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柠檬酸介导的植物非生物胁迫耐受性。

Citric Acid-Mediated Abiotic Stress Tolerance in Plants.

机构信息

Graduate School of Environmental and Life Science, Okayama University, Okayama 700-8530, Japan.

Department of Biochemistry and Molecular Biology, Bangladesh Agricultural University, Mymensingh 2202, Bangladesh.

出版信息

Int J Mol Sci. 2021 Jul 5;22(13):7235. doi: 10.3390/ijms22137235.

Abstract

Several recent studies have shown that citric acid/citrate (CA) can confer abiotic stress tolerance to plants. Exogenous CA application leads to improved growth and yield in crop plants under various abiotic stress conditions. Improved physiological outcomes are associated with higher photosynthetic rates, reduced reactive oxygen species, and better osmoregulation. Application of CA also induces antioxidant defense systems, promotes increased chlorophyll content, and affects secondary metabolism to limit plant growth restrictions under stress. In particular, CA has a major impact on relieving heavy metal stress by promoting precipitation, chelation, and sequestration of metal ions. This review summarizes the mechanisms that mediate CA-regulated changes in plants, primarily CA's involvement in the control of physiological and molecular processes in plants under abiotic stress conditions. We also review genetic engineering strategies for CA-mediated abiotic stress tolerance. Finally, we propose a model to explain how CA's position in complex metabolic networks involving the biosynthesis of phytohormones, amino acids, signaling molecules, and other secondary metabolites could explain some of its abiotic stress-ameliorating properties. This review summarizes our current understanding of CA-mediated abiotic stress tolerance and highlights areas where additional research is needed.

摘要

几项最近的研究表明,柠檬酸/柠檬酸盐 (CA) 可以赋予植物非生物胁迫耐受性。在各种非生物胁迫条件下,外源 CA 的应用可促进作物的生长和产量。改善的生理结果与更高的光合速率、减少的活性氧和更好的渗透调节有关。CA 的应用还诱导抗氧化防御系统,促进增加叶绿素含量,并影响次生代谢,以限制胁迫下植物的生长限制。特别是,CA 通过促进金属离子的沉淀、螯合和螯合,对缓解重金属胁迫有重大影响。

本综述总结了介导 CA 调节植物变化的机制,主要是 CA 参与控制植物在非生物胁迫条件下的生理和分子过程。我们还回顾了 CA 介导的非生物胁迫耐受性的遗传工程策略。最后,我们提出了一个模型来解释 CA 在涉及植物激素、氨基酸、信号分子和其他次生代谢物生物合成的复杂代谢网络中的位置如何解释其一些非生物胁迫缓解特性。

本综述总结了我们对 CA 介导的非生物胁迫耐受性的现有理解,并强调了需要进一步研究的领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1bb1/8268203/620a3e9d9856/ijms-22-07235-g001.jpg

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