Department of Mechanical Engineering, Stanford University, Stanford, California.
Department of Integrative Biology, Michigan State University, East Lansing, Michigan.
Biophys J. 2018 Nov 6;115(9):1783-1795. doi: 10.1016/j.bpj.2018.08.047. Epub 2018 Oct 3.
Forces generated by the growth cone are vital for the proper development of the axon and thus brain function. Although recent experiments show that forces are generated along the axon, it is unknown whether the axon plays a direct role in controlling growth cone advance. Here, we use analytic and finite element modeling of microtubule dynamics and the activity of the molecular motors myosin and dynein to investigate mechanical force balance along the length of the axon and its effects on axonal outgrowth. Our modeling indicates that the paradoxical effects of stabilizing microtubules and the consequences of microtubule disassembly on axonal outgrowth can be explained by changes in the passive and active mechanical properties of axons. Our findings suggest that a full understanding of growth cone motility requires a consideration of the mechanical contributions of the axon. Our study not only has potential applications during neurodevelopment but might also help identify strategies to manipulate and promote axonal regrowth to treat neurodegeneration.
生长锥产生的力对于轴突的正常发育和大脑功能至关重要。尽管最近的实验表明力是沿着轴突产生的,但尚不清楚轴突是否直接参与控制生长锥的前进。在这里,我们使用微管动力学的分析和有限元建模以及肌球蛋白和动力蛋白分子马达的活性来研究轴突长度上的力学力平衡及其对轴突生长的影响。我们的模型表明,稳定微管的矛盾作用以及微管解体对轴突生长的影响,可以通过轴突的被动和主动机械性能的变化来解释。我们的研究结果表明,要全面了解生长锥的运动,就需要考虑轴突的机械贡献。我们的研究不仅在神经发育过程中有潜在的应用,而且还有助于确定操纵和促进轴突再生以治疗神经退行性变的策略。