways for further maturation into large (LSU) and small (SSU) ribosomal subunit. The usage of specific rDNA copies from defined chromosomes and their selective role during growth and development have been a topic of interest owing to its contribution to specialized ribosome theory which proposes non-monolithic functions for ribosomes and thereby their mRNA translation potential. Dual-guide CRISPR/Cas9 mediated disruption of rDNA regions resulted in stable disruption of up to 2.5% and 5% of all rDNA copies in hetero- and homozygous (ploop KD) conditions, respectively. At the RNA level, the mutation excised a critical structural element, P-loop on the LSU 25S rRNA. Mutation caused a dosage dependent defect with homozygosity leading to severe developmental defects through vegetative and reproductive growth phases which is manifested in their proteome by means of disregulation through both increase and decrease of several gene ontological categories of proteins in mutants. Interestingly, the mutation on chromosome 4 triggered dosage compensation through rRNA expression from chromosome 2 further compounded by ectopic rRNA biogenesis defects. The mutated copies however are not incorporated in the translating ribosomes and as a direct or indirect consequence led to elevated basal autophagic levels in the mutants.
The primary 35S transcript is known to undergo two modes of initial cleavages at the pre-rRNA level that aid in their subsequent maturation. Root cell culture (RCC) studies shows that these cells contain a novel ITS2-first cleaved precursor even under control growth conditions, P-C2 adding a third maturation means for the 35S pre-rRNA. This maturation path is further known to be triggered under elevated growth temperature forming a novel adaptive response in Arabidopsis and two other crop plants, tomato, and rice. Taken together, the pulse-chase labeling analysis of control and stressed tissues uncovers the fine-tuned pre-rRNA schematics with crossovers between multiple maturation paths.
Lipopolysaccharide (LPS) is a major glycolipid component in the outer leaflet of the outer membrane of Gram-negative bacteria and known as endotoxin exhibited by the lipid A moiety, which serves as a membrane anchor. The effective permeability barrier properties of the outer membrane contributed by the presence of LPS in the extracellular layer of the outer membrane confer Gram-negative bacteria a high resistance against hydrophobic compounds such as antibiotics, bile salts and detergents to survive in harsh environments. The biogenesis of LPS is well studied in Escherichia coli (herewith E. coli) and the LPS transport (Lpt) is carried out by a transenvelope complex composed of seven essential proteins (LptABCDEFG), which are located in the three compartments of the cell such as the outer membrane, the inner membrane and the periplasm. The Lpt system also exists in Anabaena sp. PCC 7120 (herewith Anabaena sp.), however, homologues of LptC and LptE are still missing. BLAST search failed to identify a homologue of LptC, in contrast, the secondary structure analysis using the Pfam database based on the existing ecLptC secondary structure identified one open reading frame All0231 as the putative Anabaena sp. homologue of LptC, which is designated anaLptC. Despite the low sequence similarity, the secondary structure alignment between anaLptC and ecLptC using the HHpred server showed that both proteins share high secondary structural similarities. The genotypic analysis of the insertion mutant anaLptC did not identify a fully segregated genome and its phenotypic analysis revealed that it was sensitive against chemicals, suggesting that the analptC gene is essential for the growth of Anabaena sp. and involved in the outer membrane biogenesis. This is further supported by the observation of the small cell phenotype in the anaLptC mutant via transmission electron microscopy. Moreover, physical interactions between the anaLptC periplasmic domain with anaLptA as well as with anaLptF were established, indicating that the anaLptC periplasmic domain is correctly folded and alone functional and that the transmembrane helix is not required for the interaction with anaLptA and anaLptF. Furthermore, the reduction of the O-antigen containing LPS was observed in the insertion mutant anaLptC and the dissociation constant Kd of the anaLptC periplasmic domain for ecLPS was determined.The three-dimensional structure of the periplasmic domain of anaLptC was solved by X-ray crystallography with a resolution of 2.8 Å. The structural superposition between the ecLptC crystal structure (PDB number 3my2) and the crystal structure of anaLptC periplasmic domain obtained by this study showed the similarity in the folding of the two proteins with a Cα r.m.s.d value of about 1 Å and confirmed that the length of anaLptC is more than two times longer than that of ecLptC. The structural comparison also revealed that both structures share the typical β-jellyroll fold and conserved amino acids, which were shown in ecLptC to bind to LPS in vivo and found in anaLptC. Overall, these data strongly suggest that anaLptC is involved in the transport of LPS and support the model whereby the bridge spanning the inner membrane and the outer membrane would be assembled via interactions of the structurally conserved β-jellyroll domains shared by five (LptACDFG) out of seven Lpt proteins.
