Pollack Gerald H
Department of Bioengineering 357962, University of Washington, Seattle, WA 98195, USA.
Adv Colloid Interface Sci. 2003 Apr 25;103(2):173-96. doi: 10.1016/S0001-8686(02)00095-7.
The cell is rich with biopolymeric surfaces. Yet, the role of these surfaces and attendant surface-water interfaces has received little attention among biologists, most of whom consider water as a neutral carrier. This review aims to begin bridging the gap between biology and interface science-to show that a surface-oriented approach has power to bring fresh insights into an otherwise impenetrably complex maze. In this approach the cell is treated as a polymer gel. If the cell is a gel, then a logical approach to the understanding of cell function is through an understanding of gel function. Great strides have been made recently in understanding the principles of polymer-gel dynamics, and particularly the role of the polymer-water interface. It has become clear that a central mechanism in biology is the phase-transition-a major structural change prompted by a subtle change of environment. Phase-transitions are capable of doing work and such work could be responsible for much of the work of the cell. Here, we pursue this approach. We set up a polymer-gel-based foundation for cell behavior, and explore the extent to which this foundation explains how the cell achieves its everyday tasks.
细胞富含生物聚合物表面。然而,这些表面以及随之而来的表面 - 水界面的作用在生物学家中很少受到关注,他们大多数人将水视为中性载体。本综述旨在开始弥合生物学与界面科学之间的差距——表明一种面向表面的方法有能力为一个原本复杂得难以理解的迷宫带来新的见解。在这种方法中,细胞被视为聚合物凝胶。如果细胞是一种凝胶,那么理解细胞功能的合理方法就是通过理解凝胶功能。最近在理解聚合物 - 凝胶动力学原理,特别是聚合物 - 水界面的作用方面取得了很大进展。很明显,生物学中的一个核心机制是相变——由环境的细微变化引发的主要结构变化。相变能够做功,而这样的功可能是细胞许多工作的原因。在这里,我们采用这种方法。我们为细胞行为建立了一个基于聚合物凝胶的基础,并探讨这个基础在多大程度上解释了细胞如何完成其日常任务。