Polynucleotide phosphorylase has an impact on cell biology of Campylobacter jejuni

Nabila Haddad1, Odile Tresse, Katell Rivoal

  • 1LUNAM Université, Oniris, University of Nantes Nantes, France. nabila.haddad@oniris-nantes.fr

Insights

Polynucleotide phosphorylase (PNPase) deficiency in Campylobacter jejuni impacts bacterial adherence, invasion, motility, and colonization. Despite limited proteomic changes, PNPase affects key virulence and stress-response proteins.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Bacterial Pathogenesis

Background:

  • Polynucleotide phosphorylase (PNPase) is crucial for post-transcriptional regulation via mRNA degradation.
  • Campylobacter jejuni lacks homologs of major bacterial ribonucleases RNase E and RNase II, highlighting PNPase's potential importance.
  • The pleiotropic roles of PNPase necessitate investigation in C. jejuni.

Purpose of the Study:

  • To investigate the effect of PNPase mutation on Campylobacter jejuni phenotypes.
  • To analyze the proteome of a pnp mutant strain compared to the wild-type.
  • To elucidate the specific role of PNPase in C. jejuni virulence and cellular functions.

Main Methods:

  • Gene inactivation of pnp in C. jejuni 81-176.
  • Phenotypic analysis including cell adhesion, invasion assays (Ht-29 cells), motility tests, and chick colonization.
  • Proteomic comparison of the pnp mutant and parental strains using mass spectrometry.

Main Results:

  • pnp gene inactivation significantly reduced C. jejuni adherence and invasion capabilities.
  • The pnp mutant exhibited decreased swimming motility and delayed chick colonization.
  • Proteomic analysis revealed minor overall protein production changes, but significant alterations in proteins related to virulence, motility, stress response, and translation.

Conclusions:

  • PNPase deficiency in C. jejuni leads to significant, albeit specific, phenotypic consequences.
  • While other ribonucleases may compensate for mRNA degradation, PNPase plays a targeted role in regulating key C. jejuni functions.
  • PNPase is essential for optimal C. jejuni motility, colonization, and host cell interaction, impacting virulence potential.

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