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利用原子力显微镜对细胞膜和膜蛋白进行机械操作:特邀综述

Toward mechanical manipulations of cell membranes and membrane proteins using an atomic force microscope: an invited review.

作者信息

Ikai Atsushi, Afrin Rehana

机构信息

Laboratory of Biodynamics, Graduate School of Bioscience and Biotechnology, 4259 Nagatsuta, Midori-ku, Yokohama, Japan.

出版信息

Cell Biochem Biophys. 2003;39(3):257-77. doi: 10.1385/CBB:39:3:257.

Abstract

Recent advances in the use of the atomic force microscope (AFM) for manipulating cell membranes and membrane proteins are reviewed. Early pioneering work on measurements of the magnitude of the force required to create indentations with defined depth on their surfaces and to separate interacting pairs of avidin-biotin, antigen-antibody, and complementary DNA pairs formed the basis of this field. The method has subsequently been applied to map the presence of cell surface receptors and polysaccharides on live cell membranes by force measurement, with promising results. Attempts to extract phospholipids and proteins from lipid bilayers and live cell surfaces have been reported, providing a new tool for the manipulation of cellular activities and biochemical analysis at the single-cell level. An increasing awareness of the effect of the pulling speed (nm/s or microm/s), or more accurately, the force loading rate (pN/s or nN/s) on the magnitude of the rupture force, has led researchers to construct energy diagrams of rupture events based on the parameters available from such studies. Information on such nature of the interplay of force and loading rate is vital for nanomanipulation of living cells and cell membranes. Some relevant work for membrane manipulation using other methods is also reviewed in relation to AFM-based methodology.

摘要

本文综述了原子力显微镜(AFM)在操纵细胞膜和膜蛋白方面的最新进展。早期的开创性工作包括测量在细胞膜表面产生特定深度压痕以及分离抗生物素蛋白-生物素、抗原-抗体和互补DNA对相互作用对所需的力的大小,这些工作构成了该领域的基础。随后,该方法已被应用于通过力测量来绘制活细胞膜上细胞表面受体和多糖的存在情况,并取得了有前景的结果。据报道,已尝试从脂质双层和活细胞表面提取磷脂和蛋白质,这为在单细胞水平上操纵细胞活动和进行生化分析提供了一种新工具。人们越来越意识到牵拉速度(纳米/秒或微米/秒),或者更准确地说,力加载速率(皮牛/秒或纳牛/秒)对破裂力大小的影响,这促使研究人员根据此类研究可得的参数构建破裂事件的能量图。力与加载速率相互作用的这种性质的信息对于活细胞和细胞膜的纳米操纵至关重要。还结合基于AFM的方法,综述了使用其他方法进行膜操纵的一些相关工作。

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