代谢作用控制着表面相关微生物生长过程中质粒编码抗生素耐药性的转移和传播。

IF 7.5 1区 生物学 Q1 CELL BIOLOGY Cell reports Pub Date : 2024-08-29 DOI:10.1016/j.celrep.2024.114653
Yinyin Ma, Anton Kan, David R Johnson
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引用次数: 0

摘要

表面关联微生物系统是质粒编码抗生素耐药性传播的热点,但表面关联如何影响质粒转移和增殖仍不清楚。表面关联使不同种群之间的空间距离延长,从而促进了它们之间的质粒转移。然而,表面关联也会促进不同种群之间强烈的新陈代谢相互作用,从而引导它们的空间自组织,对质粒转移和增殖产生影响。在这里,我们假设新陈代谢相互作用会引导不同种群的空间自组织,进而调节质粒编码抗生素耐药性的传播。我们的研究表明,资源竞争会导致种群空间隔离,从而抑制质粒转移。与此相反,资源交叉取食会导致种群在空间上相互混合,从而促进质粒转移。我们进一步证明,代谢相互作用产生的空间定位决定了质粒接受者的增殖。我们的研究结果表明,代谢相互作用是质粒编码抗生素转移和增殖的重要调节因素。
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Metabolic interactions control the transfer and spread of plasmid-encoded antibiotic resistance during surface-associated microbial growth.

Surface-associated microbial systems are hotspots for the spread of plasmid-encoded antibiotic resistance, but how surface association affects plasmid transfer and proliferation remains unclear. Surface association enables prolonged spatial proximities between different populations, which promotes plasmid transfer between them. However, surface association also fosters strong metabolic interactions between different populations, which can direct their spatial self-organization with consequences for plasmid transfer and proliferation. Here, we hypothesize that metabolic interactions direct the spatial self-organization of different populations and, in turn, regulate the spread of plasmid-encoded antibiotic resistance. We show that resource competition causes populations to spatially segregate, which represses plasmid transfer. In contrast, resource cross-feeding causes populations to spatially intermix, which promotes plasmid transfer. We further show that the spatial positionings that emerge from metabolic interactions determine the proliferation of plasmid recipients. Our results demonstrate that metabolic interactions are important regulators of both the transfer and proliferation of plasmid-encoded antibiotic resistance.

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来源期刊
Cell reports
Cell reports CELL BIOLOGY-
CiteScore
13.80
自引率
1.10%
发文量
1305
审稿时长
77 days
期刊介绍: Cell Reports publishes high-quality research across the life sciences and focuses on new biological insight as its primary criterion for publication. The journal offers three primary article types: Reports, which are shorter single-point articles, research articles, which are longer and provide deeper mechanistic insights, and resources, which highlight significant technical advances or major informational datasets that contribute to biological advances. Reviews covering recent literature in emerging and active fields are also accepted. The Cell Reports Portfolio includes gold open-access journals that cover life, medical, and physical sciences, and its mission is to make cutting-edge research and methodologies available to a wide readership. The journal's professional in-house editors work closely with authors, reviewers, and the scientific advisory board, which consists of current and future leaders in their respective fields. The advisory board guides the scope, content, and quality of the journal, but editorial decisions are independently made by the in-house scientific editors of Cell Reports.
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