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Published on: December 12, 2017
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
Abstract:
Polynucleotide phosphorylase (PNPase), encoded by the pnp gene, is known to degrade mRNA, mediating post-transcriptional regulation and may affect cellular functions. The role of PNPase is pleiotropic. As orthologs of the two major ribonucleases (RNase E and RNase II) of Escherichia coli are missing in the Campylobacter jejuni genome, in the current study the focus has been on the C. jejuni ortholog of PNPase. The effect of PNPase mutation on C. jejuni phenotypes and proteome was investigated. The inactivation of the pnp gene reduced significantly the ability of C. jejuni to adhere and to invade Ht-29 cells. Moreover, the pnp mutant strain exhibited a decrease in C. jejuni swimming ability and chick colonization. To explain effects of PNPase on C. jejuni 81-176 phenotype, the proteome of the pnp mutant and parental strains were compared. Overall, little variation in protein production was observed. Despite the predicted role of PNPase in mRNA regulation, the pnp mutation did not induce profound proteomic changes suggesting that other ribonucleases in C. jejuni might ensure this biological function in the absence of PNPase. Nevertheless, synthesis of proteins which are involved in virulence (LuxS, PEB3), motility (N-acetylneuraminic acid synthetase), stress-response (KatA, DnaK, Hsp90), and translation system (EF-Tu, EF-G) were modified in the pnp mutant strain suggesting a more specific role of PNPase in C. jejuni. In conclusion, PNPase deficiency induces limited but important consequences on C. jejuni biology that could explain swimming limitation, chick colonization delay, and the decrease of cell adhesion/invasion ability.
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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