570 Biowissenschaften; Biologie
Refine
Year of publication
Document Type
- Article (3572)
- Doctoral Thesis (1329)
- Book (362)
- Part of Periodical (346)
- Preprint (225)
- Review (101)
- Contribution to a Periodical (63)
- Part of a Book (25)
- Periodical (19)
- Conference Proceeding (15)
Language
Keywords
- RNA (23)
- taxonomy (21)
- aging (20)
- SARS-CoV-2 (19)
- biodiversity (19)
- Biodiversität (18)
- inflammation (18)
- Podospora anserina (17)
- mitochondria (17)
- Biochemistry (16)
Institute
- Biowissenschaften (1656)
- Biochemie und Chemie (806)
- Medizin (489)
- Biochemie, Chemie und Pharmazie (417)
- Institut für Ökologie, Evolution und Diversität (187)
- Senckenbergische Naturforschende Gesellschaft (170)
- MPI für Biophysik (148)
- Biodiversität und Klima Forschungszentrum (BiK-F) (135)
- Physik (131)
- Exzellenzcluster Makromolekulare Komplexe (121)
Dank intensiver Forschung konnte Stickstoffmonoxid (NO) innerhalb der letzten Jahrzehnte als ein gasförmiges Signalmolekül (second messenger) identifiziert werden, das innerhalb der Zelle verschiedene Signalkaskaden beeinflusst. Dabei spielt sowohl der Syntheseort als auch die synthetisierte NO-Menge eine entscheidende Rolle für die Spezifität des über NO vermittelten Signals. Dies spiegelt sich unter Anderem in den zahlreichen regulatorischen Mechanismen, denen die NO-Synthasen unterliegen, wider. In jüngster Vergangenheit konnte gezeigt werden, dass nicht nur der Aktivitätsstatus der NO-Synthasen, sondern ebenfalls deren subzelluläre Lokalisation durch solche Mechanismen entscheidend beeinflusst werden. Von besonderer Bedeutung scheinen dabei mit den NO-Synthasen interagierende Proteine zu sein. So resultiert beispielsweise eine Überexpression von NOSIP – einem eNOS interagierenden Protein – in CHO-NOS-Zellen in einer Umverteilung von eNOS von der Plasmamembran hin zu intrazellulären Kompartimenten. Diese Umverteilung führt zu einem signifikanten Aktivitätsverlust der eNOS. Die physiologische Relevanz dieser Interaktion wird sowohl durch den Interaktionsnachweis der endogenen Proteine in Endothelzellen als auch durch eine weitreichende Co-Expression in Gastro-Intestinaltrakt, Leber und Bauchspeicheldrüse der Ratte gestützt.
Eine nähere Charakterisierung dieser Interaktion war bisher jedoch noch nicht erfolgt. Auch blieben die biochemischen Eigenschaften von endogenem NOSIP bisher unerforscht. Daher war es Ziel dieser Arbeit, endogenes NOSIP näher zu charakterisieren und dadurch die Voraussetzungen für eine physiologische Interaktion zwischen NOSIP und eNOS aufzuklären. Dabei konnte festgestellt werden, dass es sich bei NOSIP um ein überwiegend nukleär lokalisiertes Protein handelt. Diese nukleäre Lokalisation wird über ein zweiteiliges Kernlokalisationssignal (NLS = nuclear localisation signal) vermittelt. Sukzessive Mutation dieses Signals resultiert in einer zytoplasmatischen Akkumulation von NOSIP. Ferner ist das NLS nach Fusion an heterologe Proteine in der Lage, deren Lokalisation in Richtung Zellkern zu verschieben. In Heterokaryon-Assays konnte gezeigt werden, dass NOSIP zusätzlich aus dem Kern exportiert wird und daher ein zwischen Kern und Zytoplasma wanderndes Protein ist. Dieses „trafficking“ wird über ein dynamisches Gleichgewicht aus Kernimport und Kernexport reguliert. Der Kernexport von NOSIP wird durch einen ungewöhnlichen - nicht durch Leptomycin B inhibierbaren - Mechanismus bewerkstelligt. Entsprechend findet sich innerhalb der NOSIP-Sequenz kein typisches, leucinreiches Exportsignal, durch welches gewöhnlich Kernexport über Bindung an Crm1 (chromosome region maintenance 1) vermittelt wird. Das dynamische Gleichgewicht zwischen Kernimport und Kernexport, verschiebt sich in Abhängigkeit vom Zellzyklus in der G2-Phase in Richtung Export, was in einer zytoplasmatischen Akkumulation von NOSIP resultiert. Beeinflusst wird das dynamische Gleichgewicht dabei möglicherweise von einer Interaktion zwischen NOSIP und der Zellzyklus-regulatorischen Kinase CDK1 (cyclin dependent kinase 1).
