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一氧化氮调节植物中线粒体的生物发生。

Nitric oxide regulates mitochondrial biogenesis in plants.

机构信息

National Institute for Plant Genome Research, New Delhi, India.

出版信息

Plant Cell Environ. 2023 Aug;46(8):2492-2506. doi: 10.1111/pce.14637. Epub 2023 Jun 11.

Abstract

The site of nitric oxide (NO) production in mitochondrial cytochrome c oxidase and the role of NO in mitochondrial biogenesis are not known in plants. By imposing osmotic stress and recovery on Arabidopsis seedlings we investigated the site of NO production and its role in mitochondrial biogenesis. Osmotic stress reduced growth and mitochondrial number while increasing NO production. During the recovery phase the mitochondrial number increased and this increase was higher in wild type and the high NO-producing Pgb1 silencing line in comparison to the NO-deficient nitrate reductase double mutant (nia1/nia2). Application of nitrite stimulated NO production and mitochondrial number in the nia1/nia2 mutant. Osmotic stress induced COX6b 3 and COA6-L genes encoding subunits of COX. The mutants cox6b-3 and coa6-l were impaired both in NO production and mitochondrial number during stress to recovery suggesting the involvement of these subunits in nitrite-dependent NO production. Transcripts encoding the mitochondrial protein import machinery showed reduced expression in cox6b-3 and coa6-l mutants. Finally, COX6b-3 and COA6-L interacted with the VQ27 motif-containing protein in the presence of NO. The vq27 mutant was impaired in mitochondrial biogenesis. Our results suggest the involvement of COX derived NO in mitochondrial biogenesis.

摘要

线粒体细胞色素 c 氧化酶中一氧化氮(NO)产生的部位以及 NO 在线粒体生物发生中的作用在植物中尚不清楚。通过对拟南芥幼苗施加渗透胁迫和恢复处理,我们研究了 NO 产生的部位及其在线粒体生物发生中的作用。渗透胁迫降低了生长和线粒体数量,同时增加了 NO 的产生。在恢复阶段,线粒体数量增加,与硝酸盐还原酶双突变体(nia1/nia2)相比,野生型和高 NO 产生的 Pgb1 沉默系增加更多。亚硝酸盐的应用刺激了 nia1/nia2 突变体中的 NO 产生和线粒体数量。渗透胁迫诱导编码 COX 的亚基的 COX6b 3 和 COA6-L 基因。cox6b-3 和 coa6-l 突变体在胁迫到恢复过程中都在 NO 产生和线粒体数量方面受损,表明这些亚基参与了依赖亚硝酸盐的 NO 产生。cox6b-3 和 coa6-l 突变体中的编码线粒体蛋白导入机制的转录本表达减少。最后,在存在 NO 的情况下,COX6b-3 和 COA6-L 与含有 VQ27 基序的蛋白相互作用。vq27 突变体在线粒体生物发生中受损。我们的结果表明 COX 衍生的 NO 参与了线粒体生物发生。

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