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Members of the species Bacillus pumilus get more and more in focus of the biotechnological industry as potential new production strains. Based on secretome analysis, Bacillus pumilus strain Jo2, possessing high secretion capability, was chosen for an omics based investigation. The physiology of Bacillus pumilus cells growing either in minimal or complex medium was analyzed by a combination of proteomic and metabolomic methods. Master gels of the cytosolic and the secreted proteome covering major parts of the main metabolic pathways were created by means of 2D gel electrophoresis. Quantification of 2D gels allowed displaying the most abundant proteins in these sub-proteomes. Application of the GeLC-MS/MS technique tripled the number of identified proteins and enabled detection of many intrinsic membrane proteins. In total, 1542 proteins were identified in growing B. pumilus cells, among them 1182 cytosolic proteins, 297 membrane and lipoproteins and 63 secreted proteins. This accounts for about 43 % of the 3616 proteins encoded in the B. pumilus Jo2 genome sequence. By using GC-MS, IP-LC/MS and H-NMR methods numerous metabolites were analyzed and assigned to the reconstructed metabolic pathways. Our data indicate that applying a combination of proteomic and metabolomic techniques a comprehensive view of the physiology of growing B. pumilus cells can be gained. In addition, selected production-relevant genome features such as the restriction modification system, NRPS clusters and the secretory system of B. pumilus Jo2 are discussed. In their natural habitat, the soil, B. pumilus cells are often exposed to growth limiting conditions due to the lack of sufficient amounts of nutrients. Such limitations can also occur during fermentation conditions and will negatively influence the efficiency of the process. Glucose is the main carbon and energy source of B. pumilus. Thus, a deficiency of glucose has an enormous impact on cell growth. A 1D LC-MS/MS approach was performed to quantify the proteins using an N14/N15 labeling and to analyze the changes in the protein equipment when B. pumilus cells stop their exponential growth and become stationary due to limitation of glucose. 1033 proteins in the cytosolic fraction of B. pumilus cells were quantified and 272 of them appeared to be upregulated when the cells experience glucose starvation. 2D-PAGE was used to analyze the exoproteome of those cells. Glucose starving B. pumilus cells seemed to focus on usage of proteins and peptides as alternative carbon and energy sources instead of other carbohydrates. Especially the exoproteome of glucose starving cells is dominated by proteases and peptidases. Furthermore, cells used fatty acids as carbon source indicated by upregulation of enzymes involved in β-oxidation and the methylcitrate pathway. Bacillus pumilus is characterized by a higher oxidative stress resistance than other comparable industrially relevant Bacilli such as B. subtilis or B. licheniformis. In this study the response of B. pumilus to oxidative stress was investigated during a treatment with high concentrations of hydrogen peroxide at the proteome, transcriptome and metabolome level. Genes/proteins belonging to regulons, which are known to have important functions in the oxidative stress response of other organisms, were found to be upregulated, such as the Fur, Spx, SOS or CtsR regulon. Strikingly, parts of the fundamental PerR regulon responding to peroxide stress in B. subtilis are not encoded in the B. pumilus genome. Thus, B. pumilus misses the catalase KatA, the DNA-protection protein MrgA or the alkyl hydroperoxide reductase AhpCF. Data of this study suggests that the catalase KatX2 takes over the function of the missing KatA in the oxidative stress response of B. pumilus. The genome-wide expression analysis revealed an induction of bacillithiol (Cys-GlcN-malate, BSH) relevant genes. An analysis of the intracellular metabolites detected high intracellular levels of this protective metabolite, which indicates the importance of bacillithiol in the peroxide stress resistance of B. pumilus. Using the physiological knowledge gained during our studies, we analyzed samples taken during an industrial fermentation process. Five samples were taken during the processes using a protease overexpressing B. pumilus strain and a non-overexpressing B. pumilus reference strain. 2D-PAGE was employed to analyze the samples. 448 proteins could be identified in the samples from the protease overexpressing stain as well as 453 proteins in the reference strain. The proteins were quantified relatively comparing the different growth phases of each strain as well as comparing the strains to each other. The physiological knowledge gained from the shake flask studies enabled us to interpret the findings. Both strains showed an induction of proteins involved in acquisition of alternative carbon sources and of proteins involved in degradation and usage of fatty acids, e.g. the methylcitrate pathway, when they stop exponential growth. This is comparable to the results gained from the analysis of B. pumilus cells under glucose limitation, indicating similar conditions during the processes. Especially in the late phases of the fermentation processes the cells were obviously exposed to severe stress conditions. Our results demonstrated that overexpressing cells showed a significantly stronger oxidative stress response at the end of the fermentation process compared to non-overexpressing cells, which indicated that not only the high cell densities but also the overproduction of the target protein might be responsible for these conditions.
