Nitric oxide promotes rapid development of motility to accelerate biofilm dispersal in <i><i>Vibrio cholerae</i></i>.

Esteves, Nathaniel C; Tao, Ran; Pu, Qinqin; Banerjee, Arkaprabha; Mathijssen, Arnold J T M; Zhu, Jun · Proc Natl Acad Sci U S A · 2025

basic_science · Level V

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Abstract

Bacterial biofilms are resilient multicellular communities that underlie persistent infections and environmental survival. Dispersal from biofilms is a pivotal event for transmission and pathogenesis, yet the host signals and bacterial mechanisms orchestrating this transition remain poorly understood. Here, we show that nitric oxide (NO), a ubiquitous host-derived signaling molecule, acts as a rapid trigger for biofilm dispersal in <i><i>Vibrio cholerae</i></i>, a highly motile gram-negative bacterium and the etiologic agent of cholera, by promoting the development of motility. NO exposure induces broad upregulation of flagellar biosynthesis genes, increases flagellin production, and reduces intracellular cyclic-di-GMP levels, thereby priming aflagellated biofilm-associated cells for active swimming and dispersion. Using single-cell imaging in custom microfluidic devices, we directly visualize NO-stimulated biofilm detachment and development of robust swimming motility within minutes. In vivo, biofilm-derived <i>V. cholerae</i> colonize more efficiently in NO-rich environments, and NO produced by epithelial cells enhances bacterial detachment from epithelial surfaces. Our findings reveal a host-pathogen interface in which NO serves as a morphogenetic cue, orchestrating the rapid transition from sessility to motility.

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