Refine
Has Fulltext
- yes (46)
Is part of the Bibliography
- yes (46) (remove)
Year of publication
Document Type
- Doctoral Thesis (30)
- Journal article (16)
Keywords
- Staphylococcus aureus (46) (remove)
Institute
- Institut für Molekulare Infektionsbiologie (16)
- Graduate School of Life Sciences (13)
- Theodor-Boveri-Institut für Biowissenschaften (12)
- Institut für Hygiene und Mikrobiologie (5)
- Rudolf-Virchow-Zentrum (4)
- Institut für Pharmazie und Lebensmittelchemie (2)
- Fakultät für Biologie (1)
- Frauenklinik und Poliklinik (1)
- Institut für Humangenetik (1)
- Institut für Klinische Biochemie und Pathobiochemie (1)
Sonstige beteiligte Institutionen
Whereas most currently used antibiotics act by interfering with essential bacterial processes, a smaller group of antibacterials disturbs the integrity of the cell membrane. Since fatty acids are a vital component of membrane phospholipids, the type-II fatty acid biosynthesis pathway (FAS-II) of bacteria constitutes a promising drug target. The front-line anti-tuberculosis prodrug isoniazid blocks the FAS-II pathway in M. tuberculosis thereby leading to morphological changes and finally to cell lysis. When it became evident that the enoyl-ACP reductase in the FAS-II pathway is the target of the activated isoniazid, several programs were initiated to develop novel inhibitors directed against this protein in different pathogens. The S. aureus enoyl-ACP reductase (saFabI) is of particular interest since three promising drug candidates inhibiting this homologue have reached clinical trials. However, despite these prospects, no crystal structures of saFabI were publicly available at the time the present work was initiated. Thus, one major goal of this thesis was the generation of high-resolution atomic models by means of X-ray crystallography. The development of a highly reproducible approach to co-crystallize saFabI in complex with NADP+ and diphenyl ether-based inhibitors led to crystal structures of 17 different ternary complexes. Additional crystallographic experiments permitted the view into two apo-structures and two atomic models of saFabI in complex with NADPH and 2-pyridone inhibitors. Based on the established saFabI structure, molecular dynamics (MD) simulations were performed to improve our understanding of the conformational mobility of this protein. Taken together, these investigations of the saFabI structure and its flexibility served as an ideal platform to address important questions surrounding substrate and inhibitor recognition by this enzyme. Intriguingly, our saFabI structures provide several vastly different snapshots along the reaction coordinate of ligand binding and hydride transfer, including the closure of the flexible substrate binding loop (SBL). The extraordinary mobility of saFabI was confirmed by MD simulations suggesting that conformational motions indeed play a pivotal role during substrate delivery and turnover. A water chain linking the active site with a water-basin inside the homo-tetrameric enzyme was found likely to be crucial for the closure and opening of the SBL and, thus, for the catalyzed reaction. Notably, the induced-fit ligand binding process involves a dimer-tetramer transition, which could be related to the observed positive cooperativity of cofactor and substrate binding. Overall, saFabI displays several unique characteristics compared to FabI proteins from other organisms that might be necessary for the synthesis of branched-chain fatty acids, which in turn are required for S. aureus fitness in vivo. This finding may explain why S. aureus is sensitive to FAS-II inhibitors even in the presence of exogenous fatty acids. Accordingly, saFabI remains a valid drug target and our structures can be used as a molecular basis for rational drug design efforts. In fact, binding affinity trends of diphenyl ether inhibitors and, more importantly, the correlated residence times could be rationalized at the molecular level. Furthermore, the structure of saFabI in complex with the 2-pyridone inhibitor CG400549 revealed unique interactions in the wider binding crevice of saFabI compared to other FabI homologues explaining the narrow activity spectrum of this clinical candidate with proven human efficacy. In summary, these studies provide an ideal platform for the development of new, effective saFabI inhibitors as exemplified by the promising 4-pyridone PT166. In the context of this dissertation, crystal structures of the condensing enzyme KasA in complex with several analogs of the naturally occurring inhibitor thiolactomycin have been solved.
