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Orthohantaviruses are rodent-borne pathogens distributed all over the world, which do not cause visible disease in their reservoir host. Puumala orthohantavirus (PUUV) causes most human hantavirus disease cases in Europe and is transmitted by the bank vole (Clethrionomys glareolus). Hantaviruses have a tri-segmented genome consisting of the large (L) segment, coding for the RNA-dependent RNA polymerase (RdRP), the medium (M) segment, encoding the glycoproteins, and the small (S) segment. The S-segment contains two major overlapping open reading frames (ORF) coding for the nucleocapsid (N) protein and a non-structural (NSs) protein, a putative type I interferon (IFN-I) antagonist. To date, pathogenesis and reservoir host adaptation of hantaviruses are poorly understood due to missing adequate cell culture and animal models.
In contrast to previous studies, in this work, data from spring and summer 2019 indicated a high vole abundance, a high PUUV prevalence in voles and high human incidence for some endemic regions in Germany, but elsewhere values were low to moderate. Regional and local human health institutions need to be aware about the heterogeneous distribution of human PUUV infection risk.
For a better understanding of virus-host associations, two novel cell lines from bank voles and common voles each were generated and their susceptibility and replication capacities for a variety of zoonotic and non-zoonotic viruses were analyzed. The PUUV strain Vranica/Hällnäs showed efficient replication in a new bank vole kidney cell line, but not in four other cell lines of bank and common voles. Vice versa, Tula orthohantavirus (TULV) replicated in the kidney cell line of common voles, but was hampered in its replication in other cell lines. Several viruses, such as Cowpox virus, Vaccinia virus, Rift Valley fever virus, and Encephalomyocarditis virus 1 replicated in all four cell lines. West Nile virus, Usutu virus, Sindbis virus and Tick-borne encephalitis virus replicated only in a part of the cell lines. These results indicate a tissue or species specific tropism for many of the tested viruses and the potential value of vole cell lines to address such questions in detail.
Using one of these new cell lines, the first German PUUV strains were isolated from bank voles caught in the highly endemic region around Osnabrück. Complete genomes were determined by target-enrichment-mediated high-throughput sequencing from original lung tissue, after isolation and after additional passaging in VeroE6 cells and a bank vole-derived kidney cell line. Different single amino acid substitutions were observed in the RdRP of the two stable PUUV isolates. The PUUV strain isolated on VeroE6 cells showed a lower titer when propagated on bank vole cells compared to VeroE6 cells. Additionally, glycoprotein precursor (GPC)-derived virus-like particles of a German PUUV strain from the same region allowed the generation of monoclonal antibodies that reacted with the isolated PUUV strains.
To investigate the role of PUUV and other vole-borne hantavirus NSs proteins, the evolution of the NSs and N encoding sequences was investigated by a field study in bank voles and the NSs sequences were characterized in vitro for their inhibitory effect on the human interferon-β promoter. Analysis of blood and lung samples of 851 bank voles trapped during 2010-2014 in Baden-Wuerttemberg and North Rhine-Westphalia resulted in detection of 27.8% PUUV-specific antibody positive bank voles, whereas in 22.3% PUUV-specific RNA was detected. In the hantavirus outbreak years 2010 and 2012 PUUV prevalence in bank voles was higher compared to 2011, 2013 and 2014. Sequences of the S segment of all positive bank voles showed amino acid and nucleotide sequence types of the NSs-ORF with temporal and/or local variation, whereas the N-ORF was highly conserved. One sequence type persisted over the whole observation period in both regions. The NSs coding sequence was highly divergent among regional bank vole populations in the outbreak year 2012.
Transfection experiments resulted in the detection of different products of the NSs-ORF of PUUV, TULV, Prospect Hill and Khabarovsk orthohantaviruses, due to translation initiation at different methionine codons along the coding sequence. Using luciferase reporter assays, the NSs proteins of PUUV, TULV, Prospect Hill and Khabarovsk orthohantaviruses showed inhibition of IFN-I induction of up to 70%, whereas Sin Nombre and Andes orthohantavirus NSs proteins showed a reduced effect compared to the other NSs proteins. The first 20 amino acids of the N-terminal region of PUUV NSs were found to be crucial for IFN-I promoter inhibition.
