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肌动蛋白流与N-钙黏蛋白黏附之间的分子离合器驱动生长锥迁移。

A molecular clutch between the actin flow and N-cadherin adhesions drives growth cone migration.

作者信息

Bard Lucie, Boscher Cécile, Lambert Mireille, Mège René-Marc, Choquet Daniel, Thoumine Olivier

机构信息

Unité Mixte de Recherche 5091, Centre National de la Recherche Scientifique, Institut Francois Magendie, Université Bordeaux 2, 33077 Bordeaux, France.

出版信息

J Neurosci. 2008 Jun 4;28(23):5879-90. doi: 10.1523/JNEUROSCI.5331-07.2008.

Abstract

The adhesion molecule N-cadherin plays important roles in the development of the nervous system, in particular by stimulating axon outgrowth, but the molecular mechanisms underlying this effect are mostly unknown. One possibility, the so-called "molecular clutch" model, could involve a direct mechanical linkage between N-cadherin adhesion at the membrane and intracellular actin-based motility within neuronal growth cones. Using live imaging of primary rat hippocampal neurons plated on N-cadherin-coated substrates and optical trapping of N-cadherin-coated microspheres, we demonstrate here a strong correlation between growth cone velocity and the mechanical coupling between ligand-bound N-cadherin receptors and the retrograde actin flow. This relationship holds by varying ligand density and expressing mutated N-cadherin receptors or small interfering RNAs to perturb binding to catenins. By restraining microsphere motion using optical tweezers or a microneedle, we further show slippage of cadherin-cytoskeleton bonds at low forces, and, at higher forces, local actin accumulation, which strengthens nascent N-cadherin contacts. Together, these data support a direct transmission of actin-based traction forces to N-cadherin adhesions, through catenin partners, driving growth cone advance and neurite extension.

摘要

黏附分子N-钙黏蛋白在神经系统发育中发挥着重要作用,特别是通过刺激轴突生长,但这种作用背后的分子机制大多尚不清楚。一种可能性,即所谓的“分子离合器”模型,可能涉及膜上N-钙黏蛋白黏附与神经元生长锥内基于肌动蛋白的细胞内运动之间的直接机械联系。通过对铺在N-钙黏蛋白包被底物上的原代大鼠海马神经元进行实时成像以及对N-钙黏蛋白包被微球进行光镊捕获,我们在此证明了生长锥速度与配体结合的N-钙黏蛋白受体和逆行肌动蛋白流之间的机械耦合之间存在很强的相关性。通过改变配体密度以及表达突变的N-钙黏蛋白受体或小干扰RNA来干扰与连环蛋白的结合,这种关系依然成立。通过使用光镊或微针限制微球运动,我们进一步表明,在低力作用下钙黏蛋白-细胞骨架键会发生滑动,而在高力作用下会出现局部肌动蛋白积累,这会加强新生的N-钙黏蛋白接触。总之,这些数据支持基于肌动蛋白的牵引力通过连环蛋白伴侣直接传递给N-钙黏蛋白黏附,从而驱动生长锥前进和神经突延伸。

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