In Bezug auf eNOS ist diese zytoplasmatische Lokalisation von NOSIP von entscheidender Bedeutung, wie in vergleichenden Transfektionsexperimenten mit zytoplasmatischen NOSIP-Mutanten in CHO-NOS-Zellen gezeigt werden konnte. Danach vermittelt ausschließlich Transfektion dieser Mutanten eine Translokation von eNOS an das Aktin-Zytoskelett, während natives, primär nukleär lokalisiertes NOSIP keinen Einfluss auf die eNOS-Lokalisation hat. Analog dazu resultiert die zytoplasmatische Akkumulation von endogenem NOSIP in der G2-Phase des Zellzyklus ebenfalls in einer Translokation von eNOS an das Aktin-Zytoskelett, welche eine signifikante Aktivitätsminderung der NO-Synthase zur Folge hat. Diese zellzyklusspezifischen, eNOS-regulativen Effekte erfolgen in Abhängigkeit von endogenem zytoplasmatischem NOSIP, wie mittels RNA-Interferenzexperimente belegt werden konnte. Danach können sowohl die Umverteilung von eNOS als auch die daraus resultierende Aktivitätsminderung durch eine Expressionsunterdrückung von NOSIP vollständig inhibiert werden.
Die innerhalb dieser Arbeit erhobenen Daten stellen den ersten Bericht über eine Zellzyklusabhängige Regulation einer NOS-Isoform dar. Diese negative Regulation wird durch eine Umverteilung von eNOS an ein inaktives Kompartiment erreicht, welche wiederum über eine zellzyklusabhängige Lokalisationsänderung von NOSIP bewerkstelligt wird. In der Literatur finden sich zahlreiche Berichte über die Auswirkungen von exogen verabreichtem NO auf Zellzyklus-gesteuerte Ereignisse, wie Apoptose oder Proliferation. In diesem Zusammenhang zeigen die hier erhobenen Daten, dass die endogene NO-Menge tatsächlich zellzyklusspezifisch reguliert wird. Diese Regulation könnte möglicherweise ein Teil eines endogenen, NO-abhängigen Mechanismus darstellen, der die Apoptose und/oder die Proliferation beeinflusst.
Highlights
• Different NADPH supply strategies are compared in Saccharomyces cerevisiae.
• Example products are d-xylitol and l-galactonate.
• ZWF1 overexpression is the most robust strategy in the diauxic batch fermentation.
• Carbon source dependencies and interferences of different strategies are explored.
Abstract
Enhancing the supply of the redox cofactor NADPH in metabolically engineered cells is a critical target for optimizing the synthesis of many product classes, such as fatty acids or terpenoids. In S. cerevisiae, several successful approaches have been developed in different experimental contexts. However, their systematic comparison has not been reported. Here, we established the reduction of xylose to xylitol by an NADPH-dependent xylose reductase as a model reaction to compare the efficacy of different NADPH supply strategies in the course of a batch fermentation, in which glucose and ethanol are sequentially used as carbon sources and redox donors. We show that strains overexpressing the glucose-6-phosphate dehydrogenase Zwf1 perform best, producing up to 16.9 g L−1 xylitol from 20 g L−1 xylose in stirred tank bioreactors. The beneficial effect of increased Zwf1 activity is especially pronounced during the ethanol consumption phase. The same notion applies to the deletion of the aldehyde dehydrogenase ALD6 gene, albeit at a quantitatively lower level. Reduced expression of the phosphoglucose isomerase Pgi1 and heterologous expression of the NADP+-dependent glyceraldehyde-3-phosphate dehydrogenase Gdp1 from Kluyveromyces lactis acted synergistically with ZWF1 overexpression in the presence of glucose, but had a detrimental effect after the diauxic shift. Expression of the mitochondrial NADH kinase Pos5 in the cytosol likewise improved the production of xylitol only on glucose, but not in combination with enhanced Zwf1 activity. To demonstrate the generalizability of our observations, we show that the most promising strategies – ZWF1 overexpression and deletion of ALD6 - also improve the production of l-galactonate from d-galacturonic acid. Therefore, we expect that these findings will provide valuable guidelines for engineering not only the production of xylitol but also of diverse other pathways that require NADPH.