In conclusion, the newly established cell lines, antibodies, reporter assays and PUUV isolates are highly valuable tools for future hantavirus research. The activity of PUUV NSs protein in human cells contributes to our understanding of virus-host interactions and highlights the importance of corresponding future reservoir host studies. Hantavirus surveillance studies showed the necessity for timely information of the potential human PUUV infection risk to public health institutions in endemic areas to initiate appropriate actions.
LPAIV H9N2 and HPAIV H5N8 clade 2.3.4.4 viruses have been frequently isolated from domestic and wild birds in Germany and they are endemic in poultry worldwide. H9N2 is known to donate gene segments to other AIV with high case fatality rate in humans (e.g. H5N1, H7N9). Similarly, H5N8 devastated poultry worldwide since 2014 and has been recently isolated from humans. Therefore, it is important to understand the genetic predisposition for adaptation of H9N2 and H5N8 AIV in poultry and mammals. In the first publication, we focused on the variable hemagglutinin cleavage site (HACS) of European and Non-European H9N2 viruses, since the HACS is a main virulence determinant of AIV in birds. We found a preferential substitution of non-basic amino acids (G, A, N, S, D, K) in the HACS at position 319 of European H9N2 viruses compared to non-European H9N2 viruses. Recombinant viruses carrying different non-basic amino acids in the HACS modulated replication in vitro. While these non-basic amino acids did not affect virulence or transmission in chickens, they modulated virulence and replication in turkeys. Moreover, H9N2 viruses with non-basic amino acids in the HACS were able to replicate in mammalian brain cells for multiple cycles even without trypsin. In the second publication, we addressed the question whether reassortment between two recent German H9N2 and H5N8 clade 2.3.4.4. B viruses is possible and analysed the impact on virus fitness in mammals and birds. We found that H9N2 PB1 and NP segments were not compatible to generate infectious H5N8 viruses and this incompatibility was due to mutations outside the packaging region. However, H9N2 NS alone or in combination with PB2 and PA significantly increased replication of H5N8 in human cells. Moreover, H9N2 PB2, PA and/or NS segments increased virulence of H5N8 in mice. Interestingly, in chickens, reassortment with H9N2 gene segments, particularly NS, partially or fully impaired chicken-to-chicken transmission. These results indicate that the evolution of H9N2/H5N8 reassortants showing high virulence for mammals is unlikely to occur in chickens. In the third publication, we focused on the NS1 protein of different HPAIV H5N8 clade 2.3.4.4 viruses from 2013 to 2019 and studied the impact of its C-terminus (CTE) variation on virus fitness in chickens and ducks. Our findings revealed a preferential selection for a certain NS1 CTE length in 2.3.4.4. H5N8 clade A (237 aa) and B (217 aa) viruses over the common length of 230 aa. Indeed, the NS1 CTE can affect virus virulence and pathogenesis in a species and virus clade dependent manner. In chickens, although there was no impact on virulence, NS1 CTE of H5N8-A and H5N8-B, regardless of the length, have evolved towards higher efficiency to block the IFN response. In ducks, NS1 CTE contributed to efficient transmission, replication and high virulence of H5N8-B. In the fourth publication, we assessed the impact of variable length of NS1 on H5N8 virus replication in human cells and virulence in mice. We showed that NS1 of H5N8-B virus unlike the vast majority of NS1 of AIV, shared preferences for short NS1 similar to human and zoonotic influenza viruses. This virus (i) was able to efficiently block IFN and apoptosis induction which might be the first steps for efficient adaptation to human cells and (ii) without prior adaptation replicated at higher levels and was more virulent in mice than H5N8-A. The virulence of the latter virus increased after shortening the NS1 similar to H5N8-B virus. Therefore, it is conceivable that truncation in NS1 is a determinant for adaptation of H5N8 in mammals irrespective of its impact on virus fitness in poultry. Findings in this dissertation indicated that HA mutations in the European H9N2 and NS1 variations in H5N8 viruses play a role in virus fitness in poultry and/or mammals. These results improve our current understanding for AIV adaptation and are useful to assess the potential of these viruses to infect mammals.
Ebolaviruses are zoonotic pathogens causing severe hemorrhagic fevers in humans
and non-human primates with high case fatality rates. In recent years, the number and
scope of outbreaks has increased, highlighting the importance of better understanding
the molecular aspects of ebolaviral infection and host cell interactions in order to be able to better control this virus.
