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Mitochondrial malate dehydrogenase lowers leaf respiration and alters photorespiration and plant growth in Arabidopsis

机译:线粒体苹果酸脱氢酶降低拟南芥叶片的呼吸并改变光呼吸和植物生长

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摘要

Malate dehydrogenase (MDH) catalyzes a reversible NAD~+-dependent-dehydrogenase reaction involved in central metabolism and redox homeostasis between organelle compartments. To explore the role of mitochondrial MDH (mMDH) in Arabidopsis (Arabidopsis thaliana), knockout single and double mutants for the highly expressed mMDH1 and lower expressed mMDH2 isoforms were constructed and analyzed. A mmdh1mmdh2 mutant has no detectable mMDH activity but is viable, albeit small and slow growing. Quantitative proteome analysis of mitochondria shows changes in other mitochondrial NADlinked dehydrogenases, indicating a reorganization of such enzymes in the mitochondrial matrix. The slow-growing mmdh1mmdh2 mutant has elevated leaf respiration rate in the dark and light, without loss of photosynthetic capacity, suggesting that mMDH normally uses NADH to reduce oxaloacetate to malate, which is then exported to the cytosol, rather than to drive mitochondrial respiration. Increased respiratory rate in leaves can account in part for the low net CO2 assimilation and slow growth rate of mmdh1mmdh2. Loss of mMDH also affects photorespiration, as evidenced by a lower postillumination burst, alterations in CO_2 assimilation/intercellular CO_2 curves at low CO_2, and the light-dependent elevated concentration of photorespiratory metabolites. Complementation of mmdh1mmdh2 with an mMDH cDNA recovered mMDH activity, suppressed respiratory rate, ameliorated changes to photorespiration, and increased plant growth. A previously established inverse correlation between mMDH and ascorbate content in tomato (Solanum lycopersicum) has been consolidated in Arabidopsis and may potentially be linked to decreased galactonolactone dehydrogenase content in mitochondria in the mutant. Overall, a central yet complex role for mMDH emerges in the partitioning of carbon and energy in leaves, providing new directions for bioengineering of plant growth rate and a new insight into the molecular mechanisms linking respiration and photosynthesis in plants.
机译:苹果酸脱氢酶(MDH)催化可逆的NAD〜+依赖性脱氢酶反应,参与细胞器区室之间的中央代谢和氧化还原稳态。为了探索线粒体MDH(mMDH)在拟南芥(Arabidopsis thaliana)中的作用,构建并分析了高表达mMDH1和低表达mMDH2亚型的单突变体和双突变体。一个mmdh1mmdh2突变体没有可检测到的mMDH活性,但是是可行的,尽管它很小且生长缓慢。线粒体的蛋白质组学定量分析显示其他线粒体NAD连接的脱氢酶发生了变化,表明这些酶在线粒体基质中发生了重组。生长缓慢的mmdh1mmdh2突变体在黑暗和明亮的情况下具有较高的叶片呼吸速率,而不会丧失光合能力,这表明mMDH通常使用NADH将草酰乙酸还原为苹果酸,然后再将其输出到细胞质中,而不是驱动线粒体呼吸。叶片呼吸速率的提高可以部分解释净二氧化碳吸收低以及mmdh1mmdh2的缓慢生长。 mMDH的损失也影响光呼吸,如照明后猝发降低,低CO_2下CO_2同化/细胞间CO_2曲线的变化以及光依赖的光呼吸代谢产物浓度升高所证明。 mmdh1mmdh2与mMDH cDNA的互补可恢复mMDH活性,抑制呼吸频率,改善光呼吸变化并增加植物生长。番茄(Solanum lycopersicum)中mMDH与抗坏血酸含量之间先前建立的反相关性已在拟南芥中得到巩固,并可能与突变体线粒体中半乳糖内酯脱氢酶含量降低有关。总体而言,mMDH的核心但复杂的作用出现在叶片中碳和能量的分配中,为植物生长速率的生物工程化提供了新的方向,并为连接植物呼吸和光合作用的分子机制提供了新见解。

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