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Updated: Jun 22, 2026

Understanding the Impact of Temperate Bacteriophages on Their Lysogens Through Transcriptomics
Published on: January 5, 2024
Molecular characterization and lytic activities of Streptococcus agalactiae bacteriophages and determination of
Anne-Sophie Domelier1, Nathalie van der Mee-Marquet, Pierre-Yves Sizaret
1Equipe d'Accueil 3854, Bactéries et Risque Maternofoetal, Institut Fédératif de Recherche 136, Agents Transmissibles et Infectiologie, UFR Médecine, Université François Rabelais de Tours, 37032 Tours Cedex, France.
Abstract:
The application of mitomycin C induction to 114 genetically diverse Streptococcus agalactiae strains generated 36 phage suspensions. On electron microscopy of the phage suspensions, it was possible to assign the phages to the Siphoviridae family, with three different morphotypes (A, B, and C). Phage genetic diversity was evaluated by a PCR-based multilocus typing method targeting key modules located in the packaging, structural, host lysis, lysogeny, replication, and transcriptional regulation clusters and in the integrase genes and by DNA digestion with EcoRI, HindIII, and ClaI. Thirty-three phages clustering in six distantly related molecular phage groups (I to VI) were identified. Each molecular group was morphotype specific except for morphotype A phages, which were found in five of the six phage groups. The various phage groups defined on the basis of molecular group and morphotype had specific lytic activities, suggesting that each recognized particular host cell targets and had particular lytic mechanisms. Comparison of the characteristics of lysogenic and propagating strains showed no difference in the serotype or clonal complex (CC) identified by multilocus sequence typing. However, all the lysogenic CC17 and CC19 strains presented catabolic losses due to a lack of catabolic decay of dl-alpha-glycerol-phosphate substrates (CC17) and of alpha-d-glucose-1-phosphate (CC19). Moreover, the phages from CC17 lysogenic strains displayed lytic replication in bacterial hosts from all S. agalactiae phylogenetic lineages other than CC23, whereas phages obtained from non-CC17 lysogenic strains lysed bacteria of similar evolutionary origin. Our findings suggest that the adaptive evolution of S. agalactiae exposed the bacteria of this species to various phage-mediated horizontal gene transfers, which may have affected the fitness of the more virulent clones.
Insights
This study characterized Streptococcus agalactiae phages, revealing genetic diversity and specific lytic activities. Phage-mediated gene transfer may influence bacterial evolution and virulence.
Area of Science:
- Microbiology
- Virology
- Bacteriology
Background:
- Streptococcus agalactiae (Group B Streptococcus) is a significant human pathogen.
- Bacteriophages (phages) are viruses that infect bacteria and play a role in bacterial evolution.
- Understanding phage diversity and host interactions is crucial for controlling bacterial infections.
Purpose of the Study:
- To characterize the genetic and morphological diversity of phages induced from Streptococcus agalactiae.
- To investigate the relationship between phage characteristics and their lytic activity.
- To explore the impact of phage-host interactions on bacterial evolution and virulence.
Main Methods:
- Mitomycin C induction of phages from 114 Streptococcus agalactiae strains.
- Electron microscopy for phage morphology classification (Siphoviridae family).
- PCR-based multilocus typing and DNA digestion (EcoRI, HindIII, ClaI) for genetic diversity assessment.
- Lytic activity assays against different S. agalactiae strains.
- Multilocus sequence typing (MLST) for bacterial clonal complex (CC) identification.
Main Results:
- 36 phage suspensions were generated, with phages assigned to the Siphoviridae family and three morphotypes (A, B, C).
- Thirty-three phages were grouped into six molecular phage groups (I-VI), showing morphotype specificity.
- Distinct phage groups exhibited specific lytic activities against particular host targets.
- Lysogenic strains showed catabolic losses, and phages from CC17 strains had broader lytic replication ranges.
Conclusions:
- Phage diversity in Streptococcus agalactiae is substantial, with distinct molecular and morphological groups.
- Specific phage-host interactions and lytic mechanisms were identified.
- Phage-mediated horizontal gene transfer likely contributes to the adaptive evolution and fitness of S. agalactiae clones.
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