原噬菌体
生物
水平基因转移
基因
转导(生物物理学)
适应(眼睛)
遗传学
流动遗传元素
人口
机制(生物学)
免疫系统
细菌
信号转导
细胞生物学
溶原循环
基因组
噬菌体
微生物学
遗传筛选
细菌遗传学
基因表达调控
致病菌
计算生物学
防御机制
致病岛
基因转移
DNA
病菌
作者
Xu Kuang,Jamie Gorzynski,Marie Touchon,Andrey Shkoporov,Eduardo P. C. Rocha,J. Ross Fitzgerald,J. Paul Chen,Jakob T. Rostøl,José R. Penadés
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-01-23
卷期号:12 (4): eadx5749-eadx5749
被引量:1
标识
DOI:10.1126/sciadv.adx5749
摘要
To counter challenges from bacteriophages (phages), bacteria use defense mechanisms that can reside on mobile genetic elements or within chromosomes. These immune systems are easily gained and lost, allowing adaptation to threats. However, the mechanism of mobilization of chromosomally encoded defense genes remains poorly understood. Here, we show that phage- and phage-inducible chromosomal island (PICI)-mediated lateral transduction (LT), a highly efficient horizontal gene transfer mechanism, facilitates the transfer of these defense genes between bacteria. Using several bacterial models, we demonstrate that defense systems are often positioned near phage or PICI attachment sites, allowing them to exploit LT for their mobility. In addition, LT diversifies defense genes carried by prophages and PICIs, driving immune system evolution and turnover. These processes provide phage resistance to new bacterial hosts and profoundly affect population genomics. Our findings reveal LT as a crucial mechanism shaping bacterial evolution and influencing the trajectory of pathogenic clones in nature.
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