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通过原子力显微镜对生化过程进行结构和动力学表征。

Structural and dynamic characterization of biochemical processes by atomic force microscopy.

作者信息

Eghiaian Frédéric, Schaap Iwan A T

机构信息

Drittes Physikalisches Institut, Georg August Universität, Göttingen, Germany.

出版信息

Methods Mol Biol. 2011;778:71-95. doi: 10.1007/978-1-61779-261-8_6.

Abstract

Atomic Force Microscopy (AFM) has gained increasing popularity over the years among biophysicists due to its ability to image and to measure pN to nN forces on biologically relevant scales (nm to μm). Continuous technical developments have made AFM capable of nondisruptive, subsecond imaging of fragile biological samples in a liquid environment, making this method a potent alternative to light microscopy. In this chapter, we discuss the basics of AFM, its theoretical limitations, and we describe how this technique can be used to get single protein resolution in liquids at room temperature. Provided imaging is done at low-enough forces to avoid sample disruption and conformational changes, AFM allows obtaining unique insights into enzyme dynamics.

摘要

多年来,原子力显微镜(AFM)在生物物理学家中越来越受欢迎,因为它能够在与生物学相关的尺度(纳米到微米)上成像并测量皮牛到纳牛的力。持续的技术发展使AFM能够在液体环境中对脆弱的生物样品进行非破坏性的亚秒级成像,使该方法成为光学显微镜的有力替代方法。在本章中,我们将讨论AFM的基础知识、其理论局限性,并描述如何使用该技术在室温下的液体中获得单蛋白分辨率。如果在足够低的力下进行成像以避免样品破坏和构象变化,AFM可以提供对酶动力学的独特见解。

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