Refine
Has Fulltext
- yes (45) (remove)
Year of publication
- 2021 (45) (remove)
Document Type
- Postprint (24)
- Doctoral Thesis (20)
- Article (1)
Is part of the Bibliography
- yes (45)
Keywords
- Arabidopsis thaliana (4)
- Agrarökologie (2)
- Bombina bombina (2)
- Cyanobakterien (2)
- Influenza (2)
- LCSM (2)
- Microcystis (2)
- Nahrungsnetze (2)
- RubisCO (2)
- mechanobiology (2)
Institute
- Institut für Biochemie und Biologie (45) (remove)
Cellulose and chitin are the most abundant polymeric, organic carbon source globally. Thus, microbes degrading these polymers significantly influence global carbon cycling and greenhouse gas production. Fungi are recognized as important for cellulose decomposition in terrestrial environments, but are far less studied in marine environments, where bacterial organic matter degradation pathways tend to receive more attention. In this study, we investigated the potential of fungi to degrade kelp detritus, which is a major source of cellulose in marine systems. Given that kelp detritus can be transported considerable distances in the marine environment, we were specifically interested in the capability of endophytic fungi, which are transported with detritus, to ultimately contribute to kelp detritus degradation. We isolated 10 species and two strains of endophytic fungi from the kelp Ecklonia radiata. We then used a dye decolorization assay to assess their ability to degrade organic polymers (lignin, cellulose, and hemicellulose) under both oxic and anoxic conditions and compared their degradation ability with common terrestrial fungi. Under oxic conditions, there was evidence that Ascomycota isolates produced cellulose-degrading extracellular enzymes (associated with manganese peroxidase and sulfur-containing lignin peroxidase), while Mucoromycota isolates appeared to produce both lignin and cellulose-degrading extracellular enzymes, and all Basidiomycota isolates produced lignin-degrading enzymes (associated with laccase and lignin peroxidase). Under anoxic conditions, only three kelp endophytes degraded cellulose. We concluded that kelp fungal endophytes can contribute to cellulose degradation in both oxic and anoxic environments. Thus, endophytic kelp fungi may play a significant role in marine carbon cycling via polymeric organic matter degradation.
The ubiquitin-proteasome-system (UPS) is a cellular cascade involving three enzymatic steps for protein ubiquitination to target them to the 26S proteasome for proteolytic degradation. Several components of the UPS have been shown to be central for regulation of defense responses during infections with phytopathogenic bacteria. Upon recognition of the pathogen, local defense is induced which also primes the plant to acquire systemic resistance (SAR) for enhanced immune responses upon challenging infections. Here, ubiquitinated proteins were shown to accumulate locally and systemically during infections with Psm and after treatment with the SAR-inducing metabolites salicylic acid (SA) and pipecolic acid (Pip). The role of the 26S proteasome in local defense has been described in several studies, but the potential role during SAR remains elusive and was therefore investigated in this project by characterizing the Arabidopsis proteasome mutants rpt2a-2 and rpn12a-1 during priming and infections with Pseudomonas. Bacterial replication assays reveal decreased basal and systemic immunity in both mutants which was verified on molecular level showing impaired activation of defense- and SAR-genes. rpt2a-2 and rpn12a-1 accumulate wild type like levels of camalexin but less SA. Endogenous SA treatment restores local PR gene expression but does not rescue the SAR-phenotype. An RNAseq experiment of Col-0 and rpt2a-2 reveal weak or absent induction of defense genes in the proteasome mutant during priming. Thus, a functional 26S proteasome was found to be required for induction of SAR while compensatory mechanisms can still be initiated.
E3-ubiquitin ligases conduct the last step of substrate ubiquitination and thereby convey specificity to proteasomal protein turnover. Using RNAseq, 11 E3-ligases were found to be differentially expressed during priming in Col-0 of which plant U-box 54 (PUB54) and ariadne 12 (ARI12) were further investigated to gain deeper understanding of their potential role during priming.
