Department of Chemical Engineering and Ilse Katz Institute for Nanoscale Science and Technology, Ben Gurion University of the Negev, Beer-Sheva, 84105, Israel.
Department of Chemical and Biological Physics, Weizmann Institute of Science, Rehovot, 7610001, Israel.
Adv Mater. 2018 Oct;30(41):e1707028. doi: 10.1002/adma.201707028. Epub 2018 Sep 5.
An introduction to the physical properties of living active matter at the mesoscopic scale (tens of nanometers to micrometers) and their unique features compared with "dead," nonactive matter is presented. This field of research is increasingly denoted as "biological physics" where physics includes chemical physics, soft matter physics, hydrodynamics, mechanics, and the related engineering sciences. The focus is on the emergent properties of these systems and their collective behavior, which results in active self-organization and how they relate to cellular-level biological function. These include locomotion (cell motility and migration) forces that give rise to cell division, the growth and form of cellular assemblies in development, the beating of heart cells, and the effects of mechanical perturbations such as shear flow (in the bloodstream) or adhesion to other cells or tissues. An introduction to the fundamental concepts and theory with selected experimental examples related to the authors' own research is presented, including red-blood-cell membrane fluctuations, motion of the nucleus within an egg cell, self-contracting acto-myosin gels, and structure and beating of heart cells (cardiomyocytes), including how they can be driven by an oscillating, mechanical probe.
本文介绍了介观尺度(数十纳米至数微米)下活主动物质的物理特性及其与“死”、非活性物质的独特特征。这个研究领域越来越被称为“生物物理学”,其中物理学包括物理化学、软物质物理学、流体力学、力学和相关的工程科学。重点是这些系统的新兴特性及其集体行为,这导致了主动自组织以及它们与细胞水平生物学功能的关系。这些包括运动(细胞运动和迁移)力,这些力导致细胞分裂、细胞组装在发育过程中的生长和形态、心肌细胞的跳动,以及机械扰动的影响,如剪切流(在血流中)或与其他细胞或组织的粘附。本文介绍了与作者自己的研究相关的基本概念和理论,并选择了一些实验例子,包括红细胞膜波动、卵细胞内细胞核的运动、自我收缩的肌动球蛋白凝胶、以及心肌细胞(心肌细胞)的结构和跳动,包括它们如何被机械探测仪的振荡所驱动。