To facilitate virus genome replication, transcription and protein expression,
ebolaviruses recruit and interact with specific host factors. These interactions play a key role in viral infection and influence virus survival and disease outcome. Based on a genome-wide siRNA screen, the three host factors CAD, NXF1 and UAP56 were
recently identified to be involved in ebolavirus genome replication and/or transcription
and/or mRNA-translation. However, mechanistical details of how these host factors
affect the ebolavirus lifecycle remained elusive.
In this thesis I analyzed the functional interactions between EBOV and these newly
identified host proteins in order to better understand the virus-host interface. To this
end I used siRNA knockdown as well as overexpression of these host proteins in
combination with different reverse-genetics based lifecycle modelling assays to
investigate the influence of CAD, NXF1 and UAP56 on individual aspects of the EBOV
lifecycle. Using these systems in relation with a host factor knockdown I was able to
show that the provision of pyrimidines by CAD plays an important role for both EBOV
genome replication and transcription, whereas NXF1 is predominantly required for
mRNA transport. I furthermore used immunofluorescence analysis to examine whether
these host factors are recruited by one or more EBOV proteins to inclusion bodies,
which represent physical sites of ebolavirus genome replication. During these
experiments, I was able to show that CAD and NXF1, and possibly also UAP56, are
recruited to EBOV inclusion bodies in order to fulfill their individual function for EBOV RNA synthesis or later steps in protein expression. Additionally, I was able to show that the uptake of NXF1 into NP-induced inclusion bodies is most likely mediated via the C-terminal domain of NP, and that the FG-repeat interaction domains of NXF1 are sufficient for recruitment. Further, my data indicate that RNA interaction of both NXF1 and NP is not required for this process, but rather important for exit of NXF1 from inclusion bodies. I therefore suggest that the viral mRNA is transferred in inclusionbodies from NP to NXF1, which leads to a rapid export of the NXF1 packed viral mRNA into the cytosol for mRNA translation.
The exact mechanism of how these host factors are recruited into inclusion bodies and whether they have similar functions in the lifecycle of other negative-sense RNA viruses still needs to be investigated. Nevertheless, this study increases our understanding of virus-host interaction of ebolaviruses, and thus helps to identify targets for the development of novel therapeutics against these viruses.
The anaerobic pathogen Clostridioides difficile is perfectly equipped to survive and persist inside the mammalian intestine. When facing unfavorable conditions C. difficile is able to form highly resistant endospores. Likewise, biofilms are currently discussed as form of persistence. Here a comprehensive proteomics approach was applied to investigate the molecular processes of C. difficile strain 630Δerm underlying biofilm formation. The comparison of the proteome from two different forms of biofilm-like growth, namely aggregate biofilms and colonies on agar plates, revealed major differences in the formation of cell surface proteins, as well as enzymes of its energy and stress metabolism. For instance, while the obtained data suggest that aggregate biofilm cells express both flagella, type IV pili and enzymes required for biosynthesis of cell-surface polysaccharides, the S-layer protein SlpA and most cell wall proteins (CWPs) encoded adjacent to SlpA were detected in significantly lower amounts in aggregate biofilm cells than in colony biofilms. Moreover, the obtained data suggested that aggregate biofilm cells are rather actively growing cells while colony biofilm cells most likely severely suffer from a lack of reductive equivalents what requires induction of the Wood-Ljungdahl pathway and C. difficile’s V-type ATPase to maintain cell homeostasis. In agreement with this, aggregate biofilm cells, in contrast to colony biofilm cells, neither induced toxin nor spore production. Finally, the data revealed that the sigma factor SigL/RpoN and its dependent regulators are noticeably induced in aggregate biofilms suggesting an important role of SigL/RpoN in aggregate biofilm formation.