Four novel species of subgenus Russula crown clade collected from northwestern China are described based on morphological and phylogenetic evidence. Morphologically, R. griseorosea Y.Song sp. nov. (subsection Puellarinae) is characterized by its brown pileus with a grayish pink tint, basidiospores with warts often connected by fine lines, orthochromatic pileipellis with long terminal cells and septate pileocystidia; R. micangshanensis Y.Song sp. nov. (subsection Olivaceinae) is diagnosed by its large basidia, hymenial cystidia and basidiospores, and spore ornamentations with unequal crests and often twinned warts, which give the spore distinctive appearance; R. minirosea Y.Song sp. nov. (subsection Laricinae) has very small basidiocarp with pileus less than 3.3 cm in diameter, basidiospores with fine reticulum, small basidia, and septate pileocystidia; R. purpureomarginalis F.Li & Y.Song sp. nov. (subsection Xerampelinae) has large basidiospores with often isolated ornamentations, slim basidia and often septate flexuous pileocystidia. Differences between the four novel species and their closely related taxa were analyzed. Phylogenetic analyses based on both ITS and multi-locus (LSU, rpb2 and tef1) were carried out to confirm the distinct taxonomic status of the four novel species.
High-resolution mapping of cell cycle dynamics during T-cell development and regeneration in vivo
(2024)
Control of cell proliferation is critical for the lymphocyte life cycle. However, little is known on how stage-specific alterations in cell cycle behavior drive proliferation dynamics during T-cell development. Here, we employed in vivo dual-nucleoside pulse labeling combined with determination of DNA replication over time as well as fluorescent ubiquitination-based cell cycle indicator mice to establish a quantitative high-resolution map of cell cycle kinetics of thymocytes. We developed an agent-based mathematical model of T-cell developmental dynamics. To generate the capacity for proliferative bursts, cell cycle acceleration followed a ‘stretch model’, characterized by simultaneous and proportional contraction of both G1 and S phase. Analysis of cell cycle phase dynamics during regeneration showed tailored adjustments of cell cycle phase dynamics. Taken together, our results highlight intrathymic cell cycle regulation as an adjustable system to maintain physiologic tissue homeostasis and foster our understanding of dysregulation of the T-cell developmental program.
The main goal of this work is to contribute to the existing knowledge of soil micro-fungi in Panama and Germany. Studies about soil degradation and its influents in the soil fungi diversity have not been investigated as extensively in these countries. This is an extensive and challenging topic to examine since there is an immense phenotypic and genetic diversity in the soil fungal community and relating this community together with factors of soil degradation is an extensive task. For this reason, the present thesis studies the species identified in the study areas, in other words, the soil fungal diversity in relation to environmental factors in the Taunus Mountain range in Frankfurt, Germany, and in the Majagua valley in Chiriquí, Panama. Two complementary objectives were achieved, the first was the development of a theoretical irrigation model for degraded soils. The second was the development of a mobile application to facilitate laboratory work in the cultivation of soil micro-fungi.
The design of the methodology was based on identifying the species and relating the diversity found to soil factors. Soil samples were taken in both countries: the Taunus Mountain range was sampled eight times from January to November 2012 and the Majagua valley was sampled on three occasions between February and July 2012. In both studies, the areas included three different vegetation types (forest, grassland, and bare soil). Samples were separated for two purposes: the assessment of fungal diversity by molecular and morphological methods and soil characterization.
