Phage-ICE tandems facilitate bacterial adaptation and antimicrobial resistance spread

Phages and integrative and conjugative elements (ICEs) drive bacterial evolution, but how their interplay shapes bacterial adaptation and antimicrobial resistance (AMR) dissemination remains unclear. Here, we characterize phage-ICE tandems formed by site-specific accretion of phages and ICEs into cotransferable units. In Streptococcus , phage-encoded integrases (IntIE Phage ) drive stress-inducible excision and circularization, after which ICE machinery mediates conduction of the tandem. When excision is impaired, phage and phage-ICE fragments disseminate by transformation and integrate via RecA-dependent homologous recombination (HR), providing a fail-safe route. This pathway enables cotransfer of flanking chromosomal DNA, generating length-variable integrations that remodel transcriptional programs and increase oxidative stress tolerance. A global screen identified 612 phage-ICE tandems across seven phyla and 135 species, including multidrug-resistant pathogens, with lineage-specific repertoires of AMR, virulence, and metabolic genes. Rather than a hybrid element, these structures represent functional interplay where prophages exploit ICE conjugation while facilitating mobilization of the composite region. By coupling excision, transfer, and recombination, phage-ICEs shape adaptation and accelerate AMR spread.

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Publication Details

Journal
Science Advances
Published
2026-10-09
DOI
https://doi.org/10.1126/sciadv.aed3416
Primary Topic
Bacteriophages and microbial interactions
Type
article
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article

Phage-ICE tandems facilitate bacterial adaptation and antimicrobial resistance spread

Xingyang Dai, Xinming Pan, Jinhu Huang, Shengyong Mao et al.
Science Advances
Bacteriophages and microbial interactions
article

Phage-ICE tandems facilitate bacterial adaptation and antimicrobial resistance spread

Xingyang Dai, Xinming Pan, Jinhu Huang, Shengyong Mao, Jinxin Liu, Liping Wang, Xinyan Wang, Jiale Ma, Pengchao Zhan, Wenbin Zhao, Zhenmiao Li, Jiaqi Zhao, Xiaoli Shi
article en

Abstract

Phages and integrative and conjugative elements (ICEs) drive bacterial evolution, but how their interplay shapes bacterial adaptation and antimicrobial resistance (AMR) dissemination remains unclear. Here, we characterize phage-ICE tandems formed by site-specific accretion of phages and ICEs into cotransferable units. In Streptococcus , phage-encoded integrases (IntIE Phage ) drive stress-inducible excision and circularization, after which ICE machinery mediates conduction of the tandem. When excision is impaired, phage and phage-ICE fragments disseminate by transformation and integrate via RecA-dependent homologous recombination (HR), providing a fail-safe route. This pathway enables cotransfer of flanking chromosomal DNA, generating length-variable integrations that remodel transcriptional programs and increase oxidative stress tolerance. A global screen identified 612 phage-ICE tandems across seven phyla and 135 species, including multidrug-resistant pathogens, with lineage-specific repertoires of AMR, virulence, and metabolic genes. Rather than a hybrid element, these structures represent functional interplay where prophages exploit ICE conjugation while facilitating mobilization of the composite region. By coupling excision, transfer, and recombination, phage-ICEs shape adaptation and accelerate AMR spread.

Science AdvancesVol. 12(41)
Nanjing Agricultural University (CN), 81th Hospital of PLA (CN), National Center for International Research on Animal Gut Nutrition (CN)
Openalex Percentile: Top 16%
Bacteriophages and microbial interactions
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