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线粒体复合物 I 的 γ-碳酸酐酶亚基对于拟南芥的发育是必需的,对于光形态发生也很重要。

The γ-carbonic anhydrase subcomplex of mitochondrial complex I is essential for development and important for photomorphogenesis of Arabidopsis.

机构信息

College of Biological Sciences, Hunan University, Changsha 410082, China.

出版信息

Plant Physiol. 2012 Nov;160(3):1373-83. doi: 10.1104/pp.112.204339. Epub 2012 Sep 18.

Abstract

Complex I (NADH:ubiquinone oxidoreductase) is the entry point for electrons into the respiratory electron transport chain; therefore, it plays a central role in cellular energy metabolism. Complex I from different organisms has a similar basic structure. However, an extra structural module, referred to as the γ-carbonic anhydrase (γCA) subcomplex, is found in the mitochondrial complex I of photoautotrophic eukaryotes, such as green alga and plants, but not in that of the heterotrophic eukaryotes, such as fungi and mammals. It has been proposed that the γCA subcomplex is required for the light-dependent life style of photoautotrophic eukaryotes, but this hypothesis has not been successfully tested. We report here a genetic study of the genes γCAL1 and γCAL2 that encode two subunits of the γCA subcomplex of mitochondrial complex I. We found that mutations of γCAL1 and γCAL2 in Arabidopsis (Arabidopsis thaliana) result in defective embryogenesis and nongerminating seeds, demonstrating the functional significance of the γCA subcomplex of mitochondrial complex I in plant development. Surprisingly, we also found that reduced expression of γCAL1 and γCAL2 genes altered photomorphogenic development. The γcal1 mutant plant expressing the RNA interference construct of the γCAL2 gene showed a partial constitutive photomorphogenic phenotype in young seedlings and a reduced photoperiodic sensitivity in adult plants. The involvement of the γCA subcomplex of mitochondrial complex I in plant photomorphogenesis and the possible evolutionary significance of this plant-specific mitochondrial protein complex are discussed.

摘要

复合体 I(NADH:泛醌氧化还原酶)是电子进入呼吸电子传递链的入口;因此,它在细胞能量代谢中起着核心作用。来自不同生物体的复合体 I 具有相似的基本结构。然而,在光合真核生物(如绿藻和植物)的线粒体复合体 I 中发现了一个额外的结构模块,称为γ-碳酸酐酶(γCA)亚基,但在异养真核生物(如真菌和哺乳动物)中则没有。有人提出,γCA 亚基是光合真核生物依赖光照生活方式所必需的,但这一假说尚未得到成功验证。我们在此报告对编码线粒体复合体 I 的 γCA 亚基的两个亚基γCAL1 和 γCAL2 的基因的遗传研究。我们发现拟南芥(Arabidopsis thaliana)中γCAL1 和 γCAL2 的突变导致胚胎发生缺陷和种子不能萌发,这表明线粒体复合体 I 的 γCA 亚基在植物发育中具有功能意义。令人惊讶的是,我们还发现γCAL1 和 γCAL2 基因表达减少改变了光形态建成发育。表达 γCAL2 基因 RNA 干扰构建体的γcal1 突变体植物在幼苗中表现出部分组成型光形态建成表型,在成体植物中对光周期的敏感性降低。线粒体复合体 I 的 γCA 亚基参与植物光形态建成,以及这种植物特异性线粒体蛋白复合物的可能进化意义正在讨论中。

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