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荧光生物传感器的定量成像。

Quantitative imaging with fluorescent biosensors.

机构信息

Department of Plant Pathology, Physiology, and Weed Science, Virginia Tech, Blacksburg, VA 24061, USA..

出版信息

Annu Rev Plant Biol. 2012;63:663-706. doi: 10.1146/annurev-arplant-042110-103745. Epub 2012 Feb 13.

Abstract

Molecular activities are highly dynamic and can occur locally in subcellular domains or compartments. Neighboring cells in the same tissue can exist in different states. Therefore, quantitative information on the cellular and subcellular dynamics of ions, signaling molecules, and metabolites is critical for functional understanding of organisms. Mass spectrometry is generally used for monitoring ions and metabolites; however, its temporal and spatial resolution are limited. Fluorescent proteins have revolutionized many areas of biology-e.g., fluorescent proteins can report on gene expression or protein localization in real time-yet promoter-based reporters are often slow to report physiologically relevant changes such as calcium oscillations. Therefore, novel tools are required that can be deployed in specific cells and targeted to subcellular compartments in order to quantify target molecule dynamics directly. We require tools that can measure enzyme activities, protein dynamics, and biophysical processes (e.g., membrane potential or molecular tension) with subcellular resolution. Today, we have an extensive suite of tools at our disposal to address these challenges, including translocation sensors, fluorescence-intensity sensors, and Förster resonance energy transfer sensors. This review summarizes sensor design principles, provides a database of sensors for more than 70 different analytes/processes, and gives examples of applications in quantitative live cell imaging.

摘要

分子活动具有高度动态性,可以在亚细胞域或隔室中局部发生。同一组织中的相邻细胞可以处于不同的状态。因此,关于离子、信号分子和代谢物的细胞和亚细胞动力学的定量信息对于理解生物体的功能至关重要。质谱通常用于监测离子和代谢物;然而,其时间和空间分辨率有限。荧光蛋白已经彻底改变了许多生物学领域,例如,荧光蛋白可以实时报告基因表达或蛋白质定位,然而基于启动子的报告器往往难以报告生理相关的变化,如钙振荡。因此,需要新的工具,可以在特定的细胞中部署,并针对亚细胞隔室,以便直接量化目标分子的动力学。我们需要能够以亚细胞分辨率测量酶活性、蛋白质动力学和生物物理过程(例如,膜电位或分子张力)的工具。如今,我们拥有广泛的工具套件来应对这些挑战,包括转位传感器、荧光强度传感器和Förster 共振能量转移传感器。这篇综述总结了传感器的设计原则,提供了超过 70 种不同分析物/过程的传感器数据库,并举例说明了在定量活细胞成像中的应用。

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