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Mas Fiol, G.

Publications and source records attributed to Mas Fiol, G..

2 recordsLinked to original sources

Yersinia pestis lipoprotein SlyB promotes plague pathogenesis via envelope stress tolerance

Yersinia pestis, the etiological agent of plague, persists in an enzootic cycle involving mammals and fleas, requiring constant outer membrane (OM) adaptation to disparate host environments. One such pathway involves the glycine zipper 2TM domain-containing protein SlyB, a central component of the OM stress response and PhoPQ virulence pathway. While the OM is critical for virulence, the role of the OM lipoprotein SlyB in Y. pestis ecology and pathogenesis remains unknown. We show by phylogenetic analyses that slyB paralogs expanded in environmental bacteria, whereas the canonical slyB gene was under negative selective pressure during Y. pestis speciation from Yersinia pseudotuberculosis. Using rodent and flea infection models recapitulating Y. pestis natural history, we demonstrate that SlyB is specifically required to resist the mammalian immune system at 37{degrees}C, including neutrophil-mediated antimicrobial activity during lymph node colonization, but is dispensable in septicemic plague in rodents. Strikingly, SlyB is not required for flea colonization and resistance to the antimicrobial-peptide-based immunity of arthropods at lower temperatures. SlyB-dependent OM stress tolerance reveals a mechanism by which Y. pestis establishes bubonic plague, in line with its critical lipopolysaccharide structural switch. Our findings identify SlyB as an evolutionarily fine-tuned component of the Y. pestis envelope that mediates immune escape upon infection of mammalian hosts through maintenance of structural integrity.

microbiology↗

Global evolutionary patterns of Yersinia pestis and its spread into Africa

The zoonotic pathogen Yersinia pestis, the etiologic agent of plague, has caused three major pandemics and diversified in different lineages currently established in endemic areas worldwide1-3. However, some regions like continental Africa have been poorly covered within the global diversity and epidemiological history of this pathogen2,4-6. Here, we report the whole-genome sequences of 1,124 Y. pestis isolates collected from endemic areas worldwide over 116 years, nearly doubling the available genomic data for the species. By integrating population genomics and historical research, we retrace the introduction of multiple Y. pestis lineages into continental Africa, revealing the diversity of the 1.ANT lineage, its historical emergence and its spread to and within Africa since the late 17th century. We identify key mechanisms of genome evolution, including signatures of adaptive evolution present in virulence and biofilm-related genes such as RovA, a master virulence regulator, which likely play a role in the pathogens adaptation and endemic persistence. Additionally, our findings reveal an increased trajectory of genome degradation and expansion of IS elements in different lineages. This trend appears especially pronounced in 1.ANT genomes, promoting the remarkable genomic variation within this lineage. Taken together, our findings shed light on the introduction and evolutionary history of plague in Africa and provide a comprehensive framework for understanding the global diversity and genome evolution of Y. pestis, revealing potential factors contributing to its long-term adaptation in endemic areas.

microbiology↗