Lyssaviruses, the causative agents of rabies, are a long-known threat for animals and humans. To date, terrestrial rabies still accounts for tens of thousands of human deaths annually, notwithstanding ambitious vaccination campaigns targeting susceptible dog and wildlife populations that act as reservoirs for the prototypic rabies virus. Moreover, the continuing discovery of newly emerging virus species in hitherto unconcerned chiropteran hosts and geographic regions drive the expansion of the Lyssavirus genus by unveiling its actual variety, host range and distribution.In this work, the genetic diversity of three distinct lyssaviruses, namely EBLV-1, KBLV and RABV, was elucidated by in-depth genomic analyses to provide further insight into lyssavirus evolution. The generation of full-genome sequences from primarily bat-associated Danish EBLV-1 samples significantly increased the number of available Danish EBLV-1 genome sequences while phylogenetic and phylogeographic analysis revealed a stronger phylogeographic structure for the cluster A1 of the sublineage EBLV-1a than it was postulated in previous studies. In addition, the acquisition of a nearly complete genome sequence for the Kotalahti bat lyssavirus provided the basis for the classification of this putative new lyssavirus species as a recognized member of the genus. Furthermore, phylogenetic analysis revealed the affiliation of KBLV to a group of Myotis-associated lyssaviruses giving a deeper insight into the shared evolutionary history of lyssaviruses co-evolving with particular bat species. Moreover, a deep-sequencing approach was utilized to assess the high genetic diversity of vaccine virus populations, uncovering three independent patterns of single nucleotide variants (SNVs) that became selected in ERA-related vaccine-induced cases. However, no apparent influence of the genetic diversity of vaccine viruses on microevolutionary processes like a potential reversion to virulence or a species-specific adaptation of the vaccine virus strains could be detected, leaving the question for the cause of rabies induction in the affected animals unanswered. Lastly, the successful implementation of a hybridization capturing system for the generation of full-genome sequences and deep-sequencing variant analyses of RABV and KBLV samples was demonstrated for a diagnostic bait set, highlighting the versatility and consistency of this approach to assess the genetic spectrum of known and novel lyssavirus species while setting the basis for its application and optimization in upcoming projects.In conclusion, as shown by the studies in this work, the investigation of lyssavirus genomes at the sub-consensus, full-genome and population level remains crucial to assess the complexity of lyssavirus evolution, as it provides an indispensable source of information to cover the diversity of the genus and understand evolutionary dynamics on a long-term and microevolutionary scale.
Over thirty years have passed since the first description of ubiquitin-positive structures in the brain of patients suffering from Alzheimer’s disease. Meanwhile, the intracellular accumulation of ubiquitin-modified insoluble protein aggregates has become an indisputable hallmark of neurodegeneration. However, the role of ubiquitin and a fortiori the ubiquitin-proteasome system (UPS) in the pathogenesis of neurodevelopmental disorders (NDD) is much less described. In this article, we review all reported monogenic forms of NDD caused by lesions in genes coding for any component of the UPS including ubiquitin-activating (E1), -conjugating (E2) enzymes, ubiquitin ligases (E3), ubiquitin hydrolases, and ubiquitin-like modifiers as well as proteasome subunits. Strikingly, our analysis revealed that a vast majority of these proteins have a described function in the negative regulation of the innate immune response. In this work, we hypothesize a possible involvement of autoinflammation in NDD pathogenesis. Herein, we discuss the parallels between immune dysregulation and neurodevelopment with the aim at improving our understanding the biology of NDD and providing knowledge required for the design of novel therapeutic strategies.
Phospholipide wie Phosphatidylinositol und Phosphatidylcholin sind essenzielle Bestandteile aller biologischen Membranen und für deren Integrität und Funktion unerlässlich. Sind Inositol und Cholin (IC) im Medium vorhanden, ist die Hefe Saccharomyces cerevisiae in der Lage, diese aufzunehmen und zu verarbeiten. Unter Mangelbedingungen können diese Stoffe von der Zelle selbst synthetisiert werden. Daher ist es sinnvoll, die Phospholipid¬biosynthese-Gene differenziell zu exprimieren, was auf der Ebene der Transkriptions¬initiation geschieht. Bei IC-Mangel werden die Gene (z. B. das Inositol-3-Phosphat Synthase Gen INO1) durch Bindung des heterodimeren Aktivatorkomplexes Ino2/Ino4 an das Promotorelement ICRE („inositol/ choline responsive element“) aktiviert, um die Biosynthese zu gewährleisten. Sowohl Ino2 als auch Ino4 sind für die ICRE-Bindung nötig, während die transkriptionale Aktivierung nur durch Ino2 mit Hilfe zweier Transkriptionsaktivierungsdomänen TAD1 und TAD2 vermittelt wird. Ist dagegen ausreichend IC vorhanden, werden die Gene reprimiert, indem der Repressor Opi1 an den Aktivator Ino2 bindet, sodass es zu einer Konformationsänderung kommt und eine Dimerisierung mit Ino4 nicht mehr möglich ist.