Soil samples used in the methodology of pyrosequencing were related to global climatic factors. Morphological identification was achieved with identification keys. Micro-fungi were cultivated in different media until obtaining pure cultures. Molecular identification was performed by getting the DNA sequences using the ITS1 and ITS4 primers and comparing the sequences with other reference sequences from GenBank. This was done considering the BLAST algorithm, which considered sequences that matched 98 % or more of maximum identity as reliable identifications.
Soil characterization was carried out to measure the soil's Physico-chemical properties; those abiotic factors were compaction, temperature, pH, moisture, and soil composition.
Species richness was calculated in each study area with the estimators Chao, Jackknife, and Bootstrap. Furthermore, the species accumulation curves were performed to observe the species discovery rate and estimate sample completeness. Estimate linear regression models correlated the influence between the soil factors (temperature, moisture, pH, soil compaction, and soil composition) and the species richness. In the same way, an analysis of ecological distance was undertaken based on the similarity in the species composition, compared across samples, and correlated with soil factors, using non-metric multidimensional scaling (NMDs).
Study of abundance showed differences between the bare soil abundances and the forest abundances in Germany and Panama; the grasslands in both countries work as transitional areas in the fungi abundance. The key stone species in Germany were Penicillium daleae, and Pochonia bulbillosa, whereas in Panama were Purpureocillium lilacinum and Trichoderma harzianum. Based on Pareto analysis, a theoretical irrigation model was developed to counteract the degradation effects on the abundance of micro-fungi in the soil.
Applications for mobile devices dealing with the cultivation of soil micro fungi were sought. Due to the small number of existing applications, a new App called Soil-Fungi-Cultures (SFC) was developed to facilitate data collection of cultivated soil micro fungi. App Inventor was the program used to design, program, test, and publish the application developed. The developed application was compared with other applications used in identifying bacteria cultures. The results showed that the new application needed more time to capture the records because it saves more information, the navigation flow was acceptable, the number of clicks was high, but it is due to the usefulness in data capture, and finally, the users rated it as a good application with an eight out of ten rating.
Pyrosequencing resulted in 204 Operational Taxonomic Units (OTUs) considering the two study areas (the Taunus Mountain range and the Majagua valley). The Pyrosequencing database was used to contribute to the most important study of fungal diversity globally based on OTUs, which surpasses any study of molecular and taxonomic diversity previously conducted. The principal result in this study was that the climatic factor is the best predictor of fungal richness and community composition on a global scale. However, the part of the research that focused on the local scale, that is to say, on the correlation patterns between the distribution of fungal species and abiotic factors, showed that the soil properties and degradation levels were not associated with fungal richness, diversity or soil composition in the study areas in Germany or Panama. The above confirms that there are exceptions to the way relationships between soil factors with fungal diversity are established at the local level.
In the case of soil samples used for morphological identification, 71 fungal species were obtained, 47 from Germany, and 32 from Panama.
The expanding field of epitranscriptomics might rival the epigenome in the diversity of biological processes impacted. In recent years, the development of new high-throughput experimental and computational techniques has been a key driving force in discovering the properties of RNA modifications. Machine learning applications, such as for classification, clustering or de novo identification, have been critical in these advances. Nonetheless, various challenges remain before the full potential of machine learning for epitranscriptomics can be leveraged. In this review, we provide a comprehensive survey of machine learning methods to detect RNA modifications using diverse input data sources. We describe strategies to train and test machine learning methods and to encode and interpret features that are relevant for epitranscriptomics. Finally, we identify some of the current challenges and open questions about RNA modification analysis, including the ambiguity in predicting RNA modifications in transcript isoforms or in single nucleotides, or the lack of complete ground truth sets to test RNA modifications. We believe this review will inspire and benefit the rapidly developing field of epitranscriptomics in addressing the current limitations through the effective use of machine learning.
