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基于荧光蛋白的氧化还原探针。

Fluorescent protein-based redox probes.

机构信息

Heidelberg Institute for Plant Science, Heidelberg University, Heidelberg, Germany.

出版信息

Antioxid Redox Signal. 2010 Sep 1;13(5):621-50. doi: 10.1089/ars.2009.2948.

Abstract

Redox biochemistry is increasingly recognized as an integral component of cellular signal processing and cell fate decision making. Unfortunately, our capabilities to observe and measure clearly defined redox processes in the natural context of living cells, tissues, or organisms are woefully limited. The most advanced and promising tools for specific, quantitative, dynamic and compartment-specific observations are genetically encoded redox probes derived from green fluorescent protein (GFP). Within only few years from their initial introduction, redox-sensitive yellow FP (rxYFP), redox-sensitive GFPs (roGFPs), and HyPer have generated enormous interest in applying these novel tools to monitor dynamic redox changes in vivo. As genetically encoded probes, these biosensors can be specifically targeted to different subcellular locations. A critical advantage of roGFPs and HyPer is their ratiometric fluorogenic behavior. Moreover, the probe scaffold of redox-sensitive fluorescent proteins (rxYFP and roGFPs) is amenable to molecular engineering, offering fascinating prospects for further developments. In particular, the engineering of redox relays between roGFPs and redox enzymes allows control of probe specificity and enhancement of sensitivity. Genetically encoded redox probes enable the functional analysis of individual proteins in cellular redox homeostasis. In addition, redox biosensor transgenic model organisms offer extended opportunities for dynamic in vivo imaging of redox processes.

摘要

氧化还原生物化学越来越被认为是细胞信号处理和细胞命运决策的一个组成部分。不幸的是,我们观察和测量活细胞、组织或生物体自然环境中明确的氧化还原过程的能力非常有限。用于特定、定量、动态和区室特异性观察的最先进和最有前途的工具是源自绿色荧光蛋白 (GFP) 的遗传编码氧化还原探针。在最初引入后的短短几年内,氧化还原敏感的黄色 FP(rxYFP)、氧化还原敏感的 GFP(roGFP) 和 HyPer 引起了人们极大的兴趣,希望将这些新工具应用于体内动态氧化还原变化的监测。作为遗传编码探针,这些生物传感器可以专门针对不同的亚细胞位置。roGFP 和 HyPer 的一个关键优势是它们的比率荧光特性。此外,氧化还原敏感荧光蛋白 (rxYFP 和 roGFP) 的探针支架易于进行分子工程,为进一步发展提供了迷人的前景。特别是,roGFP 与氧化还原酶之间的氧化还原中继工程允许控制探针的特异性并提高灵敏度。遗传编码氧化还原探针使单个蛋白质在细胞氧化还原动态平衡中的功能分析成为可能。此外,氧化还原生物传感器转基因模式生物为体内氧化还原过程的动态成像提供了更多机会。

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