Um eine erfolgreiche Transkriptionsinitiation zu gewährleisten, bilden neben der RNA-Polymerase II eine Reihe genereller Transkriptionsfaktoren (A, B, D, E, F und H) sowie der Mediatorkomplex im Promotorbereich der Zielgene den sog. Präinitiationskomplex (PIC). Die von diesen basalen Faktoren gewährleistete geringe Grundexpression kann von Aktivatorproteinen, die an positiv-regulatorische Elemente („upstream activation site“, UAS) binden, deutlich verstärkt werden. Hierzu nutzen Aktivatorproteine verschiedene Mechanismen, zu denen die Auflockerung der Chromatinstruktur durch Histonmodifikationskomplexe wie SAGA oder Chromatinremodellierungskomplexe wie SWI/SNF, die bessere Bindung der Transkriptionsfaktoren am Basalpromotorbereich oder die Beschleunigung des Übergangs vom geschlossenen zum offenen PIC gehören.
Im Verlauf dieser Arbeit konnten zahlreiche Interaktionen zwischen dem Aktivator Ino2 und Faktoren der Transkriptionsmaschinerie nachgewiesen werden, die vermutlich die Häufigkeit der Trans¬kriptions-initiation beeinflussen. Einige der Untereinheiten des Transkriptionsfaktors TFIID interagie¬ren mit Ino2. Ein Schwerpunkt dieser Arbeit lag auf der Charakterisierung der Interaktion der Ino2-TAD1 mit Taf1 und Taf12. Der Austausch der Aminosäuren Asparaginsäure-20 und Phenyl¬alanin-21 in Ino2 führte zu einem Interaktionsausfall mit beiden Tafs. In Taf1 konnten zwei basisch-hydro¬phobe Aminosäure-Bereiche (K206 Y207 und L208 L209 K210) innerhalb der minimalen Aktivator¬binde¬domäne 2 (ABD2) identifiziert werden, die kritisch für den Kontakt zum Aktivator sind. Es konnte ferner gezeigt werden, dass basische und hydrophobe Aminosäuren in Kombination für die Bindung an den Aktivator verantwortlich sind und dass der Austausch gegen Alanin (KY-AA) zu einem Abfall der Expression des INO1-Gens auf 44% führt. Darüber hinaus konnte der Bromo¬domänen¬faktor Bdf1 als Interaktionspartner von Ino2 identifiziert werden. Bdf1 vervollständigt Hefe-Taf1, während Säuger-Taf1 selbst Bromodomänen zur Erkennung von Histonacetylierungen beinhaltet. Innerhalb der Taf12-Minimaldomäne sind die Aminosäuren K150 L151 R175 und L176 wesentlich für die Bindung an Ino2. Eine Teildeletion von Taf12, die unter anderem den Verlust dieser Aminosäuren zur Folge hat, führt zu einer auf 76% reduzierten INO1-Expression.
Ein weiterer Transkriptions¬faktor, der von Ino2 kontaktiert wird, ist TFIIA mit seinen Untereinheiten Toa1 und Toa2. Die Proteine kontaktieren beide TADs des Aktivators, allerdings konnten innerhalb der minimalen Interaktionsdomänen der Toa-Proteine keine für diese Interaktion verantwortliche Aminosäuren identifiziert werden. Veränderungen der Toa1-Sequenz hatten keinen phänotypischen Einfluss auf die Phospholipidbiosynthese, allerdings führten einige Veränderungen (RKRK-Motiv im AS-Bereich 253-259) zu letalen Folgen für das Wachstum der Zellen, weil die Bildung des TFIIA-TBP-TATA-Komplexes beeinträchtigt ist. Wahrscheinlich hat die Interaktion zwischen Ino2 und TFIIA eine verstärkende Wirkung auf die Transkriptionsinitiation der Phospholipidbiosynthese-Gene, indem die Interaktion zwischen TFIIA und TFIID stabilisiert wird und TFIIA die interaktive Oberfläche am Promotor für Interaktionen mit anderen Proteinen vergrößert.