In the framework of the PNRA (Italian National Antarctic Research Program) project CARBONANT focusing on biogenic carbonates and held in January–February 2002, several Ross Sea banks were sampled to obtain samples of biogenic carbonates. In the Mawson Bank, species belonging to the isopod genus Chaetarcturus Brandt, 1990 were recorded, including a specimen that did not match any described species. In this paper we describe Chaetarcturus cervicornis sp. n., which is characterized by supraocular spines and two pairs of tubercle-like protrusions on the cephalothorax. The new species is very similar to C. bovinus (Brandt & Wägele, 1988) and C. adareanus (Hodgson, 1902), but has a clearly different spine pattern. The study of the species of the genus Chaetarcturus in the Ross Sea contributes to increase our knowledge on the diversity of the Antarcturidae in the Southern Ocean. Ross Sea banks seem to hold an interesting and not-well-known fauna, deserving attention in future research.
Mitglieder der ubiquitär verbreiteten Cryptochrom-Photolyase-Familie sind Blaulicht-absorbierende Flavoproteine mit hoher Sequenzhomologie aber diversen Funktionen. Photolyasen katalysieren die Reparatur UV-Licht-induzierter DNA-Schäden. Cryptochrome (CRYs) wirken als lichtunabhängige Transkriptionsrepressoren innerhalb des Kern-Oszillators der circadianen Uhr oder als primäre Photorezeptoren zur Synchronisation dieser mit dem äußeren Tag-Nacht-Rhythmus und steuern durch Regulation der Genexpression Wachstum und Entwicklung. Gemeinsames Strukturmerkmal aller CPF-Vertreter ist die Photolyase- homologe Region (PHR), die das Chromophor Flavinadenindinukleotid (FAD) bindet, das lichtabhängig zwischen den Redoxformen oxidiert (FADox), semireduziert (FAD●- bzw. FADH●) und vollreduziert (FADH-) wechseln kann und damit die CRY-Konformation und -Aktivität beeinflusst. Unterscheidungsmerkmale sind die spezifische C-terminale Erweiterung (CTE) sowie die Komposition der FAD-Bindetasche, die unterschiedliche FAD-Redoxformen stabilisiert. Die Mechanismen der CRY-Photosignaltransduktion sind nicht völlig erforscht.
CryP ist eines von vier CRYs in der Diatomee Phaeodactylum tricornutum und gehört zur bislang nicht charakterisierten Gruppe pflanzenähnlicher CRYs. In vorhergehenden Untersuchungen wurde für CryP eine nukleare Lokalisation und damit verbunden eine blaulicht- sowie dunkelabhängige Regulation der Transkription unterschiedlichster Gene gezeigt. Zudem reguliert CryP das Proteinlevel photosynthetischer Lichtsammelkomplexe. CryP interagiert mit bisher nicht charakterisierten Proteinen aus dem Bereich DNA und Regulation sowie Ribosomen und Translation. Heterolog exprimiertes und isoliertes CryP stabilisiert das Neutralradikal FADH● und das Antennenchromophor Methenyltetrahydrofolat (MTHF).
In vorliegender Dissertation wurde die Bedeutung des FAD-Redoxzustands und der C-terminalen Proteindomäne für Strukturänderungen hinsichtlich der Oligomerisierung und Konformation sowie für das CryP-Interaktionsverhalten untersucht. Hierzu wurden rekombinante CryP-Varianten heterolog isoliert, die Mutationen in für die FAD-Reduzierbarkeit entscheidenden Aminosäuren oder eine Deletion der CTE tragen.
