Institut de Biologie Physico-Chimique, Centre National de la Recherche Scientifique Université Pierre et Marie Curie, Unité Mixte de Recherche 7141, 75005 Paris, France.
Proc Natl Acad Sci U S A. 2011 Dec 20;108(51):20820-5. doi: 10.1073/pnas.1110518109. Epub 2011 Dec 5.
By homology with the unique plastid terminal oxidase (PTOX) found in plants, two genes encoding oxidases have been found in the Chlamydomonas genome, PTOX1 and PTOX2. Here we report the identification of a knockout mutant of PTOX2. Its molecular and functional characterization demonstrates that it encodes the oxidase most predominantly involved in chlororespiration in this algal species. In this mutant, the plastoquinone pool is constitutively reduced under dark-aerobic conditions, resulting in the mobile light-harvesting complexes being mainly, but reversibly, associated with photosystem I. Accordingly, the ptox2 mutant shows lower fitness than wild type when grown under phototrophic conditions. Single and double mutants devoid of the cytochrome b(6)f complex and PTOX2 were used to measure the oxidation rates of plastoquinols via PTOX1 and PTOX2. Those lacking both the cytochrome b(6)f complex and PTOX2 were more sensitive to light than the single mutants lacking either the cytochrome b(6)f complex or PTOX2, which discloses the role of PTOX2 under extreme conditions where the plastoquinone pool is overreduced. A model for chlororespiration is proposed to relate the electron flow rate through these alternative pathways and the redox state of plastoquinones in the dark. This model suggests that, in green algae and plants, the redox poise results from the balanced accumulation of PTOX and NADPH dehydrogenase.
通过与植物中特有的质体末端氧化酶(PTOX)的同源性,在衣藻基因组中发现了两个编码氧化酶的基因,PTOX1 和 PTOX2。在这里,我们报告了 PTOX2 敲除突变体的鉴定。其分子和功能特征表明,它编码的氧化酶在该藻类物种的光呼吸中最主要。在这个突变体中,质体醌库在黑暗有氧条件下持续还原,导致可移动的光捕获复合物主要但可逆地与光系统 I 结合。因此,与野生型相比,ptox2 突变体在光养条件下生长时适应性较低。缺乏细胞色素 b(6)f 复合物和 PTOX2 的单突变体和双突变体用于测量通过 PTOX1 和 PTOX2 氧化质体醌醇的速率。缺乏细胞色素 b(6)f 复合物和 PTOX2 的双突变体比缺乏细胞色素 b(6)f 复合物或 PTOX2 的单突变体对光更敏感,这揭示了 PTOX2 在质体醌库过度还原的极端条件下的作用。提出了一种光呼吸模型,以将这些替代途径中的电子流率与黑暗中质体醌的氧化还原状态联系起来。该模型表明,在绿藻和植物中,氧化还原平衡是由 PTOX 和 NADPH 脱氢酶的平衡积累产生的。