Die Verschiebung der Nucleosomen in Promotorbereichen durch Chromatinremodellierungs¬kompexe wie SWI/SNF ist ein weiterer Mechanismus der Transkriptionsaktivierung. In früheren Arbeiten wurde bereits die Interaktion zwischen Ino2, Aro80 bzw. Gal4 und der SWI/SNF ATPase-Untereinheit Swi2 beschrieben. Im Zuge dieser Arbeit konnte eine minimale Interaktionsdomäne im AS-Bereich 238-307 kartiert werden. Essenzielle Aminosäuren für die Bindung an Ino2 und andere Aktivatoren konnten nicht identifiziert werden.
Sug1 und Sug2 sind ATPasen der regulatorischen 19S-Untereinheit des 26S Proteasoms. Neben der Degradation fehlgefalteter polyubiquitinierter Proteine haben sie auch eine nicht-proteolytische Bedeutung für die Transkriptionsinitiation. Bekannt ist, dass proteasomale ATPasen an aktiven Promotoren zu finden sind und mit Aktivator¬proteinen (z. B. Gal4) interagieren können. Die vorlie¬gende Arbeit zeigt, dass auch Ino2 von Sug1 und Sug2 kontaktiert wird. Möglicherweise dienen sie am INO1-Promotor als Stabilisatoren und Vermittler zwischen Ino2 und der Transkriptionsmaschi¬nerie und erleichtern den Übergang des Präinitiationskomplexes in den Elongationskomplex.
Unter reprimierenden Bedingungen bindet Opi1 an Ino2 und rekrutiert die Corepressorkomplexe Sin3 und Cyc8/Tup1, die ihrerseits Histondeacetylasen in Promotornähe bringen und die Transkrip¬tion durch lokale Chromatinverfestigung reprimieren. Frühere Arbeiten hatten gezeigt, dass die Corepressoren auch mit Ino2 und weiteren Aktivatoren (Hac1 und Pho4) interagieren und dass sie in Abhängigkeit von Ino2, nicht aber von Opi1, am INO1-Promotor vorliegen. In dieser Arbeit wurde die Interaktion zwischen Ino2 und Sin3 bzw. Cyc8 charakterisiert. Sin3 und Cyc8 kontaktieren einen Bereich des Aktivators, der die TAD2 und die RID (Repressorinteraktionsdomäne) enthält. Es war bekannt, dass die Aminosäuren Phenylalanin-130, Leucin-131 und Asparaginsäure-132 essenziell für die Interaktion mit Opi1 sind. In dieser Arbeit wurde gezeigt, dass deren Austausch gegen Alanin auch einen Interaktionsverlust mit Cyc8 und Sin3 bewirkt. Darüber hinaus konnte gezeigt werden, dass diese FLD-AAA-Mutation zu einer praktisch konstitutiven Expression des INO1-Gens führt, allerdings auf niedrigerem Niveau als im Fall dereprimierter Zellen mit einem Wildtyp Ino2. In Hac1 und Pho4 konnten Aminosäuren mit vergleichbarer Bedeutung für die Corepressorbindung nicht identifiziert werden. Offenbar können die Corepressoren je nach physiologischer Situation in der Zelle positiv oder negativ auf die Transkriptionsinitiation wirken.
An Innovative Protocol for Metaproteomic Analyses of Microbial Pathogens in Cystic Fibrosis Sputum
(2021)
Hallmarks of cystic fibrosis (CF) are increased viscosity of mucus and impaired mucociliary clearance within the airways due to mutations of the cystic fibrosis conductance regulator gene. This facilitates the colonization of the lung by microbial pathogens and the concomitant establishment of chronic infections leading to tissue damage, reduced lung function, and decreased life expectancy. Although the interplay between key CF pathogens plays a major role during disease progression, the pathophysiology of the microbial community in CF lungs remains poorly understood. Particular challenges in the analysis of the microbial population present in CF sputum is (I) the inhomogeneous, viscous, and slimy consistence of CF sputum, and (II) the high number of human proteins masking comparably low abundant microbial proteins. To address these challenges, we used 21 CF sputum samples to develop a reliable, reproducible and widely applicable protocol for sputum processing, microbial enrichment, cell disruption, protein extraction and subsequent metaproteomic analyses. As a proof of concept, we selected three sputum samples for detailed metaproteome analyses and complemented and validated metaproteome data by 16S sequencing, metabolomic as well as microscopic analyses. Applying our protocol, the number of bacterial proteins/protein groups increased from 199-425 to 392-868 in enriched samples compared to nonenriched controls. These early microbial metaproteome data suggest that the arginine deiminase pathway and multiple proteases and peptidases identified from various bacterial genera could so far be underappreciated in their contribution to the CF pathophysiology. By providing a standardized and effective protocol for sputum processing and microbial enrichment, our study represents an important basis for future studies investigating the physiology of microbial pathogens in CF in vivo – an important prerequisite for the development of novel antimicrobial therapies to combat chronic recurrent airway infection in CF.
