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Wolfgramm, H.

Publications and source records attributed to Wolfgramm, H..

4 recordsLinked to original sources

The S. aureus serine protease-like protein B (SplB) is a potent allergen causing eosinophilic airway inflammation in mice

Background: Asthma is associated with Staphylococcus aureus colonization. Two hypotheses were proposed to explain this phenomenon: (1) the allergic environment in asthma favors S. aureus colonization and (2) S. aureus colonization creates a pro-allergic environment. Since several S. aureus virulence factors, such as the serine protease-like protein (Spl) B, elicit a type 2 biased immune response, we asked whether the pathogen itself can cause asthma. Objective: Test the ability of recombinant SplB of S. aureus to sensitize mice and induce allergic airway inflammation (AAI). Methods: Mice were treated with repeated intratracheal inoculations of either catalytically active SplB or an inactive mutant. AAI was assessed by evaluating airway hypersensitivity, immune cell infiltration, cytokines, mucus production, fibrosis, and specific serum IgE. We compared the outcome between wild-type and gene-deficient C57BL/6J mice, including recombination-activating gene knockout mice (Rag2-/-), interleukin-33 knockout mice (Il33 -/-), and protease-activated receptor 2 knockout mice (F2rl1-/-). Results: Intratracheal exposure to SplB sensitized the mice and caused eosinophilic airway inflammation and hyperresponsiveness. The development of asthma required both the proteolytic activity of SplB and a functional adaptive immune system. The soluble protease sensor IL-33 was necessary for eosinophil tissue invasion, whereas the membrane-bound protease sensor PAR2 was not. Conclusion: The serine protease SplB of S. aureus is a potent allergen. Based on this finding we propose a third mechanism to explain the relationship between S. aureus colonization and asthma: S. aureus can release allergens, such as SplB, that sensitize individuals and lead to the development of asthma.

immunology↗

Identification of novel human cellular substrates of Staphylococcus aureus serine protease SplB

Staphylococcus aureus colonizes up to one third of the human population yet retains the capacity to cause invasive, life-threatening infections. The growing prevalence of antimicrobial resistance further complicates treatment. A major contributor to the versatility of S. aureus is its broad repertoire of virulence factors, among which secreted proteases facilitate dissemination from colonization sites into deeper tissues. Twelve extracellular proteases are secreted, with the serine protease-like protein (Spl) family (SplA-SplF), encoded within a single operon, accounting for half of them. Despite this prominence, the pathophysiological roles and substrate specificities of the Spl proteases remain poorly understood. Here, we employed a direct protein-protein interaction approach to identify novel SplB substrates in human serum. We demonstrate that SplB cleaves three intermediate filament proteins, namely desmin, vimentin, and nestin, as well as heat shock protein {beta}1 and -enolase, which have not previously been recognized as targets of S. aureus proteases. Moreover, SplB was found to cleave native IgG, a feature otherwise described only for the glutamyl endopeptidase V8. These findings expand the host protein repertoire targeted by SplB and suggest broader roles for Spl proteases in immune evasion and tissue invasion.

immunology↗

Unraveling proteomic chaos by independent component analysis - ClpX proficiency promotes the iron and oxygen limitation responses of Staphylococcus aureus and affects the intracellular bacterial behavior

In the opportunistic pathogen Staphylococcus aureus, protein homeostasis is largely mediated by the Caseinolytic protease (Clp) system. The proteases ClpXP and ClpCP are crucial for general and targeted proteolysis, which rely on the unfoldases ClpX and ClpC interacting with specific targets. However, the global effect on the proteome especially under infection-relevant stresses is not well-understood. To assess the effect of ClpX deficiency during infection-related processes, mass spectrometry-based global proteome profiles of S. aureus HG001 wild-type, an isogenic {Delta}clpX mutant, and a clpX complemented strain were recorded under control conditions as well as iron and oxygen limitation. The proteomic profiles revealed specific ClpX- and stress-dependent changes. A set of 24 robust stress-independent ClpX modulated proteins was identified and the stress-dependent influences were unraveled by independent component analysis (using the iModulon approach). These analyses revealed a role of ClpX in e.g., cell division, cell envelope homeostasis, the quinone stress response and prophage activation. Moreover, ClpX-dependent stress-specific effects were observed in the {Delta}clpX mutant, e.g. reduced induction of the heme uptake system under iron limitation and a dampened Rex-controlled oxygen limitation response. This revealed in particular that ClpX is central for heme homeostasis in S. aureus. Furthermore, in a Galleria infection model, the S. aureus {Delta}clpX mutant was attenuated compared to the wild-type HG001. This is consistent with a drastically reduced intracellular replication of the {Delta}clpX-mutant in cell culture-based infection experiments, however, high intracellular persistence of the {Delta}clpX mutant was also observed. This highlights the relevance of ClpX for bacterial fitness and virulence. ImportanceDuring infection processes, pathogens cope with host-mediated stressors. In response to those stressors, bacteria adapt their gene expression as well as their proteome profile. In the pathogen Staphylococcus aureus, protein homeostasis is mainly controlled by the Clp system. In particular, ClpX is the most conserved Clp unfoldase and is involved in overall regulation of virulence and bacterial fitness. However, the majority of ClpX targets remains elusive in S. aureus. With our proteomics approach and in depth data analysis, we provide a resource for global insight into ClpX-dependent adaptation of S. aureus physiology under infection-relevant conditions. Based on this, we uncover ClpXs role as a central player in the iron and oxygen limitation response. In addition, we demonstrate the importance of ClpX in S. aureus bacterial fitness in infection processes. However, reduced levels of ClpX lead to high intracellular persistence, which questions ClpXs suitability as a therapeutical target.

microbiology↗

Integrated genomic and proteomic analysis of the mouse-adapted Staphylococcus aureus strain JSNZ

Mouse-adapted Staphylococcus aureus strains have become increasingly relevant in infection research thanks to their ability to better recapitulate clinical infection dynamics in mouse models. However, detailed characterisations required to establish a corresponding reference strain are still lacking. The mouse-adapted CC88 strain JSNZ appears to be an ideal candidate for a reference strain, because CC88 is widespread among laboratory mice and frequently employed in mouse colonisation and infection models. Moreover, JSNZ demonstrates high genetic transformability comparable to that of commonly used laboratory strains. Here, we present a comprehensive genomic and proteomic characterisation of JSNZ. Whole genome sequencing was performed using a combination of short and long reads. Proteomic profiling was conducted under standard laboratory conditions in TSB and RPMI during exponential and stationary growth using LC-MS/MS. The updated, closed genome sequence of JSNZ was integrated into AureoWiki for user-friendly access and direct comparison to long-established reference strains. Genome data revealed a deletion in the restriction endonuclease gene hsdR, likely explaining the observed efficient transformation while retaining DNA modification capabilities. This positions JSNZ as a hub for genetic modification of other CC88 isolates. Proteomic profiling of JSNZ indicated broad similarity to common S. aureus reference strains. However, a striking exception was the novel serine protease Jep, which constituted approximately 75% of the exoproteome in stationary TSB cultures. Overall, these findings affirm JSNZ as a robust and genetically tractable model strain for murine S. aureus infection research and contribute a valuable standardised resource to enhance experimental reproducibility and cross-study consistency in the field. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=119 SRC="FIGDIR/small/674026v1_ufig1.gif" ALT="Figure 1"> View larger version (42K): org.highwire.dtl.DTLVardef@130b864org.highwire.dtl.DTLVardef@199b1f2org.highwire.dtl.DTLVardef@171b6e0org.highwire.dtl.DTLVardef@9d371f_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