轴突蛋白和细胞质动力蛋白的结构比较研究

IF 2.4 4区 生物学 Q4 CELL BIOLOGY Cytoskeleton Pub Date : 2024-07-27 DOI:10.1002/cm.21897
Noemi Zimmermann, Takashi Ishikawa
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引用次数: 0

摘要

轴丝动力蛋白是纤毛运动的驱动力,而细胞质动力蛋白则在负端定向的细胞内运输中发挥着重要作用。要了解纤毛跳动和货物运输的分子机制,它们的分子结构是不可或缺的。细胞质动力蛋白更容易通过基因工程进行操作,在利用 X 射线晶体学和单粒子低温电子显微镜对细胞质动力蛋白进行了初步结构分析之后,又发表了一些轴突动力蛋白的原子和伪原子结构分析。目前,已有几种动力冲程后构象的动力蛋白结构和几种动力冲程前构象的动力蛋白结构。我们有必要系统地比较不同来源和不同状态下的动力蛋白构象,以了解它们在生物功能中的作用。在这篇综述中,我们将概述已发表的细胞质和轴突动力蛋白的高分辨率和中分辨率结构,比较它们的核心运动结构域的高分辨率结构和不同核苷酸状态下的整体尾部构象,并讨论它们的发力机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Comparative structural study on axonemal and cytoplasmic dyneins

Axonemal dyneins are the driving force of motile cilia, while cytoplasmic dyneins play an essential role in minus-end oriented intracellular transport. Their molecular structure is indispensable for an understanding of the molecular mechanism of ciliary beating and cargo transport. After some initial structural analysis of cytoplasmic dyneins, which are easier to manipulate with genetic engineering, using X-ray crystallography and single-particle cryo-electron microscopy, a number of atomic and pseudo-atomic structural analyses of axonemal dyneins have been published. Currently, several structures of dyneins in the post-power stroke conformation as well as a few structures in the pre-power stroke conformation are available. It will be worth systematically comparing conformations of dynein motor proteins from different sources and at different states, to understand their role in biological function. In this review, we will overview published high- and intermediate-resolution structures of cytoplasmic and axonemal dyneins, compare the high-resolution structures of their core motor domains and overall tail conformations at various nucleotide states, and discuss their force generation mechanism.

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来源期刊
Cytoskeleton
Cytoskeleton CELL BIOLOGY-
CiteScore
5.50
自引率
3.40%
发文量
24
审稿时长
6-12 weeks
期刊介绍: Cytoskeleton focuses on all aspects of cytoskeletal research in healthy and diseased states, spanning genetic and cell biological observations, biochemical, biophysical and structural studies, mathematical modeling and theory. This includes, but is certainly not limited to, classic polymer systems of eukaryotic cells and their structural sites of attachment on membranes and organelles, as well as the bacterial cytoskeleton, the nucleoskeleton, and uncoventional polymer systems with structural/organizational roles. Cytoskeleton is published in 12 issues annually, and special issues will be dedicated to especially-active or newly-emerging areas of cytoskeletal research.
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