Hintergrund: Zunehmend wird der Eigenschaft von Staphylococcus aureus als fakultativ intrazellulärem Erreger Bedeutung zugemessen. Ein direkter Nachweis der in vivo Relevanz von fakultativ intrazellulärem S. aureus bleibt allerdings bisher aus. Der Mechanismus zellulärer Invasivität ist bekannt und korreliert mit verschiedenen molekularen Markern (spa-Typ, SCCmec-Typ und pls/Pls). In dieser Studie wurde die Zuverlässigkeit und Ausweitbarkeit dieser Marker getestet. Des Weiteren wurde überprüft, ob sich die zelluläre Invasivität von kolonisierenden und Infektions-assoziierten MRSA-Isolaten unterscheidet und, ob die alleinige Bestimmung molekularer Marker in vitro die Virulenz eines Isolats in vivo abzuschätzen vermag. Methoden:Insgesamt wurden 109 MRSA-Isolate gesammelt, molekular charakterisiert (spa-Typ, BURP-Analyse, SCCmec-Typ, pls, agr-Typ, Hämolyseverhalten) und das Potential zellulärer Invasivität in vitro ermittelt. Die Assoziation eines Isolates mit einer Infektion in vivo wurde nachverfolgt (93 Kolonisierer versus 16 Infektions-assoziierte-Isolate). Zusätzlich wurde eine Referenzgruppe aus 13 S. aureus-Isolaten etabliert, die klinisch mit vergleichsweise invasiven Infektionen assoziiert waren (12 Osteomyelitis-Isolate und 1 Endokarditis-Isolat). Ergebnisse: Die bekannten molekularen Marker zellulärer Invasivität korrelieren zuverlässig in einer Population klinischer MRSA-Isolate und lassen sich auch auf bisher nicht bekannte (spa- und SCCmec-) Typen ausweiten. Das Hämolyseverhalten korrelierte nicht mit der zellulären Invasivität. Der agr-Typ wurde als weiterer molekularer Marker identifiziert. Die zelluläre Invasivität war unabhängig von der Etablierung einer Infektion in vivo (mediane Invasivität der Kolonisierer 100% versus 108% der Infektions-assoziierten Studienisolate und 110% der externen Referenzisolate). Des Weiteren waren die molekularen Marker spa- und agr-Typ nicht in der Lage, die Virulenz eines MRSA-Isolats in vivo abzuschätzen. Diskussion: Die zelluläre Invasivität klinischer MRSA-Isolate korreliert zuverlässig mit molekularen Markern. Allerdings vermögen weder die zelluläre Invasivität, noch mit ihr assoziierte molekulare Marker die Etablierung einer Infektion in vivo vorherzusagen. Beide scheinen also als Surrogat-Parameter zur Abschätzung der klinischen Virulenz eines Isolats ungeeignet. Zur Klärung der Frage, ob molekulare Marker zellulärer Invasivität in anderen Abschnitten der Pathogenese von S. aureus- Infektionen eine Rolle spielen, bedarf es weiterer Studien.
The present work illustrates the structural and biochemical characterization of two diverse proteins, BadI and MenD from Rhodopseudomonas palustris and Staphylococcus aureus, respectively.
BadI or 2-ketocyclohexanecarboxyl-CoA is one of the key enzymes involved in the anaerobic degradation of aromatic compounds. The degradation of aromatic compounds is a vital process for the maintenance of the biogeochemical carbon cycle and bioremediation of xenobiotic compounds, which if present at higher concentrations can cause potential hazards to humans. Due to the relatively inert nature of aromatic compounds, enzymes catalyzing their degradation are of special interest for industrial applications. BadI is one of the key enzymes involved in the anaerobic degradation of aromatic compounds into an aliphatic moiety.
The major focus of this study was to provide mechanistic insights into the reaction catalyzed by BadI. BadI belongs to the crotonase superfamily and shares high sequence homology with the family members of MenB or dihydroxynaphthoate synthase. BadI is known to catalyze the cleavage of the cyclic ring of 2-ketocyclohexane carboxyl-CoA by hydrolyzing the C-C bond leading to the formation of the aliphatic compound pimelyl CoA. On the other hand MenB catalyzes the condensation reaction of o-succinylbenzoyl-CoA to dihydroxylnaphthoyl-CoA. A comprehensive amino acid sequence analysis between BadI and MenB showed that the active site residues of MenB from Mycobacterium tuberculosis (mtMenB) are conserved in BadI from Rhodopseudomonas palustris. MenB is involved in the menaquinone biosynthesis pathway and is a potential drug target against Mycobacterium tuberculosis as it has no known human homologs. Due to the high homology between MenB and BadI and the inability to obtain MenB-inhibitor complex structures we extended our interest to BadI to explore a potential substitute model for mtMenB as a drug target.
