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The CovR regulatory network drives the evolution of Group B Streptococcus virulence.
Mazzuoli, Maria-Vittoria; Daunesse, Maëlle; Varet, Hugo; Rosinski-Chupin, Isabelle; Legendre, Rachel; Sismeiro, Odile; Gominet, Myriam; Kaminski, Pierre Alexandre; Glaser, Philippe; Chica, Claudia; Trieu-Cuot, Patrick; Firon, Arnaud.
Affiliation
  • Mazzuoli MV; Unité Biologie des Bactéries Pathogènes à Gram-positif, CNRS UMR2001 Microbiologie Intégrative et Moléculaire, Institut Pasteur, Paris, France.
  • Daunesse M; Sorbonne Paris Cité, Université de Paris, Paris, France.
  • Varet H; Hub de Bioinformatique et Biostatistique-Département Biologie Computationnelle, Institut Pasteur, Paris, France.
  • Rosinski-Chupin I; Hub de Bioinformatique et Biostatistique-Département Biologie Computationnelle, Institut Pasteur, Paris, France.
  • Legendre R; Plate-forme Technologique Biomics-Centre de Ressources et Recherches Technologiques (C2RT), Institut Pasteur, Paris, France.
  • Sismeiro O; Unité Écologie et Évolution de la Résistance aux Antibiotiques, CNRS UMR3525, Institut Pasteur, Paris, France.
  • Gominet M; Hub de Bioinformatique et Biostatistique-Département Biologie Computationnelle, Institut Pasteur, Paris, France.
  • Kaminski PA; Plate-forme Technologique Biomics-Centre de Ressources et Recherches Technologiques (C2RT), Institut Pasteur, Paris, France.
  • Glaser P; Unité Biologie des Bactéries Pathogènes à Gram-positif, CNRS UMR2001 Microbiologie Intégrative et Moléculaire, Institut Pasteur, Paris, France.
  • Chica C; Plate-forme Technologique Biomics-Centre de Ressources et Recherches Technologiques (C2RT), Institut Pasteur, Paris, France.
  • Trieu-Cuot P; Unité Biologie des Bactéries Pathogènes à Gram-positif, CNRS UMR2001 Microbiologie Intégrative et Moléculaire, Institut Pasteur, Paris, France.
  • Firon A; Unité Biologie des Bactéries Pathogènes à Gram-positif, CNRS UMR2001 Microbiologie Intégrative et Moléculaire, Institut Pasteur, Paris, France.
PLoS Genet ; 17(9): e1009761, 2021 09.
Article in En | MEDLINE | ID: mdl-34491998
Virulence of the neonatal pathogen Group B Streptococcus is under the control of the master regulator CovR. Inactivation of CovR is associated with large-scale transcriptome remodeling and impairs almost every step of the interaction between the pathogen and the host. However, transcriptome analyses suggested a plasticity of the CovR signaling pathway in clinical isolates leading to phenotypic heterogeneity in the bacterial population. In this study, we characterized the CovR regulatory network in a strain representative of the CC-17 hypervirulent lineage responsible of the majority of neonatal meningitis. Transcriptome and genome-wide binding analysis reveal the architecture of the CovR network characterized by the direct repression of a large array of virulence-associated genes and the extent of co-regulation at specific loci. Comparative functional analysis of the signaling network links strain-specificities to the regulation of the pan-genome, including the two specific hypervirulent adhesins and horizontally acquired genes, to mutations in CovR-regulated promoters, and to variability in CovR activation by phosphorylation. This regulatory adaptation occurs at the level of genes, promoters, and of CovR itself, and allows to globally reshape the expression of virulence genes. Overall, our results reveal the direct, coordinated, and strain-specific regulation of virulence genes by the master regulator CovR and suggest that the intra-species evolution of the signaling network is as important as the expression of specific virulence factors in the emergence of clone associated with specific diseases.
Subject(s)

Full text: 1 Database: MEDLINE Main subject: Streptococcus agalactiae / Bacterial Proteins / Virulence / Virulence Factors / Gene Regulatory Networks Limits: Humans Language: En Journal: PLoS Genet Journal subject: GENETICA Year: 2021 Type: Article Affiliation country: France

Full text: 1 Database: MEDLINE Main subject: Streptococcus agalactiae / Bacterial Proteins / Virulence / Virulence Factors / Gene Regulatory Networks Limits: Humans Language: En Journal: PLoS Genet Journal subject: GENETICA Year: 2021 Type: Article Affiliation country: France