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通过药物或靶点修饰对氨基糖苷类抗生素产生耐药性可实现全社区范围的抗噬菌体防御。

Resistance against aminoglycoside antibiotics via drug or target modification enables community-wide antiphage defense.

作者信息

Kever Larissa, Zhang Qian, Hardy Aël, Westhoff Philipp, Yu Yi, Frunzke Julia

机构信息

Institute of Bio-und Geosciences, IBG-1: Biotechnology, Forschungszentrum Jülich, Jülich 52425, Germany.

Department of Gastroenterology, Zhongnan Hospital of Wuhan University, Hubei Clinical Center and Key Laboratory of Intestinal and Colorectal Disease, School of Pharmaceutical Sciences, Wuhan University, 185 East Lake Road, Wuhan 430071, China.

出版信息

Microlife. 2024 Aug 15;5:uqae015. doi: 10.1093/femsml/uqae015. eCollection 2024.

Abstract

The ongoing arms race between bacteria and phages has forced bacteria to evolve a sophisticated set of antiphage defense mechanisms that constitute the bacterial immune system. In our previous study, we highlighted the antiphage properties of aminoglycoside antibiotics, which are naturally secreted by . Successful inhibition of phage infection was achieved by addition of pure compounds and supernatants from a natural producer strain emphasizing the potential for community-wide antiphage defense. However, given the dual functionality of these compounds, neighboring bacterial cells require resistance to the antibacterial activity of aminoglycosides to benefit from the protection they confer against phages. In this study, we tested a variety of different aminoglycoside resistance mechanisms acting via drug or target (16S rRNA) modification and demonstrated that they do not interfere with the antiphage properties of the molecules. Furthermore, we confirmed the antiphage impact of aminoglycosides in a community context by coculturing phage-susceptible, apramycin-resistant with the apramycin-producing strain . Given the prevalence of aminoglycoside resistance among natural bacterial isolates, this study highlights the ecological relevance of chemical defense via aminoglycosides at the community level.

摘要

细菌与噬菌体之间持续的军备竞赛迫使细菌进化出一套复杂的抗噬菌体防御机制,这些机制构成了细菌免疫系统。在我们之前的研究中,我们强调了氨基糖苷类抗生素的抗噬菌体特性,这些抗生素是由……自然分泌的。通过添加纯化合物和来自天然生产菌株的上清液成功抑制了噬菌体感染,这强调了全社区抗噬菌体防御的潜力。然而,鉴于这些化合物的双重功能,邻近的细菌细胞需要对氨基糖苷类抗生素的抗菌活性具有抗性,才能从它们提供的抗噬菌体保护中受益。在这项研究中,我们测试了多种通过药物或靶点(16S rRNA)修饰起作用的不同氨基糖苷类抗性机制,并证明它们不会干扰这些分子的抗噬菌体特性。此外,我们通过将对噬菌体敏感、对阿普拉霉素耐药的……与产生阿普拉霉素的菌株共培养,证实了氨基糖苷类抗生素在群落环境中的抗噬菌体影响。鉴于天然细菌分离物中氨基糖苷类抗性的普遍性,本研究突出了通过氨基糖苷类在群落水平进行化学防御的生态相关性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b462/11350373/c07b615ce544/uqae015fig1.jpg

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