噬菌体抗防御系统的种类越来越多。

IF 14 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Khalimat Murtazalieva, Andre Mu, Aleksandra Petrovskaya, Robert D Finn
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引用次数: 0

摘要

噬菌体与细菌之间的生物相互作用推动了噬菌体抗防御系统(ADS)的进化,这种系统可以躲避细菌的防御机制。这些 ADS 可结合并抑制宿主防御蛋白,添加共价修饰并使防御蛋白失活,降解或封存宿主防御系统使用的信号分子,合成并恢复被细菌防御系统耗尽的必需分子,或对噬菌体分子添加共价修饰以避免被识别。迄今为止,已对 145 种噬菌体 ADS 进行了鉴定。这些 ADS 抵消了 152 种不同细菌防御家族中的 27 种,我们假设还有更多的 ADS 尚待发现。我们讨论了发现新 ADS 必不可少的高通量方法(计算和实验)以及这些方法的局限性。全面描述噬菌体 ADS 对于理解噬菌体与宿主的相互作用以及开发临床应用(如治疗耐多药细菌感染)至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The growing repertoire of phage anti-defence systems.

The biological interplay between phages and bacteria has driven the evolution of phage anti-defence systems (ADSs), which evade bacterial defence mechanisms. These ADSs bind and inhibit host defence proteins, add covalent modifications and deactivate defence proteins, degrade or sequester signalling molecules utilised by host defence systems, synthesise and restore essential molecules depleted by bacterial defences, or add covalent modifications to phage molecules to avoid recognition. Overall, 145 phage ADSs have been characterised to date. These ADSs counteract 27 of the 152 different bacterial defence families, and we hypothesise that many more ADSs are yet to be discovered. We discuss high-throughput approaches (computational and experimental) which are indispensable for discovering new ADSs and the limitations of these approaches. A comprehensive characterisation of phage ADSs is critical for understanding phage-host interplay and developing clinical applications, such as treatment for multidrug-resistant bacterial infections.

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来源期刊
Trends in Microbiology
Trends in Microbiology 生物-生化与分子生物学
CiteScore
25.30
自引率
0.60%
发文量
193
审稿时长
6-12 weeks
期刊介绍: Trends in Microbiology serves as a comprehensive, multidisciplinary forum for discussing various aspects of microbiology, spanning cell biology, immunology, genetics, evolution, virology, bacteriology, protozoology, and mycology. In the rapidly evolving field of microbiology, technological advancements, especially in genome sequencing, impact prokaryote biology from pathogens to extremophiles, influencing developments in drugs, vaccines, and industrial enzyme research.
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