Department of Cell Biology, Yale University School of Medicine, 333 Cedar Street, New Haven, CT, 06520-8002, USA..
Department of Cell Biology, School of Medicine, Johns Hopkins University, 855 N Wolfe Street, Baltimore, MD, 21025, USA.
Curr Opin Cell Biol. 2021 Feb;68:45-54. doi: 10.1016/j.ceb.2020.08.017. Epub 2020 Oct 8.
Cortical actin waves have emerged as a widely prevalent phenomena and brought pattern formation to many fields of cell biology. Cortical excitabilities, reminiscent of the electric excitability in neurons, are likely fundamental property of the cell cortex. Although they have been mostly considered to be biochemical in nature, accumulating evidence support the role of mechanics in the pattern formation process. Both pattern formation and mechanobiology approach biological phenomena at the collective level, either by looking at the mesoscale dynamical behavior of molecular networks or by using collective physical properties to characterize biological systems. As such they are very different from the traditional reductionist, bottom-up view of biology, which brings new challenges and potential opportunities. In this essay, we aim to provide our perspectives on what the proposed mechanochemical feedbacks are and open questions regarding their role in cortical excitable and oscillatory dynamics.
皮层肌动蛋白波已成为一种广泛存在的现象,并为细胞生物学的许多领域带来了模式形成。皮层兴奋性类似于神经元中的电兴奋性,可能是细胞皮层的基本特性。尽管它们大多被认为具有生化性质,但越来越多的证据支持力学在模式形成过程中的作用。模式形成和机械生物学都从集体水平上研究生物现象,要么通过观察分子网络的介观动力学行为,要么通过使用集体物理性质来描述生物系统。因此,它们与传统的、自下而上的生物学还原论观点非常不同,这带来了新的挑战和潜在的机遇。在本文中,我们旨在提供我们对拟议的机械化学反馈的看法,并提出关于它们在皮层兴奋和振荡动力学中的作用的开放性问题。