Gangatharan Girisaran, Schneider-Maunoury Sylvie, Breau Marie Anne
Sorbonne Université, CNRS UMR 7622, Laboratoire de Biologie du Développement-Institut de Biologie Paris Seine (LBD-IBPS), INSERM, Paris, 75005, France.
Sorbonne Université, CNRS UMR 8237, Laboratoire Jean Perrin, Paris, 75005, France.
Biol Cell. 2018 Jun;110(6):125-136. doi: 10.1111/boc.201800003. Epub 2018 May 14.
Neuronal circuits, the functional building blocks of the nervous system, assemble during development through a series of dynamic processes including the migration of neurons to their final position, the growth and navigation of axons and their synaptic connection with target cells. While the role of chemical cues in guiding neuronal migration and axonal development has been extensively analysed, the contribution of mechanical inputs, such as forces and stiffness, has received far less attention. In this article, we review the in vitro and more recent in vivo studies supporting the notion that mechanical signals are critical for multiple aspects of neuronal circuit assembly, from the emergence of axons to the formation of functional synapses. By combining live imaging approaches with tools designed to measure and manipulate the mechanical environment of neurons, the emerging field of neuromechanics will add a new paradigm in our understanding of neuronal development and potentially inspire novel regenerative therapies.
神经回路是神经系统的功能构建单元,在发育过程中通过一系列动态过程组装而成,这些过程包括神经元迁移到其最终位置、轴突的生长和导向以及它们与靶细胞的突触连接。虽然化学信号在引导神经元迁移和轴突发育中的作用已得到广泛分析,但机械输入(如力和硬度)的贡献却很少受到关注。在本文中,我们综述了体外研究以及最近的体内研究,这些研究支持这样一种观点,即机械信号对于神经回路组装的多个方面至关重要,从轴突的出现到功能性突触的形成。通过将实时成像方法与旨在测量和操纵神经元机械环境的工具相结合,神经力学这一新兴领域将为我们对神经元发育的理解增添新的范式,并有可能激发新的再生疗法。