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交替氧化酶影响高光条件下植物中的抗坏血酸代谢:线粒体呼吸电子传递途径之间的可能联系。

Alternative oxidase affects ascorbate metabolism in plants under high-light conditions: possible links between respiratory electron transport pathways in mitochondria.

机构信息

Institute of Biology of Komi Science Centre of the Ural Branch, Russian Academy of Sciences, Syktyvkar 167982, Russia.

出版信息

J Biosci. 2024;49.

Abstract

Some aspects of the relationship between ascorbate (Asc) metabolism and the functioning of mitochondrial alternative oxidase (AOX) under moderately high light (MHL, 400 μmol m s) using mutant lines were studied. After 8 h of MHL in the antisense line (AS-12), decreasing the relative reduced Asc pool due to increased ascorbate peroxidase activity was accompanied by the accumulation of a pool of the other highly effective antioxidant - glutathione. In the vitamin C-deficient line (), expression and the Asc pool were expectedly low, and after 8 h of MHL, dehydroascorbate (DHA) content was increased, although slight activation of AOX and L-galacton-1,4-lactone dehydrogenase was detected. In the AOX-inhibited line after 8 h of MHL, both the DHA levels and cytochrome pathway capacity increased. Interestingly, the suppression of AOX in the AS-12 line had a negative effect on the ATP content, whereas the activation of AOX in the line improved the energy balance in MHL conditions. Possible mechanisms of interaction at the level of the ascorbate-glutathione hub and mitochondrial electron transport pathways, mediated through Asc synthesis, for the regulation of energy balance and Asc metabolism during plant adaptation to high light are discussed.

摘要

使用突变体系研究了在中等高光(MHL,400 μmol m s)下抗坏血酸(Asc)代谢与线粒体交替氧化酶(AOX)功能之间关系的某些方面。在 MHL 条件下处理 8 小时后,由于增强了抗坏血酸过氧化物酶的活性,导致相对还原型 Asc 池减少,同时积累了另一种高效抗氧化剂 - 谷胱甘肽。在维生素 C 缺乏型()系中,预期 Asc 池的表达和 Asc 池都很低,并且在 MHL 处理 8 小时后,脱氢抗坏血酸(DHA)的含量增加,尽管检测到 AOX 和 L-半乳糖-1,4-内酯脱氢酶的轻微激活。在 MHL 处理 8 小时后,AOX 抑制的系中,DHA 水平和细胞色素途径的能力都增加。有趣的是,在 AS-12 系中抑制 AOX 对 ATP 含量有负面影响,而在系中激活 AOX 则改善了 MHL 条件下的能量平衡。讨论了在 ASC-谷胱甘肽枢纽和线粒体电子传递途径水平上的相互作用的可能机制,这些机制通过 ASC 的合成来调节能量平衡和 ASC 代谢,以适应高光条件。

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