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Institute
- Biowissenschaften (199) (remove)
Acetogenic bacteria are already established as biocatalysts for production of high-value compounds from C1 substrates such as H2 + CO2 or CO. However, little is known about the physiology, biochemistry and bioenergetics of acetogenesis from formate, an interesting feedstock for biorefineries. Here, we analysed formate metabolism in the model acetogen Acetobacterium woodii. Cells grew optimally on 200 mM formate to an optical density of 0.6. Formate was exclusively converted to acetate (and CO2) with a ratio of 4.4:1. Transcriptome analyses revealed genes/enzymes involved in formate metabolism. Strikingly, A. woodii has two genes potentially encoding a formyl-THF synthetase, fhs1 and fhs2. fhs2 forms an operon with a gene encoding a potential formate transporter, fdhC. Deletion of fhs2/fdhC led to a reduced growth rate, formate consumption and optical densities. Acetogenesis from H2 + CO2 was accompanied by transient formate production; strikingly, formate reutilization was completely abolished in the Δfhs2/fdhC mutant. Take together, our studies gave the first detailed insights into the formatotrophic lifestyle of A. woodii.
Acinetobacter baumannii is an opportunistic human pathogen that has become a global threat to healthcare institutions worldwide. The success of A. baumannii is based on the rise of multiple antibiotic resistances and its outstanding potential to persist in the human host and under conditions of low water activity in hospital environments. Combating low water activities involves osmoprotective measures such as uptake of compatible solutes and K+. To address the role of K+ uptake in the physiology of A. baumannii we have identified K+ transporter encoding genes in the genome of A. baumannii ATCC 19606. The corresponding genes (kup, trk, kdp) were deleted and the phenotype of the mutants was studied. The triple mutant was defective in K+ uptake which resulted in a pronounced growth defect at high osmolarities (300 mM NaCl). Additionally, mannitol and glutamate synthesis were strongly reduced in the mutant. To mimic host conditions and to study its role as an uropathogen, we performed growth studies with the K+ transporter deletion mutants in human urine. Both, the double (ΔkupΔtrk) and the triple mutant were significantly impaired in growth. This could be explained by the inability of ΔkupΔtrkΔkdp to metabolize various amino acids properly. Moreover, the reactive oxygen species resistance of the triple mutant was significantly reduced in comparison to the wild type, making it susceptible to one essential part of the innate immune response. Finally, the triple and the double mutant were strongly impaired in Galleria mellonella killing giving first insights in the importance of K+ uptake in virulence.
Morbus Parkinson (abgekürzt als PD vom Englischen Parkinson’s disease) ist nach Alzheimer die zweithäufigste neurodegenerative Erkrankung. Die Hauptmerkmale sind Rigidität und Bradykinesie, sowie Tremor und posturale Instabilität. Im Gehirn lässt sich bei Parkinsonpatienten post mortem ein Verlust an Neuronen in der Substantia nigra feststellen, was zu den ersten beiden Anzeichen führt. Zudem gibt es intrazelluläre Einschlüsse in den betroffenen Nervenzellen – Lewy-Körperchen genannt – die aus Alpha-Synuklein und anderen Proteinen wie Ubiquitin zusammengesetzt sind. Außerdem ist der Eisenmetabolismus in Gehirnen von Parkinsonpatienten gestört und man findet Eisen-Ablagerungen, vor allem im Mittelhirn. Die Ursachen für PD sind bislang nicht abschließend geklärt. Der Großteil der Fälle ist sporadischer Natur mit unbekannter Ursache und nur bei einem geringen Anteil liegt eine Mutation in einem einzelnen Gen zugrunde. Die häufigsten Mutationen tritt in den Genen für Alpha-Synuklein (SNCA), PINK1 und PARKIN auf.
Die Serin-Threonin-Kinase PINK1 und die E3-Ubiquitin-Protein-Ligase PARKIN sind zwei Proteine, die in Stresssituationen an der Mitochondrien-Außenmembran am Abbau von alten oder nicht richtig funktionierenden Mitochondrien beteiligt sind. Dieser Vorgang nennt sich Mitophagie.
