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- Proteolyse (3) (remove)
Proteolysis represents the final step in the life of a protein. It is one of the most important cellular processes assisted by chaperone systems and ensures an appropriate protein homeostasis. Protein degradation is essential for the removal of cytotoxic protein aggregates and mis-translated/mal-folded proteins, „unemployed“ and regulatory proteins to enable rapid cell adaptation to altering environmental conditions (Gottesman, 2003; Wiegert & Schumann, 2001; Parker, 1981; Stansfield et al., 1998; Drummond & Wilke, 2008; Goldberg, 1972; Gerth et al., 2008). The bacterial Clp (caseinolytic proteins) protease complexes are analogous to the eukaryotic 26S proteasome and consist of Hsp100/Clp proteins of the AAA+ superfamily and an associated barrel-like proteolytic chamber (e.g. ClpP). The Clp proteases seem to be responsible for the major protein turnover in low GC, Gram+ bacteria. The main goal of this thesis was to develop new methods and tools to investigate global proteolysis more precisely and to get a detailed understanding of protein degradation during starvation conditions and it´s regulation in low GC, Gram-positive bacteria. To analyse protein degradation under starvation conditions the well established glucose starvation model was used. In Bacillus subtilis it could be shown that approximately 200 proteins are selectively degraded in a glucose depletion induced stationary phase. Furthermore radioactive pulse-chase labelling experiments coupled with 2D-PAGE analysis revealed that mainly the ClpCP protease complex is involved in the degradation of proteins in the stationary growth phase. To investigate proteolysis in the human pathogen Staphylococcus aureus in the same way, a newly developed chemically defined medium was established suitable for radioactive pulse-chase labelling experiments under stable glucose starvation conditions. The degradation kinetics of individual 2D spots was significantly better resolved using 14C-BSA as an internal marker protein for the sample normalisation. A rather huge overlap was found within the functional protein classes that were degraded in B. subtilis and S. aureus the stationary phase. Among others, especially proteins involved in amino acid, nucleotide and cell wall biosynthesis were rapidly degraded, whereby not always the same and sometimes another enzymes from a biosynthetic chain were targeted for proteolysis. Despite the resolution power of the 2D-PAGE method, there are some drawbacks such as a limited "protein window" with regard to the molecular weight and isoelectric point, loss of low abundance proteins and a rather low reproducibility for time course experiments. Therefore a mass spectrometry based approach for the simultaneous detection of protein synthesis, accumulation and degradation was developed. This pulse-chase SILAC approach provides a very good reliability with a broad spectrum of proteins that can be analysed. Through the combination with ultracentrifugation even non-soluble and aggregated proteins could be analysed. Several hundred proteins were degraded in S. aureus during glucose starvation. Among them was the functional cluster of ribosomal proteins which is degraded in the early stationary phase. Furthermore proteins belonging to complexes were degraded with the same kinetic (e.g. NrdE, NrdF). In addition selective protein degradation took place according to functional categories (e.g., ribosomal proteins, biosynthetic, glycolytic enzymes) and not to regulatory groups (e.g. CcpA, SigB regulon).The investigation of a clpP deletion mutant in S. aureus revealed a greater susceptibility to aggregation, where the cells try to counteract with the expression of chaperones like GroEL/ES, ClpB and DnaK. The renaturation process is very ATP consuming and only takes place in energy rich phases of growth (e.g. from exponential to transient growth phase). Protein aggregation was found enhanced in the stationary phase. Furthermore, a higher GTP level compared to the wild-type probably resulted in a stronger CodY mediated repression with a rather low level of amino acids in clpP mutant cell. In addition substances like glycerol, which thermodynamically stabilise proteins in refolding processes (Maeda et al., 1996; Feng & Yan, 2008), were found in higher levels compared to the wild-type. A strong response to reactive oxygen species was detected in the clpP mutant strain, which is probably due to ROS production during the early stages of protein aggregation. Altogether, different methods were used for investigation protein degradation at a proteome-wide scale. Hundreds of degradation candidates were identified by gel-based and gel-free approaches in S. aureus wild-type cells. “Unemployed” proteins (e.g. ribosomal proteins, biosynthetic enzymes) were degraded and proteins particularly required and synthesized in glucose-starved cells such as TCA cycle enzymes were stable in the stationary phase. Investigation of the clpP mutant strain supports a proposed model for the pleiotropic phenotype and provides a deeper insight in the fine-tuned protein quality control and the important role of ClpP during starving conditions.