Thiol or sulfhydryl groups are highly reactive functional groups in cellular systems. Molecules carrying thiol groups are mostly derivatives of the amino acid cysteine and are grouped as low molecular weight (LMW)-thiols: coenzyme A (CoA), glutathione (GSH) or bacillithiol (BSH). LMW-thiols can help in the maintenance of the reduced cellular environment as so called redox-buffers. Additionally, they act as co-factors in enzyme reactions or help in the detoxification of reactive oxygen or nitrogen species, electrophilic compounds or thiophilic metalloids (arsenite, tellurite). In proteins from different organisms cysteine is underrepresented compared to other amino acids, but still overtakes diverse roles. It is an important determinant in the tertiary and quaternary structure of proteins. The nucleophilic character of the thiol or thiolate group, respectively, makes cysteine the catalytically active amino acids of different enzymes. As a precursor cysteine participates in the formation of Fe-S clusters and coordinates different co-factors like heme, iron or zinc. The main goal of this study was the investigation of the different cellular thiol pools, now defined as the thiolome. The thiolome is the entity of the cellular thiol pools, i.e. LMW-thiols and protein thiols, and the dynamics between these pools. In Bacillus subtilis and Staphylococcus aureus mixed disulfides between protein thiols and free LMW-thiols, so called S-thiolations, were identified in different proteins in response to the thiol specific reagent diamide. Some of these S-thiolations were located at catalytically active cysteine residues. Subsequent analysis of metabolites supports this: the S-thiolation of the cobalamine-independent methionine-synthase MetE led to a decrease of the cellular methionine content. Additionally, the conversion of threonine to different branched-chain amino acids (BCAAs) was disrupted by the S-thiolation of the branched-chain amino acid aminotransferase YwaA, thereby probably inducing the synthesis of ppGpp, the alarmon of the stringent response. In addition to the identification of S-thiolations a technique was established which allowed the discrimination between intra- and intermolecular disulfides. The non-reducing/ reducing diagonal gel electrophoresis was applied to B. subtilis and S. aureus and confirmed known existing disulfide bonds, e.g. in alkyl hydroperoxide reductase AhpC or the thiol peroxidase Tpx. In response to diamide an increase of specific disulfide bonds in different proteins was observed. The analysis of the LMW-thiol content by an HPLC-approach allowed the observation of the dynamics of the thiolome. In response to diamide the reduced LMW-thiol content decreased by 75%, reduced protein thiols by 60%. Collaborations with other working groups allowed the identification of BSH in this approach. Additionally, an unknown thiol was found that is likely a derivative of BSH. Screening of the LMW-thiol content of different S. aureus-strains under various growth conditions revealed that strains 8325-4 and SH1000 lack BSH. The lack of BSH was attributed to an 8 bp-duplication in the bshC-gene that encodes the last enzyme of the BSH-synthesis. BSH-production was restored by transducing plasmid-borne functional BshC from strain Newman into strains 8325-4 and SH1000. The reconstitution of the BSH-synthesis aided in the resistance to the antibiotic fosfomycin but did not increase the resistance to different oxidants (diamide, sodium hypochlorite, hydrogen peroxide). The production of BSH had also positive effects on the survival of S. aureus inside human bronchial epithelial cells and murine macrophages in phagocytosis assays. Additionally, a GSH-uptake was observed into S. aureus which has before been known as a GSH-free bacterium. Taken together, this thesis provides the first insights into both, the LMW-thiol- and protein thiol pool of low GC, Gram-positive bacteria under different conditions. A plethora of different methodologies was used to describe the thiolome. The bacterial thiolome is a sophisticated system which is tightly regulated, but also flexible enough to not rely on determined molecules like BSH. The influences of the thiolome are not restricted to its own system and regulation, but also affect different branches of cellular physiology like the metabolism of BCAAs.