Refine
Year of publication
- 2014 (99) (remove)
Document Type
- Article (77)
- Doctoral Thesis (16)
- Book (3)
- Contribution to a Periodical (3)
Has Fulltext
- yes (99)
Is part of the Bibliography
- no (99)
Keywords
- 3D orientation pattern of ciliary bundles (1)
- Acetogen (1)
- Activated Cry1a (1)
- Adaptation (1)
- Angolan giraffe (1)
- Anopheles (1)
- Archaea (1)
- Botswana (1)
- Cation Proton Antiporter (1)
- Cell culture (1)
Institute
- Biowissenschaften (99) (remove)
Die rheumatoide Arthritis (RA) ist eine idiopathische chronisch-entzündliche Systemerkrankung, mit primärer Gelenkmanifestation. Die fortschreitende Gelenkentzündung ist die Folge einer immunologischen Fehlerkennung von Gelenkstrukturen durch dysregulierte B- und T-Lymphozyten. So lassen sich in bis zu 70% der entzündeten Gelenke von RA-Patienten IgG-Autoantikörper gegen das knorpelspezifische Kollagen Typ II (CII) nachweisen.
In dieser Arbeit wurde die CII-Epitop-spezifische humorale Autoimmunantwort in der Pathogenese der RA auf molekularer Ebene analysiert. Im Mittelpunkt stehen hierbei bereits gut charakterisierte B-Zell-Epitope auf dem CII, die über die Speziesbarrieren hinweg evolutionär konserviert sind und sowohl in der humanen RA als auch in der murinen Experimentalerkrankung des CIA-Modell (Collagen-Induced-Arthritis) immundominante Strukturen der humoralen arthritogenen Autoimmunität darstellen.
Ein Teilaspekt der Arbeit war die Aufklärung des molekularen Mechanismus, der den katabolen Effekten des murinen arthritogenen CII-Autoantikörper (UL-1) auf den chondrozytären Matrixmetabolismus zugrunde liegt, gewidmet. Der gegen ein immundominantes Epitop (U1-Epitop) auf dem CII gerichtete monoklonale Antikörper kann unabhängig von seinen Fc-vermittelten inflammatorischen Effektorfunktionen, eine direkte Schädigung der Knorpelmatrix über eine Modulation des Chondrozytenmetabolismus im CIA-Modell bewirken. Basierend auf der Analyse von Sequenzhomologien des U1-Epitopes konnte eine immunologische Kreuzreaktivität mit dem LIF (Leukemia-Inhibitory-Factor)-Rezeptor auf Chondrozyten nachgewiesen werden. Weitergehende funktionelle Studien haben jedoch gezeigt, dass die Rezeptorbindung durch den Antikörper keine intrazellulären Signalwege aktiviert, die an der aus der Literatur bekannten Proteoglykan-depletierenden Wirkung des Zytokins LIF beteiligt sind. Während somit eine UL-1 abhängige Aktivierung des LIF-Rezeptors als Erklärungsmodell der katabolen Antikörperwirkung ausscheidet, konnten die funktionellen in vitro Studien eine spezifische UL-1 Antikörper abhängige Src-Kinaseaktivierung in den humanen Chondrozyten als Ansatzpunkt für zukünftige Studien nachweisen.
In der RA-Pathogenese wird die Bedeutung posttranslationaler Modifikationen, insbesondere der Deiminierung von Argininresten unter Bildung von Citrullin für die Neoepitopgenerierung diskutiert. Autoantikörper gegen citrullinierte Peptide (ACPA, anti-citrullinated-peptides-antibody) gelten als diagnostische und verlaufsprädiktive Marker der RA. Zielstrukturen für ACPAs sind nicht nur einige ubiquitär exprimierte Proteine, sondern auch das knorpelspezifische CII. In dieser Arbeit konnte erstmals die in vitro Bindung CII-spezifischer ACPAs an Knorpelgewebe von RA-Patienten, das als asserviertes Biomaterial aus Synovektomie- bzw. Gelenkersatzoperationen zur Verfügung stand, nachgewiesen werden. Darüber hinaus gelang der erstmalige Nachweis einer chondrozytären Expression der für die posttranslationale Modifikation verantwortlichen Peptidylarginin-Deiminasen (PAD) PAD2 und PAD4 im Knorpelgewebe und ihre Hochregulation in den Chondrozyten unter oxidativem und genotoxischem Stress. Diese Stressoren sind an degenerativen Knorpel-veränderungen in der Pathogenese der Osteoarthrose (OA) beteiligt, sodass die Ergebnisse dieser Arbeit die Hypothese stützen, dass Degenerationsprozesse des alternden Knorpels zur Expression kollagenmodifiziernder PAD-Enzyme führen und damit die immunologische Selbsttoleranz des Knorpelgewebes durch Neoepitop-Generation in der Knorpelmatrix schwächen können.
