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Compared to other human pathogens, S. aureus outstands with a remarkably broad spectrum of deseases: from minor skin infections over endocarditis, pneumoniae, and osteomyelitis, to septic shock. The prerequisite is an arsenal of adaptation strategies, encoded in the core and variable genome. It includes the coordinated expression of adhesins and toxins, evasion of the immune system, response to stress and starvation, adaptation of the metabolism, formation of biofilms and capsules, antibiotic resistance, and persistence on the skin, in nasal epithelial cells, and even in the inner of macrophages after phagocytosis. All these adaptation strategies enable S. aureus to colonize a diversity of niches within the human host. The inevitable requirement is the ability to activate the appropriate adaptation strategy at the right time and at the right place. S. aureus overcomes this challenge with a sophisticated regulatory network. This PhD thesis covers a broad spectrum of transcriptional regulators, involved in S. aureus pathogenesis: (1) the quorum sensing system Agr (regulation of early- and late stage virulence factors), (2) the Sar family (regulation of early- and late stage virulence factors), (3) SaeRS (regulation of accessory exotoxins and adhesins), (4) CodY (response to amino acid starvation, including extracellular proteases), (5) Sigma B (general stress response, including virulence factors), (6) Rex (anaerobic energy metabolism), (7) CtsR and HrcA (protein quality control), (8) PerR and Fur (oxidative stress response), and (9) antibiotic resistance. Traditionally, Proteomics constitute the long-lasting reputation of the Institute. In fact, the majority of investigations presented in this PhD thesis was initialized by proteomic analyses as the ultimate starting point. From the first day, a major goal of this PhD thesis was to add regulator-promoter interaction studies to the methodical spectrum. In particular, to complement transcriptomic and proteomic results by answering the logical follow-up question: Which regulator is responsible for the observed changes in gene expression and protein synthesis after application of a specific stimulus?
The first chapter provides specific analyses for three major regulators: Rex, CodY, and SarA. Publications were achieved for Rex (Hecker et al., 2009; Pagels et al., 2010). Results were mainly achieved by establishing regulator-promoter interaction methods (in particular EMSA and “footprinting”). Additionally, this chapter describes method development of a novel easy-to-apply method, named REPA (restriction endonuclease protection assay).
The second chapter presents method development for the genome-wide identification of regulator-promoter interactions, named “global footprinting”. This approach combines two already well-established methods: (A) Purification of a recombinant Strep-tagged regulator via Strep-tag affinity chromatography. The modification in “global footprinting” is to incubate the regulator with fragmented genomic S. aureus DNA, resulting in co-purification and enrichment of DNA streches with specific regulator binding sites. (B) Identification and quantification of these DNA streches via “next generation sequencing” (NGS). Using this combined approach, this PhD thesis was able to localize the most affine promoter binding site for the regulator Rex precisely down to one single base pair across the whole S. aureus genome.
The third chapter describes the assembly of a data library, collecting the majority of DNA microarray data and regulator-promoter interaction studies from the worldwide literature. This data library summarizes more than 50,000 regulatory events and more than 2,000 regulator binding sites. As published in the perspectives in Fuchs et al. (2018), this data library can be incorporated into the free-accessible online data base “Aureowiki” (provided and maintained by the Department of Functional Genomics, University of Greifswald). The major effort is the consolidation of these “big data” via in silico cluster analysis, comparing 282 different experimental conditions at once. The major finding of this analysis is the identification of seven functional and regulatory gene clusters in S. aureus pathogenesis that are conserved across S. aureus strain diversity. These findings allowed the creation of a prediction tool, to provide novel experimental starting points for the worldwide S. aureus research community. This prediction tool was successfully applied on several topics, and partially published: functional and regulatory prediction for a set of 20 selected lipoproteins as potential virulence factors (Graf et al., 2018), and prediciton of protein complexes (Liang et al., 2016).
Alltogether, this PhD thesis provides new insights into the molecular mechanisms of three pathogenesis-relevant regulators: Rex, CodY, and SarA. It describes the development of three novel experimental methods for wet and dry lab applications that can be used on research topics beyond S. aureus: REPA, “global footprinting”, and cluster analysis. Finally, cluster analysis identifies seven conserved fuctional and regulatory gene clusters, involved in S. aureus pathogenesis. This cluster anaysis is used as a prediction tool to provide novel experimental starting points, and to predict the physiological mode of action of newly discovered anti-staphylococcal agents.