In addition, BadI possesses some unique mechanistic characteristics. As mentioned before, it hydrolyzes the substrate via a retro Dieckmann’s reaction contrasting its closest homolog MenB that catalyzes a ring closing reaction through a Dieckmann’s reaction. Nevertheless the active site residues in both enzymes seem to be highly conserved. We therefore decided to pursue the structural characterization of BadI to shed light on the similarities and differences between BadI and MenB and thereby provide some insights how they accomplish the contrasting reactions described above.
We determined the first structures of BadI, in its apo and a substrate mimic bound form. The crystal structures revealed that the overall fold of BadI is similar to other crotonase superfamily members. However, there is no indication of domain swapping in BadI as observed for MenB. The absence of domain swapping is quite remarkable because the domain swapped C-terminal helical domain in MenB provides a tyrosine that is imperative for catalysis and is also conserved in the BadI sequence. Comparison of the active sites revealed that the C-terminus of BadI folds onto its core in such a way that the conserved tyrosine is located in the same position as in MenB and can form interactions with the ligand molecule. The structure of BadI also confirms the role of a serine and an aspartate in ligand interaction, thus validating that the conserved active site triad participates in the enzymatic reaction. The structures also reveal a noteworthy movement of the active site aspartate that adopts two major conformations. Structural studies further illuminated close proximity of the active site serine to a water and chlorine molecule and to the carbon atom at which the carbonyl group of the true substrate would reside. Biochemical characterization of BadI using enzyme kinetics validated that the suggested active site residues are involved in substrate interaction. However, the role of these residues is very distinct, with the serine assuming a major role. Thus, the present work ascertain the participation of putative active site residues and demonstrates that the active site residues of BadI adopt very distinctive roles compared to their closest homolog MenB.
The MenD protein also referred to as SEPHCHC (2-succinyl-5-enolpyruvyl-6- hydroxy-3-cyclohexene-1-carboxylic acid) synthase is one of the enzymes involved in menaquinone biosynthesis in Staphylococcous aureus. Though S. aureus is usually considered as a commensal it can act as a remarkable pathogen when it crosses the epithelium, causing a wide spectrum of disorders ranging from skin infection to life threatening diseases. Small colony variants (SCVs), a slow growing, small sized subpopulation of the bacteria has been associated with persistent, recurrent and antibiotic resistant infections. These variants show autotrophy for thiamine, menaquinone or hemin. Menaquinone is an essential component in the electron transport pathway in gram-positive organisms. Therefore, enzymes partaking in this pathway are attractive drug targets against pathogens such as Mycobacterium tuberculosis and Bacillus subtilis. MenD, an enzyme catalyzing the first irreversible step in the menaquinone biosynthetic pathway has been implicated in the SCV phenotype of S. aureus. In the present work we explored biochemical and structural properties of this important enzyme.
Our structural analysis revealed that despite its low sequence identity of 28%, the overall fold of staphylococcal MenD (saMenD) is similar to Escherichia coli MenD (ecMenD) albeit with some significant disparities. Major structural differences can be observed near the active site region of the protein and are profound in the C-terminal helix and a loop near the active site. The loop contains critical residues for cofactor binding and is well ordered only in the ecMenD-ThDP structure, while in the apo and substrate bound structures of ecMenD the loop is primarily disordered. In our saMenD structure the loop is for the first time completely ordered in the apo form and displays a novel conformation of the cofactor-binding loop. The loop adopts an unusual open conformation and the conserved residues, which are responsible for cofactor binding are located too far away to form a productive complex with the cofactor in this conformation. Additionally, biochemical studies in conjugation with the structural data aided in the identification of the substrate-binding pocket and delineated residues contributing to its binding and catalysis. Thus the present work successfully divulged the unique biochemical and structural characteristics of saMenD.
