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细菌鞭毛丝:一种超分子多功能纳米结构。

Bacterial Flagellar Filament: A Supramolecular Multifunctional Nanostructure.

机构信息

Department of Biochemistry, Emory University School of Medicine, Atlanta, GA 30322, USA.

出版信息

Int J Mol Sci. 2021 Jul 14;22(14):7521. doi: 10.3390/ijms22147521.

Abstract

The bacterial flagellum is a complex and dynamic nanomachine that propels bacteria through liquids. It consists of a basal body, a hook, and a long filament. The flagellar filament is composed of thousands of copies of the protein flagellin (FliC) arranged helically and ending with a filament cap composed of an oligomer of the protein FliD. The overall structure of the filament core is preserved across bacterial species, while the outer domains exhibit high variability, and in some cases are even completely absent. Flagellar assembly is a complex and energetically costly process triggered by environmental stimuli and, accordingly, highly regulated on transcriptional, translational and post-translational levels. Apart from its role in locomotion, the filament is critically important in several other aspects of bacterial survival, reproduction and pathogenicity, such as adhesion to surfaces, secretion of virulence factors and formation of biofilms. Additionally, due to its ability to provoke potent immune responses, flagellins have a role as adjuvants in vaccine development. In this review, we summarize the latest knowledge on the structure of flagellins, capping proteins and filaments, as well as their regulation and role during the colonization and infection of the host.

摘要

细菌鞭毛是一种复杂而动态的纳米机器,可推动细菌在液体中移动。它由基体、钩和长丝组成。鞭毛丝由数千个卷曲排列的鞭毛蛋白(FliC)组成,末端是由 FliD 蛋白寡聚体组成的丝帽。尽管不同细菌种类的鞭毛丝核心结构基本相同,但外部结构域的变异性很高,在某些情况下甚至完全缺失。鞭毛组装是一个复杂且耗能的过程,受环境刺激触发,并在转录、翻译和翻译后水平受到高度调控。除了在运动中的作用外,鞭毛在细菌生存、繁殖和致病性的几个方面都至关重要,例如与表面的黏附、毒力因子的分泌和生物膜的形成。此外,由于其能够引发强烈的免疫反应,鞭毛蛋白在疫苗开发中具有佐剂作用。在这篇综述中,我们总结了鞭毛蛋白、帽蛋白和丝的结构及其在宿主定植和感染过程中的调控和作用的最新知识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9f7/8306008/cc4cfc349d48/ijms-22-07521-g001.jpg

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