Ein zentraler Aspekt der Arbeit galt der Analyse der CII-spezifischen humoralen Immunantwort im Blut und in der entzündlich veränderten Synovialmembran von RA-Patienten über die vergleichenden Analyse der rearrangierten Immunglobulingene in epitopspezifisch über biotinylierte CII-Peptide markierten B- und Plasmazellen. Die Isolation der markierten Zellen erfolgte mittels Laser-Mikrodissektion aus dem Gewebe und durchflusszytometrisch aus dem peripheren Blut. Die anschließende Sequenzanalyse der mittels semi-nested Einzelzell-PCR amplifizierten, für die variable Region der leichten und schweren Antikörperkette kodierenden V-Gene, ergab für die Erkennung des immundominanten CIIC1-Epitopes eine präferentielle V-Genverwendung. Darüber hinaus spricht der Nachweis höherer Mutationsraten in synovialen Plasmazellen im Vergleich zu CII-spezifischen B-Zellen im Blut für eine lokale synoviale Affinitätsreifung der Antikörperantwort. Die Klonierung der amplifizierten V-Gene in einen eukaryotischen Expressionsvektor ermöglicht die Expression rekombinanter Antikörper und deren Validierung im ELISA. Zukünftige Affinitätsbestimmungen und Kristallstrukturanalysen dienen dem verbesserten molekularen Verständnis der CII-Antikörpererkennung und murine Antikörper-transferexperimente der Evaluation der Arthritogenität der humanen CII-Antikörperantwort. Fernziel ist die Entwicklung einer auf der CII-Antigenspezifität beruhenden immunmodularischen Therapie der RA.
Ribosome biogenesis in yeast requires 75 small nucleolar RNAs (snoRNAs) and a myriad of cofactors for processing, modification, and folding of the ribosomal RNAs (rRNAs). For the 19 RNA helicases implicated in ribosome synthesis, their sites of action and molecular functions have largely remained unknown. Here, we have used UV cross-linking and analysis of cDNA (CRAC) to reveal the pre-rRNA binding sites of the RNA helicase Rok1, which is involved in early small subunit biogenesis. Several contact sites were identified in the 18S rRNA sequence, which interestingly all cluster in the “foot” region of the small ribosomal subunit. These include a major binding site in the eukaryotic expansion segment ES6, where Rok1 is required for release of the snR30 snoRNA. Rok1 directly contacts snR30 and other snoRNAs required for pre-rRNA processing. Using cross-linking, ligation and sequencing of hybrids (CLASH) we identified several novel pre-rRNA base-pairing sites for the snoRNAs snR30, snR10, U3, and U14, which cluster in the expansion segments of the 18S rRNA. Our data suggest that these snoRNAs bridge interactions between the expansion segments, thereby forming an extensive interaction network that likely promotes pre-rRNA maturation and folding in early pre-ribosomal complexes and establishes long-range rRNA interactions during ribosome synthesis.
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.
