Literature DB >> 25825127

Bacteriophage predation promotes serovar diversification in Listeria monocytogenes.

Marcel R Eugster1, Laurent S Morax1, Vanessa J Hüls1, Simona G Huwiler1, Alexandre Leclercq2, Marc Lecuit2, Martin J Loessner1.   

Abstract

Listeria monocytogenes is a bacterial pathogen classified into distinct serovars (SVs) based on somatic and flagellar antigens. To correlate phenotype with genetic variation, we analyzed the wall teichoic acid (WTA) glycosylation genes of SV 1/2, 3 and 7 strains, which differ in decoration of the ribitol-phosphate backbone with N-acetylglucosamine (GlcNAc) and/or rhamnose. Inactivation of lmo1080 or the dTDP-l-rhamnose biosynthesis genes rmlACBD (lmo1081-1084) resulted in loss of rhamnose, whereas disruption of lmo1079 led to GlcNAc deficiency. We found that all SV 3 and 7 strains actually originate from a SV 1/2 background, as a result of small mutations in WTA rhamnosylation and/or GlcNAcylation genes. Genetic complementation of different SV 3 and 7 isolates using intact alleles fully restored a characteristic SV 1/2 WTA carbohydrate pattern, including antisera reactions and phage adsorption. Intriguingly, phage-resistant L. monocytogenes EGDe (SV 1/2a) isolates featured the same glycosylation gene mutations and were serotyped as SV 3 or 7 respectively. Again, genetic complementation restored both carbohydrate antigens and phage susceptibility. Taken together, our data demonstrate that L. monocytogenes SV 3 and 7 originate from point mutations in glycosylation genes, and we show that phage predation represents a major driving force for serovar diversification and evolution of L. monocytogenes.
© 2015 John Wiley & Sons Ltd.

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Year:  2015        PMID: 25825127     DOI: 10.1111/mmi.13009

Source DB:  PubMed          Journal:  Mol Microbiol        ISSN: 0950-382X            Impact factor:   3.501


  28 in total

1.  Three distinct glycosylation pathways are involved in the decoration of Lactococcus lactis cell wall glycopolymers.

Authors:  Ilias Theodorou; Pascal Courtin; Irina Sadovskaya; Simon Palussière; François Fenaille; Jennifer Mahony; Marie-Pierre Chapot-Chartier; Douwe van Sinderen
Journal:  J Biol Chem       Date:  2020-03-13       Impact factor: 5.157

2.  Structural and functional diversity in Listeria cell wall teichoic acids.

Authors:  Yang Shen; Samy Boulos; Eric Sumrall; Benjamin Gerber; Alicia Julian-Rodero; Marcel R Eugster; Lars Fieseler; Laura Nyström; Marc-Olivier Ebert; Martin J Loessner
Journal:  J Biol Chem       Date:  2017-09-14       Impact factor: 5.157

3.  Mutant and Recombinant Phages Selected from In Vitro Coevolution Conditions Overcome Phage-Resistant Listeria monocytogenes.

Authors:  Tracey Lee Peters; Yaxiong Song; Daniel W Bryan; Lauren K Hudson; Thomas G Denes
Journal:  Appl Environ Microbiol       Date:  2020-10-28       Impact factor: 4.792

4.  Absence of N-Acetylglucosamine Glycosylation on Listeria monocytogenes Wall Teichoic Acids Promotes Fatty Acid Tolerance by Repulsion From the Bacterial Surface.

Authors:  Rikke S S Thomasen; Patricia T Dos Santos; Eva M Sternkopf Lillebæk; Marianne N Skov; Michael Kemp; Birgitte H Kallipolitis
Journal:  Front Microbiol       Date:  2022-05-12       Impact factor: 6.064

5.  Salt-Induced Stress Stimulates a Lipoteichoic Acid-Specific Three-Component Glycosylation System in Staphylococcus aureus.

Authors:  Kelvin Kho; Timothy C Meredith
Journal:  J Bacteriol       Date:  2018-05-24       Impact factor: 3.490

6.  A Viral Immunity Chromosome in the Marine Picoeukaryote, Ostreococcus tauri.

Authors:  Sheree Yau; Claire Hemon; Evelyne Derelle; Hervé Moreau; Gwenaël Piganeau; Nigel Grimsley
Journal:  PLoS Pathog       Date:  2016-10-27       Impact factor: 6.823

7.  A functional type II-A CRISPR-Cas system from Listeria enables efficient genome editing of large non-integrating bacteriophage.

Authors:  Mario Hupfeld; Despoina Trasanidou; Livia Ramazzini; Jochen Klumpp; Martin J Loessner; Samuel Kilcher
Journal:  Nucleic Acids Res       Date:  2018-07-27       Impact factor: 16.971

8.  Glucose Decoration on Wall Teichoic Acid Is Required for Phage Adsorption and InlB-Mediated Virulence in Listeria ivanovii.

Authors:  Eric T Sumrall; Stephan R Schneider; Samy Boulos; Martin J Loessner; Yang Shen
Journal:  J Bacteriol       Date:  2021-07-22       Impact factor: 3.490

9.  Molecular Basis for Lytic Bacteriophage Resistance in Enterococci.

Authors:  Breck A Duerkop; Wenwen Huo; Pooja Bhardwaj; Kelli L Palmer; Lora V Hooper
Journal:  mBio       Date:  2016-08-30       Impact factor: 7.867

10.  Discovery of genes required for lipoteichoic acid glycosylation predicts two distinct mechanisms for wall teichoic acid glycosylation.

Authors:  Jeanine Rismondo; Matthew G Percy; Angelika Gründling
Journal:  J Biol Chem       Date:  2018-01-17       Impact factor: 5.157

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