Structural and functional elucidation of the Type VIIb secretion system from Staphylococcus aureus
(2020)
The Type VII secretion system (T7SS) is linked to virulence and long-term pathogenesis in a broad range of Gram-positive bacteria, including the human commensal and pathogen Staphylococcus aureus. The Type VIIb secretion system (T7SSb) is responsible for the export of small toxic proteins, which induce antibacterial immune responses and mediate bacterial persistence in the host. In addition, it is also involved in bacterial competition. The T7SSb requires several proteins to build up the secretion machinery. This work focuses on the structural and functional investigation of the motor ATPase EssC and the putative pore forming, multi-pass membrane component EsaA. Both proteins are indispensable for substrate secretion.
EssC belongs to the FtsK/SpoIIIE ATPase family and is conserved among the T7SSs. It contains three C-terminal, cytosolic ATPase domains, designated as EssC- D1, -D2 and -D3, whereby EssC-D3 is the most distal one. In this thesis, I am presenting the crystal structure of the EssC-D3 at 1.7 Å resolution. As the deletion of EssC-D3 abrogates substrate export, I have demonstrated that this domain comprises a hydrophobic, surface-exposed pocket, which is required for substrate secretion. More specifically, I have identified two amino acids involved in the secretion process. In addition, my results indicate that not only EssC-D3 is important for substrate interaction but also EssC-D2 and/or EssC-D1. Unlike in the related Yuk T7SSb of Bacillus subtilis, the ATPase activity of D3 domain contributes to substrate secretion. Mutation of the modified Walker B motif in EssC-D3 diminishes substrate secretion completely.
The membrane protein EsaA encompasses an extracellular segment spanning through the cell wall of S. aureus. I was able to reveal that this part folds into a stable domain, which was crystallized and diffracted up to 4 Å. The first attempts to dissolve the structure failed due to a lack of homologues structures. Therefore, crystals for single-wavelength anomalous dispersion, containing selenomethionyl-substitutes, were produced and the structure solution is still in progress. Preliminary experiments addressing the function of the extracellular domain indicate an important role in substrate secretion and bacterial competition.
Bacterial functional membrane microdomains (FMMs) are membrane platforms that resemble lipid rafts of eukaryotic cells in certain functional and structural aspects. Lipid rafts are nanometer-sized, dynamic clusters of proteins and lipids in eukaryotic cell membranes that serve as signaling hubs and assembling platforms. Yet, studying these structures can often be hampered by the complexity of a eukaryotic cell. Thus, the analogous structures of prokaryotes are an attractive model to study molecular traits of this type of membrane organization.
Similar to eukaryotic lipid rafts, the bacterial FMMs are comprised of polyisoprenoid lipids, scaffold proteins and a distinct set of membrane proteins, involved in signaling or secretion. Investigating bacterial FMMs not only contributes to the understanding of the physiological importance of FMMs in bacteria, but also helps to elucidate general principles of rafts beyond prokaryotes.
In this work, a bacterial model organism was used to investigate effects of synthetic overproduction of the raft scaffolding proteins on bacterial physiology. This overexpression causes an unusual stabilization of the FMM-harbored protease FtsH and therefore the proteolytic targets of FtsH are not correctly regulated. Developmental defects and aberrances in shape are the consequence, which in turn negatively affects cell physiology. These findings may be adapted to better understand lipid raft processes in humans, where flotillin upregulation is detected along with development of neurological diseases.
Moreover, it was aimed at understanding the FMM-proteome of the human pathogen Staphylococcus aureus. An in-depth quantitative mass-spectrometry analysis reveals adaption of the protein cargo during different conditions, while maintaining a distinct set of core FMM proteins. As a case study, the assembly of the type VII secretion system was shown to be dependent on FMM integrity and more specifically on the activity of the FMM-scaffold flotillin. This secretion system is important for the virulence of this pathogen and its secretion efficiency can be targeted by small molecules that inhibit flotillin activity. This opens new venues for non-conventional antimicrobial compounds to treat staphylococcal infections.
