Kilinc Devrim, Blasiak Agata, Lee Gil U
Bionanosciences Group, School of Chemisty and Chemical Biology, University College Dublin Belfield, Dublin, Ireland.
Front Cell Neurosci. 2015 Jul 27;9:282. doi: 10.3389/fncel.2015.00282. eCollection 2015.
The guidance of axons to their proper targets is not only a crucial event in neurodevelopment, but also a potential therapeutic target for neural repair. Axon guidance is mediated by various chemo- and haptotactic cues, as well as the mechanical interactions between the cytoskeleton and the extracellular matrix (ECM). Axonal growth cones, dynamic ends of growing axons, convert external stimuli to biochemical signals, which, in turn, are translated into behavior, e.g., turning or retraction, via cytoskeleton-matrix linkages. Despite the inherent mechanical nature of the problem, the role of mechanics in axon guidance is poorly understood. Recent years has witnessed the application of a range of microtechnologies in neurobiology, from microfluidic circuits to single molecule force spectroscopy. In this mini-review, we describe microtechnologies geared towards dissecting the mechanical aspects of axon guidance, divided into three categories: controlling the growth cone microenvironment, stimulating growth cones with externally applied forces, and measuring forces exerted by the growth cones. A particular emphasis is given to those studies that combine multiple techniques, as dictated by the complexity of the problem.
轴突导向至其合适靶点不仅是神经发育中的关键事件,也是神经修复的潜在治疗靶点。轴突导向由各种化学和趋触性线索以及细胞骨架与细胞外基质(ECM)之间的机械相互作用介导。轴突生长锥是生长中轴突的动态末端,它将外部刺激转化为生化信号,进而通过细胞骨架 - 基质连接转化为行为,如转向或回缩。尽管该问题具有内在的机械性质,但力学在轴突导向中的作用却知之甚少。近年来,从微流控电路到单分子力谱等一系列微技术已应用于神经生物学。在本综述中,我们描述了旨在剖析轴突导向机械方面的微技术,分为三类:控制生长锥微环境、用外部施加的力刺激生长锥以及测量生长锥施加的力。根据问题的复杂性,特别强调了那些结合多种技术的研究。