One of the most challenging aspects of RT-qPCR data analysis is the identification of reliable reference genes. Ideally, they should be neither induced nor repressed under different experimental conditions. To date, few reference genes have been adequately studied for sugarcane (Saccharum spp.) using statistical approaches. In this work, six candidate genes (αTUB, GAPDH, H1, SAMDC, UBQ, and 25S rRNA) were tested for gene expression normalization of sugarcane root tissues from drought-tolerant and -sensitive accessions after continuous dehydration (24 h). By undergoing different approaches (GeNorm, NormFinder, and BestKeeper), it was shown that most of them could be used in combinations for normalization purposes, with the exception of SAMDC. Nevertheless three of them (H1, αTUB, and GAPDH) were considered the most reliable reference genes. Their suitability as reference genes validated the expression profiles of two targets (AS and PFPα1), related to SuperSAGE unitags, in agreement with results revealed by previous in silico analysis. The other two sugarcane unitags (ACC oxidase and PIP1-1), after salt stress (100 mM NaCl), presented their expressions validated in the same way. In conclusion, these reference genes will be useful for dissecting gene expression in sugarcane roots under abiotic stress, especially in transcriptomic studies using SuperSAGE or RNAseq approaches.
Alternative polyadenylation (APA) is a widespread mechanism that contributes to the sophisticated dynamics of gene regulation. Approximately 50% of all protein-coding human genes harbor multiple polyadenylation (PA) sites; their selective and combinatorial use gives rise to transcript variants with differing length of their 3' untranslated region (3'UTR). Shortened variants escape UTR-mediated regulation by microRNAs (miRNAs), especially in cancer, where global 3'UTR shortening accelerates disease progression, dedifferentiation and proliferation. Here we present APADB, a database of vertebrate PA sites determined by 3' end sequencing, using massive analysis of complementary DNA ends. APADB provides (A)PA sites for coding and non-coding transcripts of human, mouse and chicken genes. For human and mouse, several tissue types, including different cancer specimens, are available. APADB records the loss of predicted miRNA binding sites and visualizes next-generation sequencing reads that support each PA site in a genome browser. The database tables can either be browsed according to organism and tissue or alternatively searched for a gene of interest. APADB is the largest database of APA in human, chicken and mouse. The stored information provides experimental evidence for thousands of PA sites and APA events. APADB combines 3' end sequencing data with prediction algorithms of miRNA binding sites, allowing to further improve prediction algorithms. Current databases lack correct information about 3'UTR lengths, especially for chicken, and APADB provides necessary information to close this gap. Database URL: http://tools.genxpro.net/apadb/
BACKGROUND: Acetogenic bacteria are able to use CO2 as terminal electron acceptor of an anaerobic respiration, thereby producing acetate with electrons coming from H2. Due to this feature, acetogens came into focus as platforms to produce biocommodities from waste gases such as H2+CO2 and/or CO. A prerequisite for metabolic engineering is a detailed understanding of the mechanisms of ATP synthesis and electron-transfer reactions to ensure redox homeostasis. Acetogenesis involves the reduction of CO2 to acetate via soluble enzymes and is coupled to energy conservation by a chemiosmotic mechanism. The membrane-bound module, acting as an ion pump, was of special interest for decades and recently, an Rnf complex was shown to couple electron flow from reduced ferredoxin to NAD+ with the export of Na+ in Acetobacterium woodii. However, not all acetogens have rnf genes in their genome. In order to gain further insights into energy conservation of non-Rnf-containing, thermophilic acetogens, we sequenced the genome of Thermoanaerobacter kivui.
RESULTS: The genome of Thermoanaerobacter kivui comprises 2.9 Mbp with a G+C content of 35% and 2,378 protein encoding orfs. Neither autotrophic growth nor acetate formation from H2+CO2 was dependent on Na+ and acetate formation was inhibited by a protonophore, indicating that H+ is used as coupling ion for primary bioenergetics. This is consistent with the finding that the c subunit of the F1FO ATP synthase does not have the conserved Na+ binding motif. A search for potential H+-translocating, membrane-bound protein complexes revealed genes potentially encoding two different proton-reducing, energy-conserving hydrogenases (Ech).