Scaffold proteins are ubiquitous chaperones that promote efficient interactions between partners of multi-enzymatic protein complexes; although they are well studied in eukaryotes, their role in prokaryotic systems is poorly understood. Bacterial membranes have functional membrane microdomains (FMM), a structure homologous to eukaryotic lipid rafts. Similar to their eukaryotic counterparts, bacterial FMM harbor a scaffold protein termed flotillin that is thought to promote interactions between proteins spatially confined to the FMM. Here we used biochemical approaches to define the scaffold activity of the flotillin homolog FloA of the human pathogen Staphylococcus aureus, using assembly of interacting protein partners of the type VII secretion system (T7SS) as a case study. Staphylococcus aureus cells that lacked FloA showed reduced T7SS function, and thus reduced secretion of T7SS-related effectors, probably due to the supporting scaffold activity of flotillin. We found that the presence of flotillin mediates intermolecular interactions of T7SS proteins. We tested several small molecules that interfere with flotillin scaffold activity, which perturbed T7SS activity in vitro and in vivo. Our results suggest that flotillin assists in the assembly of S. aureus membrane components that participate in infection and influences the infective potential of this pathogen.
Staphylococcus aureus ist ein bedeutender opportunistischer Krankheitserreger, der eine Vielzahl von Infektionen in Menschen und Tieren hervorrufen kann. Das Krankheitsbild reicht von leichten Hautinfektionen bis hin zu lebensbedrohlichen Infektionen wie Endokarditis, Sepsis oder Pneumonien. S. aureus ist ein Haupterreger nosokomialer Infektionen. Besonders die Antibiotikaresistenzentwicklung von S. aureus–Stämmen ist problematisch. Als wirksame Antibiotika können zur Zeit oft nur noch Vancomycin, Synercid oder Linezolid zur Therapie eingesetzt werden. Die alarmierende Resistenzentwicklung in S. aureus verdeutlicht, dass die Entwicklung neuer Antibiotika und die Identifizierung neuer bakterieller Angriffsstrukturen dringend erforderlich ist. Gängige antiinfektive Therapeutika sind gegen die bakterielle Zellwandsynthese, den DNA- und RNA-Stoffwechsel oder die Proteinbiosynthese gerichtet. In dieser Arbeit sollten Virulenz-relevante Zielstrukturen für die Entwicklung neuer Antibiotika untersucht werden. Insgesamt wurden sieben Gene analysiert, von denen vier zu Anfang dieser Arbeit in S. aureus noch nicht charakterisiert waren. Die Zielgene (clpP, purH, ssrA und smpB) in S. aureus sollten deletiert werden, um ihre Überlebensnotwendigkeit in vitro- und in vivo zu überprüfen. Eine Deletion gelang bei den Genen clpP und purH, die somit als nicht essenziell in S. aureus zu betrachten sind. Die bereits zuvor als nicht-essenziell charakterisierten Gene arlR, arlS und putP wurden deletiert und die Mutanten dclpP, darlR, darlS, dpurH und dputP wurden phänotypisch in Hinsicht auf ihren Einfluss auf die Pathogenität in S. aureus analysiert. Die differenzielle Genexpression der Mutanten dclpP und darlR wurde mit Hilfe von Microarray-Hybridisierungsexperimenten untersucht. Die ∆clpP-Mutante zeigte einen starken Wachstumsdefekt bei verschiedenen Temperaturen (30, 37, 42°C) und war nicht mehr in der Lage bei 20°C zu wachsen. Ebenso war das Wachstum unter anaeroben Bedingungen stark beeinträchtigt. Der Stamm dclpP wies eine verringerte hämolytische Aktivität sowie eine verminderte Adhärenz an Polystyren auf. Außerdem konnte eine stark erhöhte autolytische Aktivität in einem Triton X-100-Assay beobachtet werden. In einem Invasions-Zellkulturassay mit 293T-Epithelzellen konnte eine ~10-fach erhöhte Invasivität im Vergleich zu dem isogenen Wildtyp festgestellt werden. Die Komplementierung der ∆clpP-Mutante durch Einführung eines clpP-Expressionsvektors führte nahezu bei allen getesteten Bedingungen zur Wiederherstellung des wildtypischen Phänotyps. Die Transkriptomanalyse der dclpP-Mutante ergab eine deutliche Veränderung in der Genexpression (15 % aller Gene). Eine computerunterstützte Analyse der Upstreambereiche der deregulierten Gene führte zu der Identifizierung verschiedener Regulons, die bei der bakteriellen Antwort auf verschiedene Stressbedingungen eine Rolle spielen. Die clpP-Deletion betrifft besonders Regulatoren, deren Aktivität in Abhängigkeit zu veränderten