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Wittlinger, J.-P.

Publications and source records attributed to Wittlinger, J.-P..

3 recordsLinked to original sources

Prevalent glutamyl-endopeptidases in the commensal skin microbiome have itch-relevant activity

Atopic dermatitis (AD) is frequently accompanied by pruritus, which has predominantly been attributed to skin colonization by Staphylococcus aureus, particularly through cleavage of protease-activated receptor 1 (PAR1) by the glutamyl endopeptidase (GEP) V8 protease. Whether related GEPs from other skin-associated staphylococci contribute to this process remains unclear. Here, we analyzed 273 staphylococcal isolates from skin swabs of 10 AD patients with pruritus, dominated by S. aureus and Staphylococcus epidermidis. Genome mining using a custom hidden Markov model identified 678 candidate GEPs, which were clustered and resolved into five structurally distinct protease architectures. Representative proteases (V8, Esp, SplB, Csp, and Hsp) were expressed and characterized. Esp displayed GEP activity and PAR1 tethered-ligand cleavage comparable to V8, generating noncanonical cleavage products, while Csp cleaved PAR1 with reduced but substantial efficiency. All representative proteases significantly disrupted barrier integrity in an epithelial barrier model. Analysis of isolate genomes and publicly available Staphylococcus genomes showed that V8 and Esp are highly conserved and largely species-restricted, whereas Csp is more broadly distributed across species. These findings identify Esp and Csp as functional GEP virulence factors in S. epidermidis and S. capitis, capable of activating itch signaling and compromising barrier function. Our study suggests that GEP-mediated pruritus and barrier dysfunction in AD may arise not only from pathogens like S. aureus, but also from commensals or opportunistic pathogens such as S. epidermidis and S. capitis. ImportanceStaphylococcus aureus colonization on the skin is closely associated with itch in atopic dermatitis (AD) through a secreted protease that cleaves PAR1 on sensory neurons. However, AD patients can experience pruritus without S. aureus colonization. This raises the question of whether other skin-colonizing staphylococci contribute to this process. We identify glutamyl endopeptidase homologs, including Esp from Staphylococcus epidermidis and Csp from Staphylococcus capitis, that cleave the same itch receptor and disrupt epithelial barrier integrity. These serine proteases are distributed across staphylococcal species that colonize human skin. Therefore, itch and barrier dysfunction in AD may not be restricted to S. aureus but instead arise from the proteolytic activity of multiple staphylococcal species. This functional redundancy means that other staphylococcal species can sustain GEP-driven itch and barrier dysfunction even in the absence of S. aureus, suggesting that therapeutic strategies targeting only S. aureus may overlook these alternative drivers of disease.

microbiology↗

Shewanella is a putative producer of polyunsaturated fatty acids in the gut soil of the composting earthworm Eisenia fetida

Withdrawal StatementThe authors have withdrawn this manuscript owing to a duplicate posting of manuscript number BIORXIV/2024/587473. Therefore, the authors do not wish this work to be cited as reference for the project. If you have any questions, please contact the corresponding author. The correct preprint can be found at doi.org/10.1101/2024.03.31.587473.

microbiology↗

Shewanella is a putative producer of polyunsaturated fatty acids in the gut soil of the composting earthworm Eisenia fetida

Polyunsaturated fatty acids (PUFAs) play a crucial role in aiding bacteria to adapt to extreme and stressful environments. While there is a well-established understanding of their production, accrual, and transfer within marine ecosystems, knowledge about terrestrial environments remains limited. Investigation of the intestinal microbiome of earthworms has illuminated the presence of PUFAs presumably of microbial origin, which contrasts with the surrounding soil. To comprehensively study this phenomenon, a multi-faceted approach was employed, combining fatty acid analysis with amplicon sequencing of the PfaA-KS domain of the anaerobic fatty acid synthase gene (pfa), as well as the 16S rRNA and 18S rRNA genes. This methodology was applied to scrutinize the gut microbiome of Eisenia fetida, its compost-based dietary source, and the resultant castings. This study unveiled a distinct gut soil ecosystem from input compost and output castings in fatty acid profile as well as type and abundance of organisms. 16S sequencing provided insights into the microbial composition, showing increased relative abundance of certain Pseudomonadota, including Shewanellaceae, and Planctomycetota, including Gemmataceae within the gut microbiome compared to input bulk soil compost, while Actinomycetota and Bacillota were relatively enriched compared to the casted feces. Sequencing of the PfaA-KS domain revealed ASVs belonging primarily to Shewanella. Intriguingly, the 20C PUFAs were identified only in gut-soil samples, though PfaA-KS sequence abundance was highest in output castings, indicating a unique metabolism occurring only in the gut. Overall, the results indicate that Shewanella can explain PUFA enrichment in the gut environment because of pfa gene presence detected via PfaA-KS sequence data. ImportancePrior research has demonstrated that earthworm microbiomes can potentially harbor PUFAs that are not found within their residing soil environment. Moreover, distinct indicator species have been pinpointed for various microbial genera in earthworm microbiomes. Nevertheless, none of these studies have integrated metataxonomic and fatty acid analysis to explore the origin of PUFA synthesis in any earthworm species, with the objective of identifying the specific organisms and locations responsible for this production. This study suggests that earthworms accumulate PUFAs produced from bacteria, especially Shewanella, activated through the gut ecosystem.

microbiology↗