Florez-Sarasa Igor, Ribas-Carbo Miquel, Del-Saz Néstor Fernández, Schwahn Kevin, Nikoloski Zoran, Fernie Alisdair R, Flexas Jaume
Max-Planck-Institut für Molekulare Pflanzenphysiologie, Am Mühlenberg 1, 14476, Potsdam-Golm, Germany.
Grup de Recerca en Biologia de les Plantes en Condicions Mediterranies, Departament de Biologia, Universitat de les Illes Balears, Carretera de Valldemossa Km 7.5, 07122, Palma de Mallorca, Spain.
New Phytol. 2016 Oct;212(1):66-79. doi: 10.1111/nph.14030. Epub 2016 Jun 20.
The mitochondrial alternative oxidase pathway (AOP) has been suggested to act as a sink for excess reducing power generated in the chloroplast under high-light (HL) stress and thus may reduce photoinhibition. The aim of this study was to compare different species to investigate the in vivo regulation and role of AOP under HL stress. The in vivo activities of AOP (νalt ) and the cytochrome oxidase pathway, chlorophyll fluorescence, metabolite profiles, alternative oxidase (AOX) capacity and protein amount were determined in leaves of five C3 species under growth light and after HL treatment. Differences in respiration and metabolite levels were observed among species under growth light conditions. The HL response of νalt was highly species dependent, correlated with the AOP capacity and independent of AOX protein content. Nevertheless, significant correlations were observed between νalt , levels of key metabolites and photosynthetic parameters. The results show that the species-specific response of νalt is caused by the differential post-translational regulation of AOX. Significant correlations between respiration, metabolites and photosynthetic performance across species suggest that AOP may permit stress-related amino acid synthesis, whilst maintaining photosynthetic activity under HL stress.
线粒体交替氧化酶途径(AOP)被认为在高光(HL)胁迫下可作为叶绿体中产生的过量还原力的汇聚点,因此可能减轻光抑制。本研究的目的是比较不同物种,以研究HL胁迫下AOP的体内调节及其作用。测定了5种C3植物在生长光条件下和HL处理后的叶片中AOP的体内活性(νalt)、细胞色素氧化酶途径、叶绿素荧光、代谢物谱、交替氧化酶(AOX)容量和蛋白量。在生长光条件下,不同物种间的呼吸作用和代谢物水平存在差异。νalt的HL响应具有高度的物种依赖性,与AOP容量相关且与AOX蛋白含量无关。然而,在νalt、关键代谢物水平和光合参数之间观察到显著相关性。结果表明,νalt的物种特异性响应是由AOX的翻译后差异调节引起的。不同物种间呼吸作用、代谢物和光合性能之间的显著相关性表明,AOP可能允许与胁迫相关的氨基酸合成,同时在HL胁迫下维持光合活性。