Die dieser Arbeit zugrunde liegenden Publikationen gehen den Zusammenhängen zwischen mitochondrialen Fehlfunktionen und der Pathogenese von PD nach. Da die Krankheit meist erst im hohen Alter auftritt, davon größtenteils ohne direkte Ursache, liegt der Schluss nahe, dass neben genetischen Ursachen auch Umweltfaktoren eine größere Rolle spielen könnten. Um dies näher zu analysieren, wurden experimentell verschiedene Stressoren eingesetzt.
Insgesamt wurden folgende Aspekte untersucht:
I. Welche Auswirkungen hat das Fehlen von PINK1 auf die Zelle? Gibt es einen Biomarker, der mit höherem Alter immer stärker verändert ist?
II. Welchen Einfluss haben Umweltfaktoren wie veränderte Eisen-Exposition auf die Zelle und was verändert sich beim Fehlen von PINK1?
III. Wie können mitochondriale Fehlfunktionen präferentiell das Nervensystem betreffen, wenn es nicht um respiratorische Insuffizienz geht?
Die einzelnen Studien zeigten folgende Ergebnisse:
Torres-Odio/Key et al. 2017 widmete sich der Suche nach molekularen Biomarkern, wodurch PD präsymptomatisch erkannt und die Progression der Erkrankung eingeschätzt werden kann. Die Transkriptom-Analyse der Kleinhirne von Mäusen mit Pink1-/--Mutation in drei verschiedenen Altersstufen zeigte eindrücklich, dass nicht ein einzelner Faktor immer stärker verändert war, sondern, dass immer mehr Faktoren und daher auch eine steigende Zahl an
Signalwegen mit höherem Alter beteiligt waren. Diese Veränderungen betrafen inflammatorische Signalwege, insbesondere Faktoren, die mit der Erkennung und Verarbeitung von zellfremden Nukleinsäuren assoziiert sind. Aufgrund der evolutionären Herkunft von Mitochondrien als frühere Protobakterien haben mitochondriale Nukleinsäuren und Proteine zum Teil bakterielle Ähnlichkeiten, und könnten bei Fehlfunktionen ins Zytosol gelangen. Vor diesem Hintergrund lassen die Ergebnisse der Studie den Schluss zu, dass das angeborene Immunsystem in Neuronen durch eine PINK1-assoziierte mitochondriale Störung aktiviert wird.
In der Publikation Key et al. 2020 wurde Eisen als ein im täglichen Leben vorkommender Stressor eingesetzt und es wurden systematisch Faktoren des Eisenstoffwechsels bei hohen und niedrigen Eisenspiegeln im Zusammenhang mit Parkinson-Mutationen untersucht. Da Eisen für die Gesundheit von Mitochondrien eine große Rolle spielt und Eisen-Chelatoren als Therapie bei PD Patienten bereits diskutiert werden, haben die molekularen Befunde große Relevanz. Die Ergebnisse zeigen, dass unter niedrigen Eisenspiegeln Proteine reduziert waren, die am Nukleotid-Stoffwechsel beteiligt sind, sowie Faktoren, die Eisen-Schwefel-Cluster als Cofaktoren haben und wichtig für die Nukleotid-Qualitätskontrolle sind. Das Fehlen von Eisen führte zu einer Induktion von Pink1 und Prkn, was auf verstärkte Mitophagie hindeutet. Insgesamt konnte gezeigt werden, dass die mitochondriale Eisen-Schwefel-Cluster Biogenese und die post-transkriptionelle Eisenregulation entscheidend für die Pathogenese von PD, bzw. das gesunde Fortbestehen einer Zelle und letztlich auch eines Organismus sind.
In Key et al. 2019 wurde erstmalig das Gesamt-Ubiquitylom aus Gehirnen von gealterten Parkin-knockout (KO) Mäusen erhoben und analysiert, um Ubiquitylierungs-Substrate von PARKIN zu identifizieren. Hierbei zeigte sich eine veränderte Ubiquitylierung von mehreren Faktoren, die an der zellulären Calcium-Homöostase beteiligt sind. Weitere elektrophysiologische Experimente in Gehirnen von gealterten Parkin-/--KO Mäusen ergaben, dass in Nervenzellen im Locus coeruleus die Geschwindigkeit der spontanen Taktgeber erhöht, dass die langsame Nachhyperpolarisation reduziert und, dass die Dauer der Aktionspotentiale erniedrigt war, ohne Veränderung der Kaliumkanal-Ströme.