PUB54 was shown to be expressed during priming and /or triggering with virulent Pseudomonas. pub54 I and pub54-II mutants display local and systemic defense comparable to Col-0. The heavy-metal associated protein 35 (HMP35) was identified as potential substrate of PUB54 in yeast which was verified in vitro and in vivo. PUB54 was shown to be an active E3-ligase exhibiting auto-ubiquitination activity and performing ubiquitination of HMP35. Proteasomal turnover of HMP35 was observed indicating that PUB54 targets HMP35 for ubiquitination and subsequent proteasomal degradation. Furthermore, hmp35-I benefits from increased resistance in bacterial replication assays. Thus, HMP35 is potentially a negative regulator of defense which is targeted and ubiquitinated by PUB54 to regulate downstream defense signaling. ARI12 is transcriptionally activated during priming or triggering and hyperinduced during priming and triggering. Gene expression is not inducible by the defense related hormone salicylic acid (SA) and is dampened in npr1 and fmo1 mutants consequently depending on functional SA- and Pip-pathways, respectively. ARI12 accumulates systemically after priming with SA, Pip or Pseudomonas. ari12 mutants are not altered in resistance but stable overexpression leads to increased resistance in local and systemic tissue. During priming and triggering, unbalanced ARI12 levels (i.e. knock out or overexpression) leads to enhanced FMO1 activation indicating a role of ARI12 in Pip-mediated SAR. ARI12 was shown to be an active E3-ligase with auto-ubiquitination activity likely required for activation with an identified ubiquitination site at K474. Mass spectrometrically identified potential substrates were not verified by additional experiments yet but suggest involvement of ARI12 in regulation of ROS in turn regulating Pip-dependent SAR pathways.
Thus, data from this project provide strong indications about the involvement of the 26S proteasome in SAR and identified a central role of the two so far barely described E3-ubiquitin ligases PUB54 and ARI12 as novel components of plant defense.
Angepasste Pathogene besitzen eine Reihe von Virulenzmechanismen, um pflanzliche Immunantworten unterhalb eines Schwellenwerts der effektiven Resistenz zu unterdrücken. Dadurch sind sie in der Lage sich zu vermehren und Krankheiten auf einem bestimmten Wirt zu verursachen. Eine essentielle Virulenzstrategie Gram-negativer Bakterien ist die Translokation von sogenannten Typ-III Effektorproteinen (T3Es) direkt in die Wirtszelle. Dort stören diese die Immunantwort des Wirts oder fördern die Etablierung einer für das Pathogen günstigen Umgebung. Eine kritische Komponente der Pflanzenimmunität gegen eindringende Pathogene ist die schnelle transkriptionelle Umprogrammierung der angegriffenen Zelle. Viele adaptierte bakterielle Pflanzenpathogene verwenden T3Es, um die Induktion Abwehr-assoziierter Gene zu stören. Die Aufklärung von Effektor-Funktionen, sowie die Identifikation ihrer pflanzlichen Zielproteine sind für das Verständnis der bakteriellen Pathogenese essentiell. Im Rahmen dieser Arbeit sollte das Typ-III Effektorprotein XopS aus Xanthomonas campestris pv. vesicatoria (Xcv) funktionell charakterisiert werden. Zudem lag hier ein besonderer Fokus auf der Untersuchung der Wechselwirkung zwischen XopS und seinem in Vorarbeiten identifizierten pflanzlichen Interaktionspartner WRKY40, einem transkriptionellen Regulator der Abwehr-assoziierten Genexpression. Es konnte gezeigt werden, dass XopS ein essentieller Virulenzfaktor des Phytopathogens Xcv während der präinvasiven Immunantwort ist. So zeigten xopS-defiziente Xcv Bakterien bei einer Inokulation der Blattoberfläche suszeptibler Paprika Pflanzen eine deutlich reduzierte Virulenz im Vergleich zum Xcv Wildtyp. Die Translokation von XopS durch Xcv, sowie die ektopische Expression von XopS in Arabidopsis oder N. benthamiana verhinderte das Schließen von Stomata als Reaktion auf Bakterien bzw. einem Pathogen-assoziierten Stimulus, wobei zudem gezeigt werden konnte, dass dies in einer WRKY40-abhängigen Weise geschieht. Weiter konnte gezeigt werden, dass XopS in der Lage ist, die Expression Abwehr-assoziierter Gene zu manipulieren. Dies deutet darauf hin, dass XopS sowohl in die prä-als auch in die postinvasive, apoplastische Abwehr eingreift. Phytohormon-Signalnetzwerke spielen während des Aufbaus einer effizienten pflanzlichen Immunantwort eine wichtige Rolle. Hier konnte gezeigt werden, dass XopS mit genau diesen Signalnetzwerken zu interferieren scheint. Eine ektopische Expression des Effektors in Arabidopsis führte beispielsweise zu einer signifikanten Induktion des Phytohormons Jasmonsäure (JA), während eine Infektion von suszeptiblen Paprika Pflanzen mit einem xopS-defizienten Xcv Stamm zu einer ebenfalls signifikanten Akkumulation des Salicylsäure (SA)-Gehalts führte.
