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Deciphering the entire protein complement of a living cell together with the elucidation of dynamic processes on protein level are the main goals of proteomics as it is used today. To achieve this goal, namely the elucidation of dynamic processes of the entire bacterial cell, we have developed strategies and distinct workflows to cover the most proteins in different subcellular localizations in bacteria together with a stable isotopes labeling approach to follow temporal and spatial changes in different proteomic subfractions. In this work, it has been shown that the use of mass spectrometry based in vivo quantitation techniques and the application of subcellular and chromatographic fractionation has lead to a new level of qualitative and quantitative proteomics data. Emphasizing on the studies revealing the dynamics of the bacterial physiology on a time resolved base, both spatial and temporal processes can be monitored to obtain knowledge on physiological processes in a depth that has not been reached before in comparable global studies.
A method employing labeling of cell-surface proteins with Sulfo-NHS-SS-biotin and subsequent affinity enrichment with NeutrAvidin has been optimized in order to make cell-surface proteins from Gram-positive bacteria reliably accessible to quantitative mass spectrometric analyses. The optimized biotinylation approach was applied for analysis of the lipoproteome from S. aureus and S. pneumoniae on a global scale and the influence of mutations in the lipoprotein maturation pathway on the cell-surface and exoproteomes of both species was investigated. The biotinylation approach was integrated into a proteomic workflow that employs metabolic labeling with heavy nitrogen for relative protein quantification to investigate proteomic differences between S. aureus in a biofilm model and its free-floating, planktonic counterparts.
Bacterial infections represent an increasing threat in human health and hospital- acquired infections meanwhile account for 99,000 deaths every year in the United States (Ventola, 2015). Live-threating bacterial infections will certainly emerge to an even more serious concern in future, essentially by accelerated development of antibiotic resistance. Only recently, the discovery of plasmid-encoded mcr-1, that confers resistance against colistin, marks the point where this highly transmissible resistance mechanism is now reported for every so far developed antibiotic (Liu et al., 2016). Staphylococcus aureus is a Gram-positive bacterium and well-known for its ability to quickly acquire resistance toward antibiotics either by chromosomal mutations and/or horizontal gene transfer (Pantosti et al., 2007). Although approximately 30% of the population is colonized with S. aureus (Kluytmans et al., 1997), it can transform to an invasive pathogen that causes a wide range of severe infections including pneumonia. The success of S. aureus as opportunistic pathogen can be attributed to combinations of several beneficial properties and capabilities including the expression of an arsenal of virulence factors (Archer, 1998), intracellular persistence (Garzoni & Kelley, 2009) and subversion of host cell defense mechanisms (Schnaith et al., 2007). The airway epithelium is the first line of defense against bacterial pathogens by forming a relative impermeable physical barrier composed of epithelial cells that are linked by tight junctions, desmosomes and adherence junctions (Davies & Garrod, 1997). Additionally, the airway epithelium mediates the detection of bacterial pathogens via toll-like receptors (TLRs) that recognize a variety of bacterial molecular patterns such as lipopolysaccharide (LPS), peptidoglycan and flaggelin (Sha et al., 2012). This interaction is transduced via protein phosphorylations into the cell in order to promote adaptation to the infection by initiation of the adaptive and innate immune defense. Although few insights where obtained of the signaling host responses towards staphylococcal infections (Agerer et al., 2003; 2005; Ellington et al., 2001), a comprehensive description of the host signaling network is largely missing. Thus, this dissertation thesis focuses on the decipherment of phosphorylation-mediated signaling responses towards S. aureus infections in non- professional and professional phagocytes by mass spectrometry-based phosphoproteomic techniques. The results of this thesis are summarized in the four chapters. Chapter I introduces to recent advances in the development of methodologies applied in the field of phosphoproteomics, including quantification strategies, peptide fractionation techniques and phosphopeptide enrichment methods applied for the system-wide characterization of protein phosphorylations by mass spectrometry. Additionally, publications reporting phosphorylation-based host signaling responses towards bacterial pathogens or their molecular patterns that applied mass spectrometry-based phosphoproteomics are discussed. In chapter II, the responses of the human bronchial epithelial cell lines 16HBE14o- and S9 following challenge with staphylococcal alpha- toxin at the level of proteome and phosphoproteome are summarized. General and cell type-specific signaling events are highlighted and evidences linking the activity of the epidermal growth factor receptor (EGFR) with differences in tolerance toward alpha-toxin are provided. Chapter III describes the modulation of the host signaling network of 16HBE14o- airway epithelial cells triggered by infection with S. aureus including temporal dissection of signaling events. Several protein kinases were identified as important signaling hubs mediating the host response. Targeted pharmaceutical inhibition of these kinases was probed and resulted in reduction of intracellular bacterial load. Chapter IV describes the rearrangement of the kinome by the differentiation of THP-1 monocytes to macrophage-like cells by application of quantitative kinomics. This approach identified the kinase MAP3K7 (TAK1) as key mediator of bacterial clearance, chemokine secretion and the differentiation process itself.
