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力学和几何约束控制基于驱动蛋白的微管导向。

Mechanical and geometrical constraints control kinesin-based microtubule guidance.

机构信息

Cell Biology, Faculty of Science, Utrecht University, Padualaan 8, 3584 CH Utrecht, the Netherlands.

Cell Biology, Faculty of Science, Utrecht University, Padualaan 8, 3584 CH Utrecht, the Netherlands.

出版信息

Curr Biol. 2014 Feb 3;24(3):322-8. doi: 10.1016/j.cub.2014.01.005. Epub 2014 Jan 23.

Abstract

Proper organization of microtubule networks depends on microtubule-associated proteins and motors that use different spatial cues to guide microtubule growth [1-3]. For example, it has been proposed that the uniform minus-end-out microtubule organization in dendrites of Drosophila neurons is maintained by steering of polymerizing microtubules along the stable ones by kinesin-2 motors bound to growing microtubule plus ends [4]. To explore the mechanics of kinesin-guided microtubule growth, we reconstituted this process in vitro. In the presence of microtubule plus-end tracking EB proteins, a constitutively active kinesin linked to the EB-interacting motif SxIP effectively guided polymerizing microtubules along other microtubules both in cells and in vitro. Experiments combined with modeling revealed that at angles larger than 90°, guidance efficiency is determined by the force needed for microtubule bending. At angles smaller than 90°, guidance requires microtubule growth, and guidance efficiency depends on the ability of kinesins to maintain contact between the two microtubules despite the geometrical constraints imposed by microtubule length and growth rate. Our findings provide a conceptual framework for understanding microtubule guidance during the generation of different types of microtubule arrays.

摘要

微管网络的正确组织取决于微管相关蛋白和马达,它们利用不同的空间线索来指导微管生长[1-3]。例如,有人提出,果蝇神经元树突中均匀的负端向外微管组织是通过结合到生长微管末端的驱动蛋白-2 马达沿着稳定的微管引导聚合微管来维持的[4]。为了探索驱动蛋白引导微管生长的机制,我们在体外重建了这个过程。在微管末端追踪 EB 蛋白的存在下,与 EB 相互作用基序 SxIP 连接的组成型活性驱动蛋白有效地引导聚合微管沿着细胞内和细胞外的其他微管生长。实验与建模相结合表明,在大于 90°的角度,导向效率由微管弯曲所需的力决定。在小于 90°的角度,导向需要微管生长,导向效率取决于驱动蛋白在微管长度和生长速率施加的几何约束下,在两个微管之间保持接触的能力。我们的发现为理解不同类型的微管阵列生成过程中的微管导向提供了一个概念框架。

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