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Nguyen, V.-S.

Publications and source records attributed to Nguyen, V.-S..

2 recordsLinked to original sources

Stress-induced Membrane Insertion at the β-Barrel Assembly Machinery Complex Regulates BepA Metalloprotease Activity

Proteases must be tightly regulated to prevent uncontrolled degradation, yet the mechanisms ensuring such control remain poorly understood. Members of the widespread M48 metalloprotease family are kept inactive by an autoinhibitory plug that blocks catalytic water activation, but how this plug is released was unknown. Here, using genetic, biochemical and cryo-EM approaches, we discover the activation mechanism of BepA, a quality-control protease that preserves outer membrane integrity by surveilling the {beta}-barrel assembly machinery (BAM) in Gram-negative bacteria. Our cryo-EM analysis of BepA engaged with a stalled BAM-substrate assembly complex revealed that a flexible, unstructured 6-lid covering the active site in the latent protein functions as a molecular harpoon, inserting into the outer membrane when a substrate stalls at BAM and thereby docking BepA at the complex. This membrane anchoring promotes displacement of the autoinhibitory plug and unlocks protease activity precisely where and when it is needed. Thus, a dual enzyme activation mechanism is coupled to membrane association under stress, ensuring that BepA remains inactive until properly localized. Our findings reveal how membranes themselves can license protease activation, a principle that may extend beyond M48 metalloproteases.

microbiology↗

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↗