Redox-Bedingungen reguliert wird, wie z. B. verschiedenen Stressbedingungen und Anaerobiose. Die Konstruktion der darlR- und darlS-Mutanten führte zu einer gesteigerten hämolytischen Aktivität, einer erhöhten Adhärenz an Polystyren sowie einer erhöhten autolytischen Aktivität in Triton X-100-Assays. Die Internalisierungsrate durch 293T-Epithelzellen war vermindert. Die darlR-Mutante wurde in einem Katheter-assoziierten Infektionsmodell in Ratten eingesetzt. Die kompetitive Infektion mit Mutante und Wildtyp ergab einen deutlichen Nachteil bei der Etablierung einer Infektion durch die Mutante. Die Transkriptomanalyse der 8325darlR-Mutante in der exponenziellen und in der stationären Phase unterstreicht den großen Einfluss des ArlRS-Zwei-Komponenten-Systems auf die Regulation der Genexpression in S. aureus. In der exponenziellen Phase wurden insgesamt 5 % und in der stationären Phase 15 % der Gene differenziell exprimiert. dpurH- und dputP-Mutanten wiesen in vitro keine Veränderungen im Wachstums-verhalten, der Biofilmbildung oder hämolytischen Aktivität auf. In einem Infektionsmodell in Ratten führte die Deletion von purH in dem S. aureus-Stamm MA12 zu einer signifikanten Verminderung der Virulenz. Die Herstellung von smpB- und ssrA-Deletionsmutanten verlief ohne Erfolg. Es wurde versucht, einen direkten Nachweis für den essenziellen Charakter dieser Gene durch den Einsatz konditional letaler Expressionssysteme zu erbringen. Weder der Austausch des wildtypischen durch einen regulierbaren Promotor noch eine Antisense-RNA-Strategie war für eine eindeutige Klärung dieser Frage ausreichend. Es konnte durch diese Arbeit jedoch gezeigt werden, dass die Antisense-RNA-Strategie eine Beeinträchtigung des Wachstums von S. aureus bewirkt.
Livestock-associated methicillin-resistant Staphylococcus aureus (LA-MRSA) of clonal complex CC398 typically carry various antimicrobial resistance genes, many of them located on plasmids. In the bovine LA-MRSA isolate Rd11, we previously identified plasmid pAFS11 in which resistance genes are co-localized with a novel ica-like gene cluster, harboring genes required for polysaccharide intercellular adhesin (PIA)-mediated biofilm formation. The ica genes on pAFS11 were acquired in addition to a pre-existing ica locus on the S. aureus Rd11 chromosomal DNA. Both loci consist of an icaADBC operon and icaR, encoding a corresponding icaADBC repressor. Despite carrying two biofilm gene copies, strain Rd11 did not produce PIA and transformation of pAFS11 into another S. aureus strain even slightly diminished PIA-mediated biofilm formation. By focusing on the molecular background of the biofilm-negative phenotype of pAFS11-carrying S. aureus, we identified the pAFS11-borne ica locus copy as functionally fully active. However, transcription of both plasmid- and core genome-derived icaADBC operons were efficiently suppressed involving IcaR. Surprisingly, although being different on the amino acid sequence level, the two IcaR repressor proteins are mutually replaceable and are able to interact with the icaA promoter region of the other copy. We speculate that this regulatory crosstalk causes the biofilm-negative phenotype in S. aureus Rd11. The data shed light on an unexpected regulatory interplay between pre-existing and newly acquired DNA traits in S. aureus. This also raises interesting general questions regarding functional consequences of gene transfer events and their putative implications for the adaptation and evolution of bacterial pathogens.
The Staphylococcus aureus two component system (TCS) sae governs expression of numerous virulence factors, including Eap (extracellular adherence protein), which in turn among other functions also mediates invasion of host cells. The sae TCS is encoded by the saePQRS operon, with saeS coding for the sensor histidine kinase (SaeS) and saeR encoding the response regulator (SaeR). The saeRS system is preceded by two additional open reading frames (ORFs), saeP and saeQ, which are predicted to encode a lipoprotein (SaeP) and a membrane protein (SaeQ), respectively. Earlier, we have shown that SDS-containing subinhibitory concentrations of biocides (Perform®) and SDS alone activate sae transcription and increase cellular invasiveness in S. aureus strain Newman. The effect is associated with an amino acid exchange in the N-terminus of SaeS (L18P), specific to strain Newman.