CONCLUSIONS: The thermophilic acetogen T. kivui does not use Na+ but H+ for chemiosmotic ATP synthesis. It does not contain cytochromes and the electrochemical proton gradient is most likely established by an energy-conserving hydrogenase (Ech). Its thermophilic nature and the efficient conversion of H2+CO2 make T. kivui an interesting acetogen to be used for the production of biocommodities in industrial micobiology. Furthermore, our experimental data as well as the increasing number of sequenced genomes of acetogenic bacteria supported the new classification of acetogens into two groups: Rnf- and Ech-containing acetogens.
ω-Azido fatty acids as probes to detect fatty acid biosynthesis, degradation, and modification
(2014)
FAs play a central role in the metabolism of almost all known cellular life forms. Although GC-MS is regarded as a standard method for FA analysis, other methods, such as HPLC/MS, are nowadays widespread but are rarely applied to FA analysis. Here we present azido-FAs as probes that can be used to study FA biosynthesis (elongation, desaturation) or degradation (β-oxidation) upon their uptake, activation, and metabolic conversion. These azido-FAs are readily accessible by chemical synthesis and their matization with high sensitivity by HPLC/MS, contributing a powerful tool to FA analysis, and hence, lipid analysis in general.
Vesicle transport is a central process to ensure protein and lipid distribution in eukaryotic cells. The current knowledge on the molecular components and mechanisms of this process is majorly based on studies in Saccharomyces cerevisiae and Arabidopsis thaliana, which revealed 240 different proteinaceous factors either experimentally proven or predicted to be involved in vesicle transport. In here, we performed an orthologue search using two different algorithms to identify the components of the secretory pathway in yeast and 14 plant genomes by using the ‘core-set’ of 240 factors as bait. We identified 4021 orthologues and (co-)orthologues in the discussed plant species accounting for components of COP-II, COP-I, Clathrin Coated Vesicles, Retromers and ESCRTs, Rab GTPases, Tethering factors and SNAREs. In plants, we observed a significantly higher number of (co-)orthologues than yeast, while only 8 tethering factors from yeast seem to be absent in the analyzed plant genomes. To link the identified (co-)orthologues to vesicle transport, the domain architecture of the proteins from yeast, genetic model plant A. thaliana and agriculturally relevant crop Solanum lycopersicum has been inspected. For the orthologous groups containing (co-)orthologues from yeast, A. thaliana and S. lycopersicum, we observed the same domain architecture for 79% (416/527) of the (co-)orthologues, which documents a very high conservation of this process. Further, publically available tissue-specific expression profiles for a subset of (co-)orthologues found in A. thaliana and S. lycopersicum suggest that some (co-)orthologues are involved in tissue-specific functions. Inspection of localization of the (co-)orthologues based on available proteome data or localization predictions lead to the assignment of plastid- as well as mitochondrial localized (co-)orthologues of vesicle transport factors and the relevance of this is discussed.
Most available knowledge on fungal arginine metabolism is derived from studies on Saccharomyces cerevisiae, in which arginine catabolism is initiated by releasing urea via the arginase reaction. Orthologues of the S. cerevisiae genes encoding the first three enzymes in the arginase pathway were cloned from Kluyveromyces lactis and shown to functionally complement the corresponding deletion in S. cerevisiae. Surprisingly, deletion of the single K. lactis arginase gene KlCAR1 did not completely abolish growth on arginine as nitrogen source. Growth rate of the deletion mutant strongly increased during serial transfer in shake-flask cultures. A combination of RNAseq-based transcriptome analysis and 13C-15N-based flux analysis was used to elucidate the arginase-independent pathway. Isotopic 13C15N-enrichment in γ-aminobutyrate revealed succinate as the entry point in the TCA cycle of the alternative pathway. Transcript analysis combined with enzyme activity measurements indicated increased expression in the Klcar1Δ mutant of a guanidinobutyrase (EC.3.5.3.7), a key enzyme in a new pathway for arginine degradation. Expression of the K. lactis KLLA0F27995g (renamed KlGBU1) encoding guanidinobutyrase enabled S. cerevisiae to use guanidinobutyrate as sole nitrogen source and its deletion in K. lactis almost completely abolish growth on this nitrogen source. Phylogenetic analysis suggests that this enzyme activity is widespread in fungi.