Recombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.

BACKGROUND: Clostridium difficile is a major cause of nosocomial diarrhea, with 30-day mortality reaching 30%. The cell surface comprises a paracrystalline proteinaceous S-layer encoded by the slpA gene within the cell wall protein (cwp) gene cluster. Our purpose was to understand the diversity and...

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Main Authors: Dingle, K, Didelot, X, Ansari, M, Eyre, D, Vaughan, A, Griffiths, D, Ip, C, Batty, E, Golubchik, T, Bowden, R, Jolley, K, Hood, D, Fawley, W, Walker, A, Peto, T, Wilcox, M, Crook, D
Format: Journal article
Language:English
Published: 2013
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author Dingle, K
Didelot, X
Ansari, M
Eyre, D
Vaughan, A
Griffiths, D
Ip, C
Batty, E
Golubchik, T
Bowden, R
Jolley, K
Hood, D
Fawley, W
Walker, A
Peto, T
Wilcox, M
Crook, D
author_facet Dingle, K
Didelot, X
Ansari, M
Eyre, D
Vaughan, A
Griffiths, D
Ip, C
Batty, E
Golubchik, T
Bowden, R
Jolley, K
Hood, D
Fawley, W
Walker, A
Peto, T
Wilcox, M
Crook, D
author_sort Dingle, K
collection OXFORD
description BACKGROUND: Clostridium difficile is a major cause of nosocomial diarrhea, with 30-day mortality reaching 30%. The cell surface comprises a paracrystalline proteinaceous S-layer encoded by the slpA gene within the cell wall protein (cwp) gene cluster. Our purpose was to understand the diversity and evolution of slpA and nearby genes also encoding immunodominant cell surface antigens. METHODS: Whole-genome sequences were determined for 57 C. difficile isolates representative of the population structure and different clinical phenotypes. Phylogenetic analyses were performed on their genomic region (>63 kb) spanning the cwp cluster. RESULTS: Genetic diversity across the cwp cluster peaked within slpA, cwp66 (adhesin), and secA2 (secretory translocase). These genes formed a 10-kb cassette, of which 12 divergent variants were found. Homologous recombination involving this cassette caused it to associate randomly with genotype. One cassette contained a novel insertion (length, approximately 24 kb) that resembled S-layer glycosylation gene clusters. CONCLUSIONS: Genetic exchange of S-layer cassettes parallels polysaccharide capsular switching in other species. Both cause major antigenic shifts, while the remainder of the genome is unchanged. C. difficile genotype is therefore not predictive of antigenic type. S-layer switching and immune escape could help explain temporal and geographic variation in C. difficile epidemiology and may inform genotyping and vaccination strategies.
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spelling oxford-uuid:a1e98cc2-3cc5-4f03-8422-e65a62f8930e2022-03-27T02:16:43ZRecombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:a1e98cc2-3cc5-4f03-8422-e65a62f8930eEnglishSymplectic Elements at Oxford2013Dingle, KDidelot, XAnsari, MEyre, DVaughan, AGriffiths, DIp, CBatty, EGolubchik, TBowden, RJolley, KHood, DFawley, WWalker, APeto, TWilcox, MCrook, DBACKGROUND: Clostridium difficile is a major cause of nosocomial diarrhea, with 30-day mortality reaching 30%. The cell surface comprises a paracrystalline proteinaceous S-layer encoded by the slpA gene within the cell wall protein (cwp) gene cluster. Our purpose was to understand the diversity and evolution of slpA and nearby genes also encoding immunodominant cell surface antigens. METHODS: Whole-genome sequences were determined for 57 C. difficile isolates representative of the population structure and different clinical phenotypes. Phylogenetic analyses were performed on their genomic region (>63 kb) spanning the cwp cluster. RESULTS: Genetic diversity across the cwp cluster peaked within slpA, cwp66 (adhesin), and secA2 (secretory translocase). These genes formed a 10-kb cassette, of which 12 divergent variants were found. Homologous recombination involving this cassette caused it to associate randomly with genotype. One cassette contained a novel insertion (length, approximately 24 kb) that resembled S-layer glycosylation gene clusters. CONCLUSIONS: Genetic exchange of S-layer cassettes parallels polysaccharide capsular switching in other species. Both cause major antigenic shifts, while the remainder of the genome is unchanged. C. difficile genotype is therefore not predictive of antigenic type. S-layer switching and immune escape could help explain temporal and geographic variation in C. difficile epidemiology and may inform genotyping and vaccination strategies.
spellingShingle Dingle, K
Didelot, X
Ansari, M
Eyre, D
Vaughan, A
Griffiths, D
Ip, C
Batty, E
Golubchik, T
Bowden, R
Jolley, K
Hood, D
Fawley, W
Walker, A
Peto, T
Wilcox, M
Crook, D
Recombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.
title Recombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.
title_full Recombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.
title_fullStr Recombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.
title_full_unstemmed Recombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.
title_short Recombinational switching of the Clostridium difficile S-layer and a novel glycosylation gene cluster revealed by large-scale whole-genome sequencing.
title_sort recombinational switching of the clostridium difficile s layer and a novel glycosylation gene cluster revealed by large scale whole genome sequencing
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