In this work, the role of whether the two additional genes, saePQ coding for the accessory proteins SaeP and SaeQ, respectively, are involved in SDS-mediated saeRS was investigated. It could demonstrated that the lack of the SaeP protein resulted in an increased saeRS transcription without SDS stress in both SaeSL/P variants, while the SDS effect was less pronounced on sae and eap expression compared to the Newman wildtype, suggesting that the SaeP protein represses the sae system. Also, SDS-mediated inductions of sae and eap transcription along with enhanced invasion were found to be dependent on presence of the SaeSP variant in Newman wildtype. On the other hand, the study also shows that the saePQ region of the sae operon is required for fully functional two-component system saeRS under normal growth conditions, but it is not involved in SDS-mediated activation of the saeS signaling and sae-target class I gene, eap.
In the second approach, the study investigates whether SDS-induced sae expression and host cell invasion is common among S. aureus strains not carrying the (L18P) point mutation. To demonstrate this strain Newman, its isogenic saeS mutants, and various S. aureus isolates were analysed for sae, eap expression and cellular invasiveness. Among the strains tested, SDS exposure resulted only in an increase of sae transcription, Eap production and cellular invasiveness in strain Newman wild type and MRSA strain ST239-635/93R, the latter without an increase in Eap. Interestingly, the epidemic community-associated MRSA strain, USA300 LAC showed a biphasic response in sae transcription at different growth stages, which, however, was not accompanied by increased invasiveness. All other clinical isolates investigated displayed a decrease of the parameters tested. While in strain Newman the SDS effect was due to the saeSP allele, this was not the case in strain ST239-635/93R and the biphasic USA300 strains. Also, increased invasiveness of ST239-635/93R was found to be independent of Eap production. Furthermore, to investigate the global effect of SDS on sae target gene expression, strain Newman wild-type and Newman ∆sae were treated with SDS and analyzed for their transcription profiles of sae target genes using microarray assays. We could show that subinhibitory concentrations of SDS upregulate and downregulate gene expression of several signaling pathways involved in biosynthetic, metabolic pathways as well as virulence, host cell adherence, stress reponse and many hypothetical proteins.
In summary, the study sheds light on the role of the upstream region saePQ in SDS-mediated saeRS and eap expression during S. aureus SDS stress. Most importantly, the study also shows that subinhibitory SDS concentrations have pronounced strain-dependent effects on sae transcription and subsequent host cell invasion in S. aureus, with the latter likely to be mediated in some strains by other factors than the known invasin Eap and FnBP proteins. Moreover, there seems to exist more than the saeSP-mediated mechanism for SDS-induced sae transcription in clinical S. aureus isolates. These results help to further understand and clarify virulence and pathogenesis mechanisms and their regulation in S. aureus.
Staphylococcus aureus (S. aureus) is well known to express a plethora of toxins of which the pore-forming hemolysin A (α-toxin) is the best-studied cytolysin. Pore-forming toxins (PFT) permeabilize host membranes during infection thereby causing concentration-dependent effects in host cell membranes ranging from disordered ion fluxes to cytolysis. Host cells possess defense mechanisms against PFT attack, resulting in endocytosis of the breached membrane area and delivery of repair vesicles to the insulted plasma membrane as well as a concurrent release of membrane repair enzymes. Since PFTs from several pathogens have been shown to recruit membrane repair components, we here investigated whether staphylococcal α-toxin is able to induce these mechanisms in endothelial cells. We show that S. aureus α-toxin induced increase in cytosolic Ca2+ in endothelial cells, which was accompanied by p38 MAPK phosphorylation. Toxin challenge led to increased endocytosis of an extracellular fluid phase marker as well as increased externalization of LAMP1-positive membranes suggesting that peripheral lysosomes are recruited to the insulted plasma membrane. We further observed that thereby the lysosomal protein acid sphingomyelinase (ASM) was released into the cell culture medium. Thus, our results show that staphylococcal α-toxin triggers mechanisms in endothelial cells, which have been implicated in membrane repair after damage of other cell types by different toxins.