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Josse, J.

Publications and source records attributed to Josse, J..

4 recordsLinked to original sources

Staphylococcal Internalization into Osteoblasts: A Partially Conserved Mechanism Across the Genus

Staphylococcus aureus, considered as a major human pathogen, is associated with severe infections such as bacteremia, endocarditis, skin and soft tissue infections, and bone and joint infections. Virulence mechanisms, such as biofilm formation and invasion/internalization of/into host cells, support the pathogenicity of S. aureus as they enable it to evade from the immune system and most antibiotic treatments. S. aureus can be internalized into non-professional phagocytic cells like fibroblasts, epithelial cells, endothelial cells and osteoblasts. The main pathway of internalization of S. aureus is FnBP-fibronectin-5{beta}1 integrin dependent. Interestingly, S. pseudintermedius, S. delphini and S. argenteus are able to invade osteoblasts, depending on the presence of FnBP-like proteins such as Staphylococcus pseudintermedius surface proteins D and L (SpsD/L) or Staphylococcus delphini surface protein Y (SdsY). However, the internalization capacity and mechanism have been poorly investigated in other staphylococci species. Here, we investigated the internalization capacity of staphylococci into osteoblasts at the genus level and attempted to correlate it with the presence of FnBP-like proteins by combining fibronectin adhesion assays, infection of osteoblasts and genome analysis. Over the 53 Staphylococcus species tested, half of them exhibited high internalization into osteoblasts. We highlighted that the "FnBP-fibronectin-5{beta}1 integrin" dependent internalization pathway of S. aureus, is well-conserved in 27 Staphylococcus species. In silico analysis identified multiple FnBP-like proteins correlating with the highly internalized species and showing diversity in their sequence organization, likely due to multiple acquisitions of such encoding genes throughout Staphylococcus evolution. AUTHOR SUMMARYStaphylococcus aureus is a pathogenic bacterium that causes severe infections including bone and joint infections. It invades bone cells, such as osteoblasts, using the bacterial surface protein FnBP, which binds to fibronectin, an extracellular compound, which subsequently binds to 5{beta}1 integrin on the surface of osteoblasts. This cross-linking enables active internalization of S. aureus by the cells and potential intracellular persistence, which are responsible for the ability to induce staphylococcal chronic infections. While four species have been studied for their internalization into osteoblasts, a comprehensive genus-level investigation remains unexplored. Therefore, we investigated the conservation of this internalization capacity among the genus Staphylococcus, including a significant number of species of animal origin. Approximately half of the genus is capable of invading osteoblasts at varying levels via 5{beta}1 integrin. Additionally, homologous proteins to FnBP were identified in most highly internalized species, suggesting a similar pathway of cell internalization to that of S. aureus. Genomic analysis reveals these proteins were acquired multiple times during evolution, suggesting they provide an advantage for host infection. In the context of One Health approach and the increasing number of animal pathogens causing human infections, understanding staphylococcal pathogenicity will help anticipate the emergence of new infectious diseases.

microbiology↗

Staphylococcus aureus can use an alternative pathway to be internalized by osteoblasts in absence of β1 integrins

Staphylococcus aureus main internalization mechanism in osteoblasts relies on a tripartite interaction between bacterial fibronectin-binding proteins, extracellular matrix soluble fibronectin, and osteoblasts {beta}1 integrins. Caveolins, and particularly caveolin-1, have shown to limit the plasma membrane microdomain mobility, and consequently reduce the uptake of S. aureus in keratinocytes. In this study, we aimed to deepen our understanding of the molecular mechanisms underlying S. aureus internalization in osteoblasts. Mechanistically, S. aureus internalization requires endosomal recycling {beta}1 integrins as well as downstream effectors such as Src, Rac1, and PAK1. Surprisingly, in {beta}1 integrin deficient osteoblasts, S. aureus internalization is restored when Caveolin-1 is absent and requires v{beta}3/v{beta}5 integrins as backup fibronectin receptors. Altogether, our data support that {beta}1 integrins regulate the level of detergent-resistant membrane at the plasma membrane in a an endosomal and Caveolin-1 dependent manner. SUMMARY STATEMENTStaphylococcus aureus can be internalized by osteoblasts via a different mechanism than the main 5{beta}1/fibronectin/fibronectin-binding protein that likely involves v{beta}3 or v{beta}5 integrin.

cell biology↗

Analysis of in-patient evolution of Escherichia coli reveals potential links to relapse of bone and joint infections

Bone and joint infections (BJIs) are difficult to treat and affect a growing number of patients, in which relapses are observed in 10-20% of the case. These relapses, which call for prolonged antibiotic treatment and increase the risk of emergence of resistance, may originate from ill understood adaptation of the pathogen to the host. Here, we studied three pairs of Escherichia coli strains corresponding to three cases of BJIs and their relapse to better understand in-patient adaptation. Whole genome comparison presented evidence for positive selection with prevalence of non-synonymous and loss of function mutations. Phenotypic characterization showed that biofilm formation capacity was not modified, contrary to what is usually described in such relapse cases. Although virulence was not modified, we identified the loss of two virulence factors (namely an AFA afimbrial adhesin and a YadA-like adhesin) contributing to immune system evasion in one of the studied relapse strain. Other selected strategies likely helped the relapse strains to outcompete competitors through global growth optimization and colicin production. This work highlights the variety of strategies allowing in-patient adaptation in BJIs.

microbiology↗

YAP promotes cell-autonomous immune responses to tackle intracellular Staphylococcus aureus in vitro

Transcriptional cofactors YAP/TAZ have recently been found to support autophagy and inflammation, which are part of cell autonomous immunity and are critical in antibacterial defense. Here, we studied the role of YAP against Staphylococcus aureus using CRISPR/Cas9-mutated HEK293 cells and a primary cell-based organoid model. We found that S. aureus infection increases YAP transcriptional activity, which is required to reduce intracellular S. aureus replication. A 770-gene targeted transcriptomic analysis revealed that YAP upregulates genes involved in autophagy/lysosome and inflammation pathways in both infected and uninfected conditions. The YAP/TEAD transcriptional activity promotes autophagic flux and lysosomal acidification, which are important for defense against intracellular S. aureus. Furthermore, the staphylococcal toxin C3 exoenzyme EDIN-B was found effective in preventing YAP-mediated cell-autonomous immune response. This study provides new insights on the anti-S. aureus activity of YAP, which could be conserved for defense against other intracellular bacteria. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=177 SRC="FIGDIR/small/492111v1_ufig1.gif" ALT="Figure 1"> View larger version (47K): org.highwire.dtl.DTLVardef@6158f1org.highwire.dtl.DTLVardef@1164aedorg.highwire.dtl.DTLVardef@911558org.highwire.dtl.DTLVardef@11044b2_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