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Gene content, phage cycle regulation model and prophage inactivation disclosed by prophage genomics in the Helicobacter pylori Genome Project

  • HpGP Research Network
    ,
  • Filipa F. Vale(corresponding author)(Author)
    ,
  • Richard J. Roberts(Author)
    ,
  • Ichizo Kobayashi(Author)
    ,
  • M. Constanza Camargo(Author)
    ,
  • Charles S. Rabkin(Author)
*Corresponding author for this work
  • Universidade de Lisboa
    ,
  • Universidade de Lisboa
    ,
  • New England Biolabs
    ,
  • University of Tokyo
    ,
  • University of Tokyo
    ,
  • Hosei University
Research Output:
Contribution to journal
Article
Peer-review

Open access

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Article number

2379440

Journal (Volume, Issue Number)

Gut Microbes (Volume 16, Issue 1)

Publication milestones

  • Published - 2024

Publication status

Published - 2024

ISSN

1949-0976

Publication IDs

  • Scopus: 85201212383
  • PubMed: 39132840

Abstract

Prophages can have major clinical implications through their ability to change pathogenic bacterial traits. There is limited understanding of the prophage role in ecological, evolutionary, adaptive processes and pathogenicity of Helicobacter pylori, a widespread bacterium causally associated with gastric cancer. Inferring the exact prophage genomic location and completeness requires complete genomes. The international Helicobacter pylori Genome Project (HpGP) dataset comprises 1011 H. pylori complete clinical genomes enriched with epigenetic data. We thoroughly evaluated the H. pylori prophage genomic content in the HpGP dataset. We investigated population evolutionary dynamics through phylogenetic and pangenome analyses. Additionally, we identified genome rearrangements and assessed the impact of prophage presence on bacterial gene disruption and methylome. We found that 29.5% (298) of the HpGP genomes contain prophages, of which only 32.2% (96) were complete, minimizing the burden of prophage carriage. The prevalence of H. pylori prophage sequences was variable by geography and ancestry, but not by disease status of the human host. Prophage insertion occasionally results in gene disruption that can change the global bacterial epigenome. Gene function prediction allowed the development of the first model for lysogenic-lytic cycle regulation in H. pylori. We have disclosed new prophage inactivation mechanisms that appear to occur by genome rearrangement, merger with other mobile elements, and pseudogene accumulation. Our analysis provides a comprehensive framework for H. pylori prophage biological and genomics, offering insights into lysogeny regulation and bacterial adaptation to prophages.

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