Insgesamt geht aus den drei Studien hervor, dass mitochondriale Fehlfunktionen bei dauerhaftem Bestehen weitreichende Folgen für die Gesundheit des Nervensystems haben können, denn auch kleine Veränderungen, seien es durch Mutationen oder Umweltfaktoren wie Eisen, können in einer so großen Lebensspanne wie der des Menschen über Krankheit oder Gesundheit entscheiden!
Background: Alternative polyadenylation (APA) refers to the regulated selection of polyadenylation sites (PASs) in transcripts, which determines the length of their 3′ untranslated regions (3′UTRs). We have recently shown that SRSF3 and SRSF7, two closely related SR proteins, connect APA with mRNA export. The mechanism underlying APA regulation by SRSF3 and SRSF7 remained unknown.
Results: Here we combine iCLIP and 3′-end sequencing and find that SRSF3 and SRSF7 bind upstream of proximal PASs (pPASs), but they exert opposite effects on 3′UTR length. SRSF7 enhances pPAS usage in a concentration-dependent but splicing-independent manner by recruiting the cleavage factor FIP1, generating short 3′UTRs. Protein domains unique to SRSF7, which are absent from SRSF3, contribute to FIP1 recruitment. In contrast, SRSF3 promotes distal PAS (dPAS) usage and hence long 3′UTRs directly by counteracting SRSF7, but also indirectly by maintaining high levels of cleavage factor Im (CFIm) via alternative splicing. Upon SRSF3 depletion, CFIm levels decrease and 3′UTRs are shortened. The indirect SRSF3 targets are particularly sensitive to low CFIm levels, because here CFIm serves a dual function; it enhances dPAS and inhibits pPAS usage by binding immediately downstream and assembling unproductive cleavage complexes, which together promotes long 3′UTRs.
Conclusions; We demonstrate that SRSF3 and SRSF7 are direct modulators of pPAS usage and show how small differences in the domain architecture of SR proteins can confer opposite effects on pPAS regulation.
Identification and regulation of tomato Serine/Arginine-rich proteins under high temperatures
(2021)
Alternative splicing is an important mechanism for the regulation of gene expression in eukaryotes during development, cell differentiation or stress response. Alterations in the splicing profiles of genes under high temperatures that cause heat stress (HS) can impact the maintenance of cellular homeostasis and thermotolerance. Consequently, information on factors involved in HS-sensitive alternative splicing is required to formulate the principles of HS response. Serine/arginine-rich (SR) proteins have a central role in alternative splicing. We aimed for the identification and characterization of SR-coding genes in tomato (Solanum lycopersicum), a plant extensively used in HS studies. We identified 17 canonical SR and two SR-like genes. Several SR-coding genes show differential expression and altered splicing profiles in different organs as well as in response to HS. The transcriptional induction of five SR and one SR-like genes is partially dependent on the master regulator of HS response, HS transcription factor HsfA1a. Cis-elements in the promoters of these SR genes were predicted, which can be putatively recognized by HS-induced transcription factors. Further, transiently expressed SRs show reduced or steady-state protein levels in response to HS. Thus, the levels of SRs under HS are regulated by changes in transcription, alternative splicing and protein stability. We propose that the accumulation or reduction of SRs under HS can impact temperature-sensitive alternative splicing.
The stem-loop (SL1) is the 5'-terminal structural element within the single-stranded SARS-CoV-2 RNA genome. It is formed by nucleotides 7–33 and consists of two short helical segments interrupted by an asymmetric internal loop. This architecture is conserved among Betacoronaviruses. SL1 is present in genomic SARS-CoV-2 RNA as well as in all subgenomic mRNA species produced by the virus during replication, thus representing a ubiquitous cis-regulatory RNA with potential functions at all stages of the viral life cycle. We present here the 1H, 13C and 15N chemical shift assignment of the 29 nucleotides-RNA construct 5_SL1, which denotes the native 27mer SL1 stabilized by an additional terminal G-C base-pair.