So kann zu diesem Zeitpunkt vermutet werden, dass XopS die Virulenz von Xcv fördert, indem JA-abhängige Signalwege induziert werden und es gleichzeitig zur Unterdrückung SA-abhängiger Signalwege kommt. Die Virus-induzierte Genstilllegung des XopS Interaktionspartners WRKY40a in Paprika erhöhte die Toleranz der Pflanze gegenüber einer Xcv Infektion, was darauf hindeutet, dass es sich bei diesem Protein um einen transkriptionellen Repressor pflanzlicher Immunantworten handelt. Die Hypothese, dass WRKY40 die Abwehr-assoziierte Genexpression reprimiert, konnte hier über verschiedene experimentelle Ansätze bekräftigt werden. So wurde beispielsweise gezeigt, dass die Expression von verschiedenen Abwehrgenen einschließlich des SA-abhängigen Gens PR1 und die des Negativregulators des JA-Signalwegs JAZ8 von WRKY40 gehemmt wird. Um bei einem Pathogenangriff die Abwehr-assoziierte Genexpression zu gewährleisten, muss WRKY40 als Negativregulator abgebaut werden. Vorarbeiten zeigten, dass WRKY40 über das 26S Proteasom abgebaut wird. In der hier vorliegenden Studie konnte weiter bestätigt, dass der T3E XopS zu einer Stabilisierung des WRKY40 Proteins führt, indem er auf bislang ungeklärte Weise dessen Abbau über das 26S Proteasom verhindert. Die Ergebnisse aus der hier vorliegenden Arbeit lassen die Vermutung zu, dass die Stabilisierung des Negativregulators der Immunantwort WRKY40 seitens XopS dazu führt, dass eine darüber vermittelte Manipulation der Abwehr-assoziierten Genexpression, sowie eine Umsteuerung phytohormoneller Wechselwirkungen die Ausbreitung von Xcv auf suszeptiblen Paprikapflanzen fördert. Ein weiteres Ziel dieser Arbeit war es, weitere potentielle in planta Interaktionspartner von XopS zu identifizieren die für seine Interaktion mit WRKY40 bzw. für die Aufschlüsselung seines Wirkmechanismus relevant sein könnten. So konnte die Deubiquitinase UBP12 als weiterer pflanzlicher Interaktionspartner sowohl von XopS als auch von WRKY40 gefunden werden. Dieses Enzym ist in der Lage, die Ubiquitinierung von Substratproteinen zu modifizieren und seine Funktion könnte somit ein Bindeglied zwischen XopS und dessen Interferenz mit dem proteasomalen Abbau von WRKY40 sein. Während einer kompatiblen Xcv-Wirtsinteraktion führte die Virus-induzierte Genstilllegung von UBP12 zu einer reduzierten Resistenz der Pflanze gegenüber des Pathogens Xcv, was auf dessen positiv-regulatorische Wirkung während der Immunantwort hindeutet. Zudem zeigten Western Blot Analysen, dass das Protein WRKY40 bei einer Herunterregulierung von UBP12 akkumuliert und dass diese Akkumulation von der Anwesenheit des T3Es XopS zusätzlich verstärkt wird. Weiterführende Analysen zur biochemischen Charakterisierung der XopS/WRKY40/UBP12 Interaktion sollten in Zukunft durchgeführt werden, um den genauen Wirkmechanismus des XopS T3Es weiter aufzuschlüsseln.