Die Analyse der CryP-Oligomerisierungsstufe und Konformation erfolgte mittels Ko-Präzipitation, nativen und zweidimensionalen PAGEs sowie partieller Proteolyse. Dabei wurde heterolog isoliertes CryP in seinen drei Redoxformen oxidiert (mit FADox), semireduziert (mit FADH●) und vollreduziert (mit FADH-) sowie das um die CTE-verkürzte CryP-PHR verglichen. Für CryP wurde eine redoxunabhängige, PHR-vermittelte Di- und Tetramerisierung über elektrostatische Wechselwirkung der Monomere beobachtet. Die CTE bindet spezifisch und redoxunabhängig an die PHR in einem Bereich um die FAD-Bindetasche. Dies schließt eine großräumige Konformationsänderung zwischen PHR und CTE infolge einer FAD-Photoreduktion wie für pflanzliche und viele tierische CRYs als Aktivierungsmechanismus für CryP aus.
Interaktionsstudien mittels zweidimensionaler PAGE gaben Aufschluss über unterschiedliche Bindeverhalten der beiden betrachteten Interaktionspartner an CryP. Sowohl BolA, ein potentieller redoxregulierter Transkriptionsfaktor, als auch ID42612 mit unbekannter Funktion interagieren mit CryP unabhängig von der FAD-Redoxform. Dabei bindet BolA an die CTE des CryP-Dimers und -Monomers, während ID42612 einen Komplex mit dem CryP-Dimer bildet.
Mittels in vitro Absorptions- und Fluoreszenzspektroskopie wurde die FAD-Redoxchemie von CryP und CryP-PHR verglichen. Die beiden Varianten unterscheiden sich in der FAD-Photoreduzierbarkeit und -Oxidationskinetik. Das Volllängenprotein CryP kann ohne externes Reduktionsmittel zum semireduzierten FADH● phototreduziert werden, das im Gegensatz zu bekannten CRYs über Tage im Dunkeln stabil gegen aerobe Oxidation ist. Eine Belichtung mit Reduktionsmittel führt zur Bildung des vollreduzierten FADH-, das innerhalb von Minuten zu FADH● rückoxidiert. Das um die CTE verkürzte CryP-PHR kann nur mit externem Reduktionsmittel zu FADH● photoreduziert werden, der vollreduzierte Zustand wird nie erreicht. Die Stabilisierung von FADH● gegen aerobe Oxidation im CryP-Holoprotein ist vergleichbar zur FAD-Redoxchemie von Photolyasen. Verglichen mit sonstigen charakterisierten CRYs ist die Wichtigkeit der CTE für eine effiziente FAD-Photoreduktion und FADH●-Stabilisierung eine CryP-spezifische Charakteristik.
Neben der CTE trägt die zu FAD-N5 proximal gelegene Position zur FADH●-Stabilisierung bei, wie Absorptionsmessungen an CryP_N417C zeigten. CryP weist mit Asparagin die gleiche Konservierung an dieser Position wie Photolyasen auf und unterscheidet sich damit ebenfalls von klassischen CRYs.
Analysen zur cryp-Transkription mittels qRT-PCR zeigten eine rhythmische Expression mit maximalen Transkriptmengen in der Nacht und eine rasche photoinduzierte Herunterregulation der Transkription...
Orientation hypercolumns in the visual cortex are delimited by the repeating pinwheel patterns of orientation selective neurons. We design a generative model for visual cortex maps that reproduces such orientation hypercolumns as well as ocular dominance maps while preserving retinotopy. The model uses a neural placement method based on t–distributed stochastic neighbour embedding (t–SNE) to create maps that order common features in the connectivity matrix of the circuit. We find that, in our model, hypercolumns generally appear with fixed cell numbers independently of the overall network size. These results would suggest that existing differences in absolute pinwheel densities are a consequence of variations in neuronal density. Indeed, available measurements in the visual cortex indicate that pinwheels consist of a constant number of ∼30, 000 neurons. Our model is able to reproduce a large number of characteristic properties known for visual cortex maps. We provide the corresponding software in our MAPStoolbox for Matlab.