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具有一纳米精度的荧光成像:分子马达的体外和体内研究

Fluorescence imaging with one nanometer accuracy: in vitro and in vivo studies of molecular motors.

作者信息

Hoffman Melinda Tonks, Sheung Janet, Selvin Paul R

机构信息

Physics Department, University of Illinois at Urbana-Champaign, Urbana, IL, USA.

出版信息

Methods Mol Biol. 2011;778:33-56. doi: 10.1007/978-1-61779-261-8_4.

DOI:10.1007/978-1-61779-261-8_4
PMID:21809199
Abstract

Traditional microscopy techniques are limited by the wave-like characteristics of light, which dictate that about 250 nm (or roughly half the wavelength of the light) is the smallest distance by which two identical objects can be separated while still being able to distinguish between them. Since most biological molecules are much smaller than this limit, traditional light microscopes are generally not sufficient for single-molecule biological studies. Fluorescence Imaging with One Nanometer Accuracy (FIONA) is a technique that makes possible localization of an object to approximately one nanometer. The FIONA technique is simple in concept; it is built upon the idea that, if enough photons are collected, one can find the exact center of a fluorophore's emission to within a single nanometer and track its motion with a very high level of precision. The center can be localized to approximately (λ/2)/Ö-N, where λ is the wavelength of the light and N is the number of photons collected. When N  =  10,000, FIONA achieves an accuracy of 1-2 nm, assuming the background is sufficiently low. FIONA, thus, works best with the use of high-quality dyes and fluorescence stabilization buffers, sensitive detection methods, and special microscopy techniques to reduce background fluorescence. FIONA is particularly well suited to the study of molecular motors, which are enzymes that couple ATP hydrolysis to conformational change and motion. In this chapter, we discuss the practical application of FIONA to molecular motors or other enzymes in biological systems.

摘要

传统显微镜技术受光的波动特性限制,这意味着约250纳米(或大致为光波长的一半)是两个相同物体仍能被区分开时可分离的最小距离。由于大多数生物分子比这个极限小得多,传统光学显微镜通常不足以用于单分子生物学研究。单纳米精度荧光成像(FIONA)是一种能将物体定位到约一纳米精度的技术。FIONA技术概念简单;它基于这样的理念,即如果收集到足够多的光子,就能在一纳米范围内找到荧光团发射的确切中心,并以非常高的精度追踪其运动。中心位置可定位到约(λ/2)/√N,其中λ是光的波长,N是收集到的光子数。当N = 10000时,假设背景足够低,FIONA可实现1 - 2纳米的精度。因此,FIONA在使用高质量染料、荧光稳定缓冲液、灵敏检测方法以及特殊显微镜技术以减少背景荧光时效果最佳。FIONA特别适合用于研究分子马达,分子马达是将ATP水解与构象变化及运动相偶联的酶。在本章中,我们将讨论FIONA在生物系统中对分子马达或其他酶的实际应用。

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Fluorescence imaging with one nanometer accuracy: in vitro and in vivo studies of molecular motors.具有一纳米精度的荧光成像:分子马达的体外和体内研究
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Fluorescence imaging with one nanometer accuracy: application to molecular motors.具有一纳米精度的荧光成像:在分子马达中的应用。
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