Natural transformation drives large-scale genome mosaicism in human gut bifidobacteria.

IF 10.2 1区 环境科学与生态学 Q1 ECOLOGY
Yohei Watanabe, Kento Orihara, Naoki Tsukuda, Taeko Hara, Takahiro Matsuki
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Abstract

Although horizontal gene transfer drives bacterial diversification, its contribution to chromosome-scale variation in human gut commensals remains unclear. This study demonstrated that human-associated bifidobacteria undergo extensive chromosomal transfer through natural transformation. Comparative genomics of coexisting Bifidobacterium pseudocatenulatum isolates from a single individual revealed extensive recombination signatures between the lineages. We experimentally reproduced this recombination by co-culturing strains, resulting in the transfer of multiple chromosomal regions and generation of mosaic genomes. Individual recombination tracts reached up to 247 kb per site, with cumulative replacements accounting for up to 28.9% of the recipient chromosome. These transfers occurred with heat-killed donors or purified DNA and were abolished by DNase, thereby identifying natural transformation as the underlying mechanism. Furthermore, we observed that environmental factors strongly influenced transformation frequency, suggesting that gut environmental conditions play a role regulating this process. Using natural transformation, we established a simple markerless genome-editing method that enables efficient gene deletions. Deletions of the Tad pili, ComEA-ComEC, or DprA-ComM-YraN gene clusters abolished transformation, defining the core machinery. The conservation of these genes across the genus Bifidobacterium and experimental demonstration of natural transformation in Bifidobacterium longum and Bifidobacterium breve indicate that natural transformation capacity is widespread within the genus. Our findings establish natural transformation as a key mechanism that promotes genome plasticity and contributes to adaptive evolution in bifidobacteria, thereby expanding our current understanding of horizontal gene transfer in the human gut microbiota.

自然转化驱动人类肠道双歧杆菌的大规模基因组镶嵌。
虽然水平基因转移驱动细菌多样化,但其对人类肠道共生体染色体规模变异的贡献尚不清楚。该研究表明,人类相关的双歧杆菌通过自然转化进行广泛的染色体转移。从单个个体中分离的共存假芽双歧杆菌的比较基因组学揭示了谱系之间广泛的重组特征。我们通过共培养菌株实验再现了这种重组,导致多个染色体区域的转移和马赛克基因组的产生。每个位点的单个重组链可达247kb,累计替换量占受体染色体的28.9%。这些转移发生在热杀死的供体或纯化的DNA上,并被DNA酶消除,从而确定自然转化是潜在的机制。此外,我们观察到环境因素强烈影响转化频率,表明肠道环境条件在调节这一过程中发挥作用。利用自然转化,我们建立了一种简单的无标记基因组编辑方法,可以实现有效的基因缺失。Tad pili、coma - comec或DprA-ComM-YraN基因簇的缺失取消了转化,定义了核心机制。这些基因在双歧杆菌属中的保守性以及在长双歧杆菌和短双歧杆菌中自然转化的实验证明,表明自然转化能力在双歧杆菌属中广泛存在。我们的研究结果表明,自然转化是促进双歧杆菌基因组可塑性和适应性进化的关键机制,从而扩大了我们目前对人类肠道微生物群水平基因转移的理解。
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来源期刊
ISME Journal
ISME Journal 环境科学-生态学
CiteScore
22.10
自引率
2.70%
发文量
171
审稿时长
2.6 months
期刊介绍: The ISME Journal covers the diverse and integrated areas of microbial ecology. We encourage contributions that represent major advances for the study of microbial ecosystems, communities, and interactions of microorganisms in the environment. Articles in The ISME Journal describe pioneering discoveries of wide appeal that enhance our understanding of functional and mechanistic relationships among microorganisms, their communities, and their habitats.
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