Actin Cross-Linking Effector Domain of the Vibrio vulnificus F-Type MARTX Toxin Dominates Disease Progression During

Patrick J Woida1, Giordan Kitts2, Stephanie Shee1

  • 1Department of Microbiology-Immunology, Northwestern University Feinberg School of Medicine, Chicago, Illinois, USA.

Insights

The actin cross-linking domain (ACD) of Vibrio vulnificus MARTX toxin drives disease and bacterial spread during intestinal infections. While other effectors modify immune responses, ACD is the main factor causing severe illness.

Area of Science:

  • Microbiology
  • Pathogen-Host Interactions
  • Molecular Biology

Background:

  • Vibrio vulnificus is a dangerous pathogen causing severe human illness.
  • The V. vulnificus multifunctional-autoprocessing repeats-in-toxin (MARTX) is crucial for virulence, delivering various effector domains.
  • The specific effectors delivered by MARTX vary, influencing its disease mechanism.

Purpose of the Study:

  • To investigate the role of the actin cross-linking domain (ACD) delivered by F-type MARTX toxin in V. vulnificus pathogenesis.
  • To understand how ACD and other MARTX effectors, like Ras/Rap1-specific endopeptidase (RRSP), modulate host cell gene expression and disease progression.

Main Methods:

  • Utilized a V. vulnificus strain expressing F-type MARTX toxin with ACD and other effectors.
  • Assessed virulence and bacterial dissemination following intragastric infection in a mouse model.
  • Analyzed gene transcription changes in cultured intestinal epithelial cells (IECs) and infected mouse intestinal tissue.

Main Results:

  • ACD was identified as the primary driver of virulence and dissemination to distal organs after infection.
  • ACD activated intermediate early response genes in IECs, but RRSP partially suppressed these.
  • In infected mice, ACD strongly induced genes related to tissue damage response, overshadowing effects of RRSP and other effectors.

Conclusions:

  • ACD is the dominant effector in V. vulnificus-mediated intestinal disease, driving virulence and dissemination.
  • While other MARTX effectors can remodel innate immune responses, ACD's role in tissue damage response is paramount.
  • Understanding effector-specific roles is key to deciphering V. vulnificus pathogenesis.

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