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Kashimoto, T.

Publications and source records attributed to Kashimoto, T..

2 recordsLinked to original sources

The GspCD-dependent type II secretion system drives necrotizing soft tissue infection by Aeromonas hydrophila

Necrotizing soft tissue infections (NSTIs) are fulminant bacterial diseases characterized by rapid tissue destruction, systemic deterioration, and high mortality. Aeromonas hydrophila is an important causative agent of NSTIs, but the system-level bacterial mechanisms that coordinate tissue destruction, in vivo expansion, dissemination, and host lethality remain incompletely understood. Here, we investigated the contribution of the GspCD-dependent type II secretion system (T2SS) to A. hydrophila pathogenesis using transposon mutants, extracellular protein analyses, and a mouse NSTI model. Mutants carrying transposon insertions in gspD and gspC showed defective secretion of a FLAG-tagged truncated AerA construct and markedly reduced hemolytic activity in culture supernatants. Comparative analysis of extracellular proteins further showed that disruption of gspC altered the extracellular protein landscape, with reduced abundance of multiple known or predicted virulence-associated factors, including AerA, Ahh, lipase, and metalloprotease. In the mouse NSTI model, both mutants exhibited attenuated virulence, including reduced serum markers of tissue injury, less severe histopathological damage, impaired in vivo expansion and dissemination, and decreased lethality. These defects were more pronounced in the gspC mutant than in the gspD mutant. Together, these findings show that the GspCD-dependent T2SS functions as a coordinated extracellular secretion system that drives tissue destruction, in vivo expansion, dissemination, and lethal outcome during A. hydrophila NSTI. IMPORTANCENecrotizing soft tissue infections (NSTIs) are rapidly progressive, life-threatening bacterial infections, and Aeromonas hydrophila is an important causative agent. Here, we show that the GspCD-dependent type II secretion system (T2SS) drives A. hydrophila virulence in a murine NSTI model. Transposon mutants in gspC or gspD exhibited impaired extracellular protein secretion, reduced hemolytic activity, attenuated tissue damage, decreased bacterial proliferation and dissemination, and markedly reduced lethality. Comparative analysis further indicated that T2SS disruption alters the extracellular virulence landscape rather than affecting a single toxin alone. These findings provide in vivo evidence that coordinated T2SS-dependent secretion is a central determinant of severe A. hydrophila soft tissue infection.

microbiology↗

Phenotypic Characterization of Signature-Tagged Mutants Identifies Physiological Determinants of Vibrio vulnificus Fitness

Vibrio vulnificus is an opportunistic marine pathogen that causes severe wound-associated and systemic infections. Following entry into the host, the bacterium must rapidly adapt to host-associated stresses that differ substantially from those encountered in aquatic environments. However, the physiological functions supporting bacterial fitness during infection remain incompletely understood. Previously, we applied signature-tagged mutagenesis (STM) to identify genes required for V. vulnificus survival during host infection, revealing numerous loci that did not correspond to classical toxin-encoding genes. In the present study, we extended this genome-wide screen by linking STM-identified mutations to observable fitness-related phenotypes. Functional annotation revealed enrichment of genes associated with chemotaxis, flagellar motility, regulation, metabolism, and poorly characterized functions. Phenotypic analyses showed that many STM-derived mutants exhibited defects in swimming motility and altered colony surface properties. Bioluminescence imaging further revealed distinct patterns of impaired persistence and dissemination within host tissues, while several mutants displayed increased susceptibility to phagocytic stress in an HL-60-derived neutrophil model. Notably, some regulatory mutants affecting global signaling pathways exhibited impaired tissue dissemination despite retaining resistance to phagocytic stress, indicating the presence of fitness determinants that operate independently of classical surface-associated or cytotoxic traits. Together, these findings demonstrate that V. vulnificus fitness during infection depends on diverse physiological pathways beyond classical virulence factors, highlighting the value of phenotype-centered analyses for understanding bacterial adaptation in host-associated environments. ImportanceVibrio vulnificus causes rapidly progressive wound infections and septicemia, yet the bacterial functions that support fitness within host environments remain incompletely defined. While substantial effort has focused on canonical virulence factors and regulation, increasing evidence suggests that successful infection also depends on broader physiological adaptation. In this study, we link signature-tagged mutagenesis with systematic phenotypic analyses to define physiological determinants of V. vulnificus fitness during host-associated infection. Our results demonstrate that genes involved in motility, regulatory signaling, metabolism, and stress tolerance collectively shape bacterial persistence and dissemination in host tissues. Notably, we identify regulatory and metabolic determinants that influence fitness independently of classical surface-associated or cytotoxic traits, highlighting noncanonical pathways that contribute to pathogenic success. By integrating genome-wide screening with phenotype-centered analyses, this work advances understanding of how physiological adaptation underpins V. vulnificus infection and provides a framework for studying bacterial fitness alongside established concepts of bacterial virulence.

microbiology↗