The SARS-CoV-2 virus is the cause of the respiratory disease COVID-19. As of today, therapeutic interventions in severe COVID-19 cases are still not available as no effective therapeutics have been developed so far. Despite the ongoing development of a number of effective vaccines, therapeutics to fight the disease once it has been contracted will still be required. Promising targets for the development of antiviral agents against SARS-CoV-2 can be found in the viral RNA genome. The 5′- and 3′-genomic ends of the 30 kb SCoV-2 genome are highly conserved among Betacoronaviruses and contain structured RNA elements involved in the translation and replication of the viral genome. The 40 nucleotides (nt) long highly conserved stem-loop 4 (5_SL4) is located within the 5′-untranslated region (5′-UTR) important for viral replication. 5_SL4 features an extended stem structure disrupted by several pyrimidine mismatches and is capped by a pentaloop. Here, we report extensive 1H, 13C, 15N and 31P resonance assignments of 5_SL4 as the basis for in-depth structural and ligand screening studies by solution NMR spectroscopy.
Riboswitches are regulatory RNA elements that undergo functionally important allosteric conformational switching upon binding of specific ligands. The here investigated guanidine-II riboswitch binds the small cation, guanidinium, and forms a kissing loop-loop interaction between its P1 and P2 hairpins. We investigated the structural changes to support previous studies regarding the binding mechanism. Using NMR spectroscopy, we confirmed the structure as observed in crystal structures and we characterized the kissing loop interaction upon addition of Mg2+ and ligand for the riboswitch aptamer from Escherichia coli. We further investigated closely related mutant constructs providing further insight into functional differences between the two (different) hairpins P1 and P2. Formation of intermolecular interactions were probed by small-angle X-ray scattering (SAXS) and NMR DOSY data. All data are consistent and show the formation of oligomeric states of the riboswitch induced by Mg2+ and ligand binding.
Land use change has led to large-scale insect decline, threatening ecosystem resilience through reduced functional diversity. Even in nature reserves, losses in insect diversity have been detected. Hereby, changes in local habitat quality and landscape-scale habitat quantity can play a role driving functional diversity toward erosion. Our aim was to analyze how local and landscape-scale factors simultaneously affect functional insect diversity. Therefore, we sampled moths in two Italian coastal forest reserves at 60 sites. Our focus was on functional richness, redundancy and niche occupation, being important for ecosystem resilience, following the insurance framework. Ecological information about 387 species and 14 traits was used to analyze functional diversity. Twenty-five functional groups were recognized and used to estimate niche occupation and redundancy. Fourteen local and 12 landscape-scale factors were measured and condensed by using Principal Components Analysis. The resulting PC-axes served as predictors in linear mixed effects models. Functional richness, redundancy and niche occupation of moths were lower at sites with low habitat quality and quantity, indicating reduced ecosystem resilience. Especially landscape diversity and habitat structure, viz. a humidity-nutrient gradient, but also plant diversity, were promoting functional richness. Landscape fragmentation, indicating increased impermeability for insects, reduced local functional richness, redundancy and niche occupation. Local habitat quality and landscape-wide habitat quantity are both important for maintaining functional insect diversity inside reserves. Therefore, small and isolated nature reserves might fail in preserving biodiversity and ecosystem functions through adverse effects acting from the surrounding landscape structure and configuration.
The acetogenic model bacterium Acetobacterium woodii is well-known to produce acetate by homoacetogenesis from sugars, but under certain conditions minor amounts of ethanol are produced in addition. Here, we have aimed to identify physiological conditions that increase electron and carbon flow towards ethanol production. Ethanol was only produced from fructose but not from H2 + CO2, formate, pyruvate, lactate or alanine. In the absence of Na+, the Wood–Ljungdahl pathway (WLP) of acetate formation is not functional. Therefore, the ethanol yield increased to 0.42 mol/mol (ethanol/fructose) with an ethanol/acetate ratio of 0.28 mol/mol. The presence of bicarbonate/CO2 stimulated electron and carbon flow through the WLP and led to less ethanol produced. Of the 11 potential alcohol dehydrogenase genes, the most upregulated during ethanologenesis was adh4. A deletion of adh4 led to an increase in ethanol production by 100% to a yield of 0.79 mol/mol (ethanol/fructose); this correlated with an increase in transcript abundance of adh6. In sum, our studies revealed low Na+ and bicarbonate/CO2 as factors that trigger ethanol formation and that a deletion of adh4 drastically increased ethanol formation in A. woodii.