Out of Control: The Role of the Ubiquitin Proteasome System in Skeletal Muscle during Inflammation
(2021)
The majority of critically ill intensive care unit (ICU) patients with severe sepsis develop ICU-acquired weakness (ICUAW) characterized by loss of muscle mass, reduction in myofiber size and decreased muscle strength leading to persisting physical impairment. This phenotype results from a dysregulated protein homeostasis with increased protein degradation and decreased protein synthesis, eventually causing a decrease in muscle structural proteins. The ubiquitin proteasome system (UPS) is the predominant protein-degrading system in muscle that is activated during diverse muscle atrophy conditions, e.g., inflammation. The specificity of UPS-mediated protein degradation is assured by E3 ubiquitin ligases, such as atrogin-1 and MuRF1, which target structural and contractile proteins, proteins involved in energy metabolism and transcription factors for UPS-dependent degradation. Although the regulation of activity and function of E3 ubiquitin ligases in inflammation-induced muscle atrophy is well perceived, the contribution of the proteasome to muscle atrophy during inflammation is still elusive. During inflammation, a shift from standard- to immunoproteasome was described; however, to which extent this contributes to muscle wasting and whether this changes targeting of specific muscular proteins is not well described. This review summarizes the function of the main proinflammatory cytokines and acute phase response proteins and their signaling pathways in inflammation-induced muscle atrophy with a focus on UPS-mediated protein degradation in muscle during sepsis. The regulation and target-specificity of the main E3 ubiquitin ligases in muscle atrophy and their mode of action on myofibrillar proteins will be reported. The function of the standard- and immunoproteasome in inflammation-induced muscle atrophy will be described and the effects of proteasome-inhibitors as treatment strategies will be discussed.
The here presented dissertation investigated the molecular mechanisms, by which the food industry model bacteria Pseudomonas fluorescens and Listeria monocytogenes, grown either as planktonic cultures, were inhibited by plasma treated water (PTW) produced by a microwave-induced plasma source (MidiPLexc). As a starting point, optimal operating parameters were determined with 5 standard liters per minutes(slm)compressed air during the treatment of 10 ml deionized water within a treatment time of up to 15 min (pre-treatment time). Treatment times of 1, 3 and 5 min were selected (post-treatment time). In addition to physical parameters, i.e. temperature measurements at different spots at the plasma source during the production of the PTW, the chemical composition of PTW was determined by pH measurements, chronoamperometry (determination of the H2O2 concentration), ion chromatography (determination of the NO2-, NO3- and ONOO- concentrations) and mass spectrometry (qualitative determination of the molecules). In addition, concentration changes of reactive species over a period of 3 h indicated a decrease of the NO2- concentration as well as an increase of the NO3- and ONOO- concentration in the PTW. Microbiological assays, i.e. quantification of colony-forming units (CFU), fluorescence and XTT assays, revealed a significant reduction of the proliferation ability of the cells, membrane damages and metabolic activity have been demonstrated for planktonic cultures as well as mono- and multispecies biofilms. PTW effects on biofilm structures were investigated using microscopic methods such as fluorescence microscopy, confocal laser scanning microscopy (CLSM), atomic force microscopy (AFM), and scanning electron microscopy (SEM), as well as physical methods such as contact angle measurements. Significant changes in the biofilm structure have been shown, which indicate an ablation of the biofilm mass from top to bottom by approximately 2/3 of the biofilm mass and a destruction of the extracellular matrix (ECM) by the reactive species within the PTW. Subsequently, fresh-cut lettuce has been treated with PTW produced by up-scaled plasma sources. Apart from qualitative parameters of the lettuce after PTW treatment such as texture and color, the concentration of PTW reactive species have been determined. These experiments showed that the composition of the reactive species were slightly different from that of the laboratory-scaled plasma source MidiPLexc. Notably, the PTW treatment did not cause significant changes in texture and color of the fresh-cut lettuce. Finally, a synergistic effect of PTW treatment followed by plasma-processed air (PPA) drying was demonstrated application-specific.