Protein quality control systems are essential for the viability and growth of all living organisms. They protect the cell from irreversible protein aggregation. Because the frequency of protein misfolding, which ultimately results in protein aggregation, varies with the environmental conditions, the amount and activity of protein quality systems have to be accurately adapted to the rate of protein misfolding. The main goal of this thesis was to gain detailed molecular insights into the transcriptional and post-translational regulation of these protein quality control networks in the ecologically, medically and industrially important phylum of low GC, Gram-positive bacteria. In these bacteria the core protein quality control systems are under the transcriptional control of the global repressor CtsR. In a first study it was demonstrated that the arginine kinase McsB is not responsible for the regulation of CtsR activity during heat stress, as was concluded by others on the basis of previous in vitro data. Rather, it was demonstrated that CtsR acts as an intrinsic thermosensor that adapts its activity to the surrounding temperature. CtsR displays a decreased DNA binding at higher temperatures, which leads to induction of transcription of the protein quality control systems under these conditions. This CtsR feature is conserved in all low GC, Gram-positive bacteria. However, the CtsR proteins of various low GC, Gram-positive species do not have the same temperature optima. CtsR responds to heat in a species-specific manner according to their corresponding growth temperature. Detailed analysis revealed that a highly conserved tetra-glycine loop within the winged helix-turn-helix domain of CtsR is responsible for thermosensing. Dual control of CtsR activity during different stresses was demonstrated for the first time in this work. In addition to heat-dependent de-repression, CtsR is inactivated by thiol-specific stress conditions. This latter de-repression depends on a molecular redox-switch that is independent of CtsR auto-regulation. In Bacillus subtilis and its closest relatives the McsA/McsB stress-sensing complex is responsible for CtsR de-repression during redox stress conditions. McsA is able to sense the redox state of the cell via its highly conserved cysteine residues. When these cysteines are reduced, McsA is able to bind and inhibit McsB. But when these cysteine residues are oxidized, McsB is released from McsA. Thereby, McsB is activated and removes CtsR from the DNA. However, the McsA/McsB complex is not present in all low GC, Gram-positive bacteria. In the species lacking this complex, ClpE is able to act as a redox-sensor probably via its highly conserved N-terminal zinc finger domain. When these cysteine residues are oxidized, ClpE is activated which results in CtsR de-repression. In addition to the transcriptional regulation of CtsR low GC, Gram-positive protein quality control systems are regulated post-transcriptionally. The expression of the McsA/McsB adaptor pair is regulated by CtsR. However, McsB activity is also tightly regulated by three different regulatory proteins (McsA/ClpC/YwlE). McsB is needed to target specific substrates to ClpC, either for refolding or degradation by the ClpCP protease. It was demonstrated that only the auto- phosphorylated form of McsB is able to bind to its substrates. This McsB function is inhibited in non-stressed cells by a direct interaction with ClpC. Consequently, McsB is activated by a release from ClpC during protein stress. In addition, McsB activation depends on the presence of its activator McsA. Accordingly, McsB cannot be activated as an adaptor protein during thiol-specific stress because McsA is no longer able to bind to McsB under these conditions. However, also active McsB is subject to post-translational control. Activated McsB is either de-phosphorylated by McaP or degraded by ClpCP ensuring an appropriate shut-down of the McsB adaptor. Both McaP and ClpC inhibit McsB activity with different intensities. ClpC possesses a stronger impact on McsB activity than McaP but both proteins are needed for an adequate silencing of McsB activity. In addition, it was shown for the first time that B. subtilis McsB is a global adaptor that influences the stability of multiple proteins. The B. subtilis ClpC protein is unlike most members of the Hsp100 family because it not only requires several adaptor proteins for substrate recognition but also for its general ATP- dependent activity. Biochemical analysis revealed how ClpC is activated by distinct adaptor proteins. McsB modulates ClpC activity by regulatory phosphorylation of arginine residues. Moreover, McaP (formerly YwlE) was identified as an arginine phosphatase that modulates the McsB mediated ClpC activity. MecA, another known adaptor protein for ClpC, activates ClpC independently of these arginine phosphorylations, which demonstrates the existence of multiple pathways for ClpC activation.
Charakterisierung plasmamembrangebundener Proteasen von Nicotiana tabacum und Hordeum vulgare
(2012)
Es wurden erstmals zwei plasmamembrangebundene Proteaseformen in den Wurzeln der Gerste massenspektrometrisch identifiziert und den Metalloaminopeptidasen der Peptidasefamilien M17 und M24 zugeordnet. Ausgehend von Enzymaktivitätstests mit verschiedenen Substraten und gelelektrophoretischer Fraktionierungen existieren darüber hinaus weitere PM-Proteasen des Aminopeptidase-, Carboxypeptidase- und Endoproteasetyps an der pflanzlichen Plasmamembran (PM). Die untersuchten PM-Proteasen stellen Triton X-114-resistente Proteine dar, die erfolgreich mit Octylglucosid solubilisiert wurden und sowohl an der inneren als auch an der apoplastischen Seite der PM lokalisiert sein könnten. Durch endogene Proteolyse werden andere PM-Proteine wie Aquaporine und P-Typ-H+-ATPasen durch die PM-Proteasen reguliert. Dabei zeigen einige dieser Proteolyseprodukte Proteaseaktivität, die für vier Proteaseformen der Gerste erst nach der Abtrennung von der PM nachweisbar war.