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IV 型菌毛:动力学、生物物理学和功能后果。

Type IV pili: dynamics, biophysics and functional consequences.

机构信息

Department of Molecular Biology and Biochemistry, Simon Fraser University, Burnaby, British Columbia, Canada.

Department of Bacteriology, University of Wisconsin-Madison, Madison, WI, USA.

出版信息

Nat Rev Microbiol. 2019 Jul;17(7):429-440. doi: 10.1038/s41579-019-0195-4.

Abstract

The surfaces of many bacteria are decorated with long, exquisitely thin appendages called type IV pili (T4P), dynamic filaments that are rapidly polymerized and depolymerized from a pool of pilin subunits. Cycles of pilus extension, binding and retraction enable T4P to perform a phenomenally diverse array of functions, including twitching motility, DNA uptake and microcolony formation. On the basis of recent developments, a comprehensive understanding is emerging of the molecular architecture of the T4P machinery and the filament it builds, providing mechanistic insights into the assembly and retraction processes. Combined microbiological and biophysical approaches have revealed how T4P dynamics influence self-organization of bacteria, how bacteria respond to external stimuli to regulate T4P activity for directed movement, and the role of T4P retraction in surface sensing. In this Review, we discuss the T4P machine architecture and filament structure and present current molecular models for T4P dynamics, with a particular focus on recent insights into T4P retraction. We also discuss the functional consequences of T4P dynamics, which have important implications for bacterial lifestyle and pathogenesis.

摘要

许多细菌的表面都装饰着长而精致的细附属物,称为 IV 型菌毛(T4P),这是一种从菌毛亚基池中快速聚合和解聚的动态纤维。菌毛的延伸、结合和缩回循环使 T4P 能够执行多种多样的功能,包括蠕动运动、DNA 摄取和微菌落形成。基于最近的研究进展,人们对 T4P 机械及其构建的纤维的分子结构有了全面的了解,为组装和缩回过程提供了机械学见解。微生物学和生物物理学的综合方法揭示了 T4P 动力学如何影响细菌的自我组织,细菌如何对外界刺激做出反应以调节 T4P 活性以进行定向运动,以及 T4P 缩回在表面感应中的作用。在这篇综述中,我们讨论了 T4P 机械结构和纤维结构,并介绍了当前 T4P 动力学的分子模型,特别关注最近对 T4P 缩回的见解。我们还讨论了 T4P 动力学的功能后果,这对细菌的生活方式和发病机制有重要影响。

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