Institut Néel and Consortium de Recherche pour l'Emergence des Technologies Avancées, CNRS & Université Joseph Fourier, Grenoble, France.
PLoS One. 2012;7(3):e33623. doi: 10.1371/journal.pone.0033623. Epub 2012 Mar 21.
Neuronal differentiation is under the tight control of both biochemical and physical information arising from neighboring cells and micro-environment. Here we wished to assay how external geometrical constraints applied to the cell body and/or the neurites of hippocampal neurons may modulate axonal polarization in vitro. Through the use of a panel of non-specific poly-L-lysine micropatterns, we manipulated the neuronal shape. By applying geometrical constraints on the cell body we provided evidence that centrosome location was not predictive of axonal polarization but rather follows axonal fate. When the geometrical constraints were applied to the neurites trajectories we demonstrated that axonal specification was inhibited by curved lines. Altogether these results indicated that intrinsic mechanical tensions occur during neuritic growth and that maximal tension was developed by the axon and expressed on straight trajectories. The strong inhibitory effect of curved lines on axon specification was further demonstrated by their ability to prevent formation of multiple axons normally induced by cytochalasin or taxol treatments. Finally we provided evidence that microtubules were involved in the tension-mediated axonal polarization, acting as curvature sensors during neuronal differentiation. Thus, biomechanics coupled to physical constraints might be the first level of regulation during neuronal development, primary to biochemical and guidance regulations.
神经元的分化受到来自相邻细胞和微环境的生化和物理信息的严格控制。在这里,我们希望检测施加在海马神经元细胞体和/或突起上的外部几何约束如何在体外调节轴突极化。通过使用一组非特异性多聚赖氨酸微图案,我们操纵神经元的形状。通过对细胞体施加几何约束,我们提供的证据表明,中心体的位置并不能预测轴突的极化,而是遵循轴突的命运。当将几何约束施加到突起的轨迹上时,我们证明了弯曲的线抑制了轴突的特化。总之,这些结果表明,内在的机械张力在神经突生长过程中发生,并且最大张力由轴突产生,并在直线轨迹上表达。曲线对线突特化的强烈抑制作用进一步通过它们能够防止通常由细胞松弛素或紫杉醇处理诱导的多个轴突的形成来证明。最后,我们提供的证据表明微管参与了张力介导的轴突极化,在神经元分化过程中充当曲率传感器。因此,力学与物理约束相结合可能是神经元发育的第一个调节水平,优先于生化和导向调节。