Reactive oxygen species (ROS) are constant by-products of aerobic life. In excess, ROS lead to cytotoxic protein aggregates, which are a hallmark of ageing in animals and linked to age-related pathologies in humans. Acylamino acid-releasing enzymes (AARE) are bifunctional serine proteases, acting on oxidized proteins. AARE are found in all domains of life, albeit under different names, such as acylpeptide hydrolase (APEH/ACPH), acylaminoacyl peptidase (AAP), or oxidized protein hydrolase (OPH). In humans, AARE malfunction is associated with age-related pathologies, while their function in plants is less clear. Here, we provide a detailed analysis of AARE genes in the plant lineage and an in-depth analysis of AARE localization and function in the moss Physcomitrella and the angiosperm Arabidopsis. AARE loss-of-function mutants have not been described for any organism so far. We generated and analysed such mutants and describe a connection between AARE function, aggregation of oxidized proteins and plant ageing, including accelerated developmental progression and reduced life span. Our findings complement similar findings in animals and humans, and suggest a unified concept of ageing may exist in different life forms.
Reactive oxygen species (ROS) are constant by-products of aerobic life. In excess, ROS lead to cytotoxic protein aggregates, which are a hallmark of ageing in animals and linked to age-related pathologies in humans. Acylamino acid-releasing enzymes (AARE) are bifunctional serine proteases, acting on oxidized proteins. AARE are found in all domains of life, albeit under different names, such as acylpeptide hydrolase (APEH/ACPH), acylaminoacyl peptidase (AAP), or oxidized protein hydrolase (OPH). In humans, AARE malfunction is associated with age-related pathologies, while their function in plants is less clear. Here, we provide a detailed analysis of AARE genes in the plant lineage and an in-depth analysis of AARE localization and function in the moss Physcomitrella and the angiosperm Arabidopsis. AARE loss-of-function mutants have not been described for any organism so far. We generated and analysed such mutants and describe a connection between AARE function, aggregation of oxidized proteins and plant ageing, including accelerated developmental progression and reduced life span. Our findings complement similar findings in animals and humans, and suggest a unified concept of ageing may exist in different life forms.
Protein oxidation results from the reaction of amino-acid side chains with reactive oxygen species (ROS) and is partly irreversible. In non-photosynthetic tissues, mitochondria are a main source of ROS, whereas plastids are the major source in photosynthetic tissues. Oxidized proteins suffer from decreased structural integrity and even loss of function, and their accumulation leads to cytotoxic aggregates. In mammals, aggregate formation correlates with aging and is linked to several age-related pathologies. Mammalian proteolytic pathways for clearance of oxidized proteins are under intensive research, while mechanistic insights into this process in plants is scarce. Acylamino acid-releasing (AARE) enzymes are ATP-independent serine proteases, presumably acting on oxidized proteins and operating in a dual exo-/endopeptidase mode. They are found in all domains of life. Here, we investigated AARE enzymes in the moss Physcomitrella and the angiosperm Arabidopsis and identified three homologous nuclear genes in Physcomitrella (PpAARE1-3) and a single nuclear gene in Arabidopsis (AtAARE). Surprisingly, we observed triple localization of the proteins AtAARE and PpAARE1 to plastids, mitochondria and the cytosol in vivo, likely conserved across the plant lineage. This represents an ATP-independent possibility for degradation of oxidized proteins in the major source organelles of ROS in plants, which is distinct to mammals. Combinatorial knockout plants and protein interaction analysis revealed specific interactions of the moss AARE isoforms and functions in progressive aging. Analysis of an AtAARE T-DNA mutant further suggests the evolutionary conservation of AARE function in age-related development.
Reactive oxygen species (ROS) are constant by-products of aerobic life. In excess, ROS lead to cytotoxic protein aggregates, which are a hallmark of ageing in animals and linked to age-related pathologies in humans. Acylamino acid-releasing enzymes (AARE) are bifunctional serine proteases, acting on oxidized proteins. AARE are found in all domains of life, albeit under different names, such as acylpeptide hydrolase (APEH/ACPH), acylaminoacyl peptidase (AAP), or oxidized protein hydrolase (OPH). In humans, AARE malfunction is associated with age-related pathologies, while their function in plants is less clear. Here, we provide a detailed analysis of AARE genes in the plant lineage and an in-depth analysis of AARE localization and function in the moss Physcomitrella and the angiosperm Arabidopsis. AARE loss-of-function mutants have not been described for any organism so far. We generated and analysed such mutants and describe a connection between AARE function, aggregation of oxidized proteins and plant ageing, including accelerated developmental progression and reduced life span. Our findings complement similar findings in animals and humans, and support a unified concept of ageing.