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测量植物细胞中的活性氧和氧化还原标志物。

Measuring ROS and redox markers in plant cells.

作者信息

Akter Salma, Khan Mohammad Shahneawz, Smith Edward N, Flashman Emily

机构信息

Department of Chemistry, University of Oxford Oxford UK

Faculty of Biological Sciences, University of Dhaka Dhaka 1000 Bangladesh.

出版信息

RSC Chem Biol. 2021 Jun 29;2(5):1384-1401. doi: 10.1039/d1cb00071c. eCollection 2021 Oct 7.

Abstract

Reactive oxygen species (ROS) are produced throughout plant cells as a by-product of electron transfer processes. While highly oxidative and potentially damaging to a range of biomolecules, there exists a suite of ROS-scavenging antioxidant strategies that maintain a redox equilibrium. This balance can be disrupted in the event of cellular stress leading to increased ROS levels, which can act as a useful stress signal but, in excess, can result in cell damage and death. As crop plants become exposed to greater degrees of multiple stresses due to climate change, efforts are ongoing to engineer plants with greater stress tolerance. It is therefore important to understand the pathways underpinning ROS-mediated signalling and damage, both through measuring ROS themselves and other indicators of redox imbalance. The highly reactive and transient nature of ROS makes this challenging to achieve, particularly in a way that is specific to individual ROS species. In this review, we describe the range of chemical and biological tools and techniques currently available for ROS and redox marker measurement in plant cells and tissues. We discuss the limitations inherent in current methodology and opportunities for advancement.

摘要

活性氧(ROS)作为电子传递过程的副产物在植物细胞中产生。虽然具有高度氧化性并可能对一系列生物分子造成损害,但存在一套活性氧清除抗氧化策略来维持氧化还原平衡。在细胞应激导致活性氧水平升高的情况下,这种平衡可能会被打破,活性氧可以作为一种有用的应激信号,但过量时会导致细胞损伤和死亡。由于气候变化,作物面临更大程度的多重胁迫,目前正在努力培育具有更强胁迫耐受性的植物。因此,通过测量活性氧本身以及氧化还原失衡的其他指标来了解活性氧介导的信号传导和损伤的途径非常重要。活性氧的高反应性和短暂性使得实现这一目标具有挑战性,特别是以针对单个活性氧种类的方式。在这篇综述中,我们描述了目前可用于测量植物细胞和组织中活性氧和氧化还原标记物的一系列化学和生物学工具及技术。我们讨论了当前方法固有的局限性以及改进的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/13f2/8495998/a03480015633/d1cb00071c-f1.jpg

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