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微管在神经元极化过程中调节 F-肌动蛋白动力学。

Microtubules Modulate F-actin Dynamics during Neuronal Polarization.

机构信息

RG Neuronal Development, Center for Molecular Neurobiology Hamburg (ZMNH), University Medical Center Hamburg-Eppendorf, 20251, Hamburg, Germany.

Combinatorial Neuroimaging Core Facility (CNI), Leibniz Institute for Neurobiology, 39118, Magdeburg, Germany.

出版信息

Sci Rep. 2017 Aug 29;7(1):9583. doi: 10.1038/s41598-017-09832-8.

Abstract

Neuronal polarization is reflected by different dynamics of microtubule and filamentous actin (F-actin). Axonal microtubules are more stable than those in the remaining neurites, while dynamics of F-actin in axonal growth cones clearly exceed those in their dendritic counterparts. However, whether a functional interplay exists between the microtubule network and F-actin dynamics in growing axons and whether this interplay is instrumental for breaking cellular symmetry is currently unknown. Here, we show that an increment on microtubule stability or number of microtubules is associated with increased F-actin dynamics. Moreover, we show that Drebrin E, an F-actin and microtubule plus-end binding protein, mediates this cross talk. Drebrin E segregates preferentially to growth cones with a higher F-actin treadmilling rate, where more microtubule plus-ends are found. Interruption of the interaction of Drebrin E with microtubules decreases F-actin dynamics and arrests neuronal polarization. Collectively the data show that microtubules modulate F-actin dynamics for initial axon extension during neuronal development.

摘要

神经元极化反映了微管和丝状肌动蛋白(F-actin)的不同动力学。轴突微管比其余神经元中的微管更稳定,而轴突生长锥中的 F-actin 动力学明显超过树突状生长锥中的动力学。然而,在生长轴突中,微管网络和 F-actin 动力学之间是否存在功能相互作用,以及这种相互作用是否对打破细胞对称性至关重要,目前尚不清楚。在这里,我们表明微管稳定性的增加或微管数量的增加与 F-actin 动力学的增加有关。此外,我们还表明,Drebrin E,一种 F-actin 和微管正端结合蛋白,介导了这种串扰。Drebrin E 优先分离到具有更高 F-actin 履带式运动速率的生长锥中,其中发现了更多的微管正端。Drebrin E 与微管相互作用的中断会降低 F-actin 动力学并阻止神经元极化。总的来说,这些数据表明,微管在神经元发育过程中调节 F-actin 动力学以进行初始轴突延伸。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f26/5575062/11c41c1baa51/41598_2017_9832_Fig1_HTML.jpg

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