荧光相关光谱原理在生物分子液-液相分离研究中的应用。

Zhulou Wang, Huizhi Zhang, Lin Jian, Bo Ding, Keying Huang, Wolun Zhang, Qian Xiao, Shaohui Huang
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引用次数: 2

摘要

荧光相关光谱(FCS)研究反映溶液样品或单个活细胞中发生的潜在分子过程的波动荧光信号的时间关系。本文介绍了荧光自相关光谱(FACS)和荧光互相关光谱(FCCS)这两种最基本和最常用的荧光光谱分析技术的原理。结合FACS和FCCS技术,可以定量分析分子或纳米颗粒样品的多种性质,包括摩尔浓度、扩散系数和流体动力半径、同质或异质相互作用、荧光亮度等。毫不奇怪,FCS技术长期以来一直用于研究生物分子相分离的分子机制,首先是在脂质双分子层中,最近是在细胞质和核质中。后一种应用尤其令人兴奋,因为已经发现了一类全新的无膜细胞器,这些细胞器被认为是生物分子液-液相分离(LLPS)的结果。LLPS研究可以显著受益于各种FCS技术的多功能性和单分子敏感性,特别是在活细胞研究中。本文综述了FACS和FCCS技术如何用于研究LLPS分子机制的多个方面,并总结了FCS在LLPS体内和体外研究中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Principles of fluorescence correlation spectroscopy applied to studies of biomolecular liquid-liquid phase separation.

Fluorescence correlation spectroscopy (FCS) investigates the temporal relationship of fluctuating fluorescence signals reflecting underlying molecular processes occurring in a solution sample or a single live cell. This review article introduces the principles of two basic and most used FCS techniques: fluorescence auto-correlation spectroscopy (FACS) and fluorescence cross-correlation spectroscopy (FCCS). Combined, FACS and FCCS techniques can quantitatively analyze multiple properties of molecule or nanoparticle samples, including molar concentration, diffusion coefficient and hydrodynamic radius, homo- or hetero-interaction, fluorescence brightness, etc. Not surprisingly, FCS techniques have long been used to investigate molecular mechanisms of biomolecular phase separation, first in the lipid bilayer and more recently in cell cytosol and nucleoplasm. The latter applications are especially exciting since a whole new class of membraneless cellular organelles have been discovered, which are proposed to be results of biomolecule liquid-liquid phase separation (LLPS). LLPS research can benefit significantly from the multifunctionality and single-molecule sensitivity of a variety of FCS techniques, particularly for live-cell studies. This review illustrates how FACS and FCCS techniques can be used to investigate multiple aspects of the molecular mechanisms of LLPS, and summarizes FCS applications to LLPS research in vivo and in vitro.

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CiteScore
1.30
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0.00%
发文量
117
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