Reversible posttranslational modifications play an important role during the regulation of many central processes in bacterial cells. Protein phosphorylation, in particular, can influence signal transduction processes and thus enables a distinct reaction of the cell to different stress and environmental conditions. In the case of the human pathogen Staphylococcus aureus, protein phosphorylation is involved in the adaptation to changing conditions during colonisation of human hosts. For this reason, the investigation of phosphorylations in S. aureus allows a better understanding of pathophysiology and virulence of this organism. Apart from stable phosphorylations at the amino acids serine, threonine and tyrosine, insights into energy-rich phosphorylations, for instance at arginine residues, gain more and more scientific attention. For this reason, one purpose of this study was the investigation of incidence and physiological relevance of this protein modification at a global scale. Firstly, the analysis of this modification was methodically optimised resulting in the identification of eight arginine phosphorylations in wild type cells of S. aureus COL. Secondly, the deletion mutant ΔptpB missing the gene that codes for an arginine phosphatase, was analysed. The characterisation of PtpB in vitro proved its activity and specificity towards arginine phosphorylations. This enabled the global analysis of the phosphoproteome with a focus on arginine phosphorylations. In addition to the optimisation of the phosphopeptide enrichment as part of the sample preparation, the data analysis process was adapted to the special challenges of energy-rich phosphorylations. Here, classical database search was extended by spectral library based analyses. In addition, synthetic peptides allow the generation of high quality mass spectra and the verification of database based evaluation strategies to ensure the quality of the spectral library. Next, S. aureus COL was cultivated under various conditions and several subcellular fractions were analysed with the aim to cover a broad part of the proteome. The combination of the spectra of synthetic peptides, the spectra of non-phosphorylated peptides from extensive cultivation experiments and the spectra of enriched phosphopeptides rendered the construction of a spectral library possible. This contained 2,270 proteins out of which 392 were found to be phosphorylated. A comparison of the database based analysis with spectral library based analysis showed the advantages of the latter when comparing the reproducibility of biological replicates. Thereby a permanent issue in phosphoproteomics was investigated. Hence, spectral libraries were used for the analysis of the phosphoproteome of S. aureus under control and stress conditions. 215 arginine phosphosites were identified within the mutant under control conditions and 117 under oxidative stress conditions. Oxidative stress was chosen because phenotypic characterisation of the mutant revealed that the most distinct growth changes in comparison with the wild type occurred after oxidative stress. These phenotypic changes were quantitatively approached in the last part of this work. Total proteome quantification of the wild type and mutant under control and stress conditions revealed an influence of the ptpB deletion on amino acid metabolism, oxidative stress response and virulence. The quantification of phosphopeptides by means of a combination of spectral library with Census based analysis finally confirmed the observations made during total proteome quantification.