The Biophysics of Cell Migration: Biasing Cell Motion with Feynman Ratchets

D. Caballero, S. Kundu, R. Reis
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引用次数: 7

Abstract

The concepts and frameworks of soft matter physics and the laws of thermodynamics can be used to describe relevant developmental, physiologic, and pathologic events in which directed cell migration is involved, such as in cancer. Typically, this directionality has been associated with the presence of soluble long-range gradients of a chemoattractant, synergizing with many other guidance cues to direct the motion of cells. In particular, physical inputs have been shown to strongly influence cell locomotion. However, this type of cue has been less explored despite the importance in biology. In this paper, we describe recent in vitro works at the interface between physics and biology, showing how the motion of cells can be directed by using gradient-free environments with repeated local asymmetries. This rectification of cell migration, from random to directed, is a process reminiscent of the Feynman ratchet; therefore, this framework can be used to explain the mechanism behind directed cell motion.
细胞迁移的生物物理学:用费曼棘轮偏置细胞运动
软物质物理学的概念和框架以及热力学定律可以用来描述相关的发育、生理和病理事件,其中涉及定向细胞迁移,例如癌症。通常,这种方向性与化学引诱剂的可溶性远程梯度的存在有关,与许多其他指导线索协同作用来指导细胞的运动。特别是,物理输入已被证明强烈影响细胞运动。然而,尽管这种类型的线索在生物学上很重要,但对它的探索却很少。在本文中,我们描述了最近在物理和生物学之间的界面的体外工作,展示了如何通过使用具有重复局部不对称的无梯度环境来指导细胞的运动。这种细胞迁移从随机到定向的调整,是一个让人想起费曼棘轮的过程;因此,这个框架可以用来解释细胞定向运动背后的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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