The presented study investigated the influence of microbial and biogeochemical processes on the physical transport related properties and the fate of microplastics in freshwater reservoirs. The overarching goal was to elucidate the mechanisms leading to sedimentation and deposition of microplastics in such environments. This is of importance, as large amounts of initially buoyant microplastics are found in reservoir sediments worldwide. However, the transport processes which lead to microplastics accumulation in sediments, were up to now understudied.
The impact of biofilm formation on the density and subsequent sedimentation of microplastics was investigated in the eutrophic Bautzen reservoirs (Chapter 2). Biofilms are complex microbial communities fixed to submerged surfaces through a slimy organic film. The mineral calcite was detected in the biofilms, which led to the
sinking of the overgrown microplastic particles. The calcite was of biogenic origin, most likely precipitated by sessile cyanobacteria within the biofilms.
Biofilm formation was also studied in the mesotrophic Malter reservoir. Unlike in Bautzen reservoir, biofilm formation did not govern the sedimentation of different microplastics in Malter reservoir (Chapter 3). Instead autumnal lake mixing led to
the formation of sinking aggregates of microplastics and iron colloids. Such colloids form when anoxic, iron-rich water from the hypolimnion mixes with the oxygenated epilimnetic waters. The colloids bind organic material from the lake water, which leads to the formation of large and sinking iron-organo flocs.
Hence, iron-organo floc formation and their influence on the buoyancy or burial of microplastics into sediments of Bautzen reservoir was studied in laboratory experiments (Chapter 4). Microplastics of different shapes (fiber, fragment, sphere) and sizes were readily incorporated into sinking iron-organo flocs. By this initially buoyant polyethylene microplastics were transported on top of sediments from Bautzen reservoir. Shortly after deposition, the microplastic bearing flocs started to subside and transported the pollutants into deeper sediment layers. The microplastics were not released from the sediments within two months of laboratory incubation.
The stability of floc microplastic deposition was further investigated employing experiments with the iron reducing model organism Shewanella oneidensis (Chapter 5). It was shown, that reduction or re-mineralization of the iron minerals did not affect the integrity of the iron-organo flocs. The organic matrix was stable under iron reducing conditions. Hence, no incorporated microplastics were released from the flocs. As similar processes are likely to take place in natural sediments, this might explain the previous described low microplastic release from the sediments.
This thesis introduced different mechanisms leading to the sedimentation of initially buoyant microplastics and to their subsequent deposition in freshwater reservoirs. Novel processes such as the aggregation with iron-organo flocs were identified and the understudied issue of biofilm densification through biogenic mineral formation was further investigated. The findings might have implications for the fate of microplastics within the river-reservoir system and outline the role of freshwater reservoirs as important accumulation zone for microplastics. Microplastics deposited in the sediments of reservoirs might not be transported further by through flowing river. Hence the study might contribute to better risk assessment and transport balances of these anthropogenic contaminants.
Exendin-4 is a pharmaceutical peptide used in the control of insulin secretion. Structural information on exendin-4 and related peptides especially on the level of quaternary structure is scarce. We present the first published association equilibria of exendin-4 directly measured by static and dynamic light scattering. We show that exendin-4 oligomerization is pH dependent and that these oligomers are of low compactness. We relate our experimental results to a structural hypothesis to describe molecular details of exendin-4 oligomers. Discussion of the validity of this hypothesis is based on NMR, circular dichroism and fluorescence spectroscopy, and light scattering data on exendin-4 and a set of exendin-4 derived peptides. The essential forces driving oligomerization of exendin-4 are helix–helix interactions and interactions of a conserved hydrophobic moiety. Our structural hypothesis suggests that key interactions of exendin-4 monomers in the experimentally supported trimer take place between a defined helical segment and a hydrophobic triangle constituted by the Phe22 residues of the three monomeric subunits. Our data rationalize that Val19 might function as an anchor in the N-terminus of the interacting helix-region and that Trp25 is partially shielded in the oligomer by C-terminal amino acids of the same monomer. Our structural hypothesis suggests that the Trp25 residues do not interact with each other, but with C-terminal Pro residues of their own monomers.