Pseudomonas aeruginosa cleaves the decoding center of Caenorhabditis elegans ribosomes

Alejandro Vasquez-Rifo1, Emiliano P Ricci2, Victor Ambros1

  • 1Program in Molecular Medicine, University of Massachusetts Medical School, Worcester, Massachusetts, United States of America.

Plos Biology
|December 1, 2020
PubMed

Insights

Pseudomonas aeruginosa infection causes ribosome degradation in C. elegans by cleaving 26S ribosomal RNA (rRNA) at helix 69 (H69). This quorum sensing-dependent mechanism impairs host translation and blocks defense responses.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Pseudomonas aeruginosa is a pathogen that inhibits host protein synthesis.
  • Exotoxin A is a known effector for translational inhibition in insects and mammals.
  • Mechanisms of P. aeruginosa-induced translational inhibition in Caenorhabditis elegans are not fully understood.

Purpose of the Study:

  • To elucidate the precise pathways and mechanisms of translational inhibition by P. aeruginosa in C. elegans.
  • To investigate the role of ribosomal RNA cleavage in P. aeruginosa pathogenesis.
  • To identify host defense pathways that counteract P. aeruginosa-induced translational inhibition.

Main Methods:

  • Exposure of C. elegans to P. aeruginosa PA14.
  • Analysis of ribosome integrity and cleavage using genetic and genomic approaches.
  • Investigation of host defense pathways (pmk-1, fshr-1, zip-2) involvement.

Main Results:

  • P. aeruginosa PA14 exposure leads to rapid loss of intact ribosomes and accumulation of 26S rRNA helix 69 (H69) cleaved ribosomes in C. elegans.
  • H69 cleavage is quorum sensing (QS)-dependent and independent of exotoxin A.
  • H69 cleavage is antagonized by pmk-1, fshr-1, and zip-2 host defense pathways and activates the zip-2 pathway.

Conclusions:

  • P. aeruginosa utilizes a virulence mechanism involving ribosome degradation and H69 cleavage of host ribosomes.
  • This mechanism impairs host translation and blocks antibacterial responses in C. elegans.
  • The findings reveal a novel bacterial strategy for subverting host defenses.