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动力蛋白柄在细胞质和鞭毛运动中的作用。

The role of the dynein stalk in cytoplasmic and flagellar motility.

作者信息

Gee M, Vallee R

机构信息

Worcester Foundation for Biomedical Research, University of Massachusetts Medical School, Shrewsbury 01545, USA.

出版信息

Eur Biophys J. 1998;27(5):466-73. doi: 10.1007/s002490050157.

Abstract

We have recently identified a microtubule binding domain within the motor protein cytoplasmic dynein. This domain is situated at the end of a slender 10-12 nm projection which corresponds to the stalks previously observed extending from the heads of both axonemal and cytoplasmic dyneins. The stalks also correspond to the B-links observed to connect outer arm axonemal dyneins to the B-microtubules in flagella and constitute the microtubule attachment sites during dynein motility. The stalks contrast strikingly with the polymer attachment domains of the kinesins and myosins which are found on the surface of the motor head. The difference in dynein's structural design raises intriguing questions as to how the stalk functions in force production along microtubules. In this article, we attempt to integrate the myriad of biochemical and EM structural data that has been previously collected regarding dynein with recent molecular findings, in an effort to begin to understand the mechanism of dynein motility.

摘要

我们最近在动力蛋白胞质动力蛋白中鉴定出一个微管结合结构域。该结构域位于一个细长的10 - 12纳米突起的末端,该突起对应于先前观察到的从轴丝动力蛋白和胞质动力蛋白头部延伸出的柄。这些柄也对应于观察到的连接鞭毛中外臂轴丝动力蛋白与B微管的B链,并在动力蛋白运动过程中构成微管附着位点。这些柄与在动力蛋白头部表面发现的驱动蛋白和肌球蛋白的聚合物附着结构域形成鲜明对比。动力蛋白结构设计的差异引发了关于柄如何在沿微管产生力的过程中发挥作用的有趣问题。在本文中,我们试图将先前收集的关于动力蛋白的大量生化和电子显微镜结构数据与最近的分子研究结果相结合,以期开始理解动力蛋白运动的机制。

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