Max-Planck Partner Group at the Departamento de Biologia Vegetal, Universidade Federal de Viçosa, Viçosa, 36570-900, Brazil.
Departamento de Bioquímica e Biologia Molecular, Universidade Federal do Ceará, Fortaleza, 60451-970, Brazil.
Plant Cell Environ. 2020 Jan;43(1):188-208. doi: 10.1111/pce.13640. Epub 2019 Aug 22.
Thioredoxins (TRXs) are important proteins involved in redox regulation of metabolism. In plants, it has been shown that the mitochondrial metabolism is regulated by the mitochondrial TRX system. However, the functional significance of TRX h2, which is found at both cytosol and mitochondria, remains unclear. Arabidopsis plants lacking TRX h2 showed delayed seed germination and reduced respiration alongside impaired stomatal and mesophyll conductance, without impacting photosynthesis under ambient O conditions. However, an increase in the stoichiometry of photorespiratory CO release was found during O -dependent gas exchange measurements in trxh2 mutants. Metabolite profiling of trxh2 leaves revealed alterations in key metabolites of photorespiration and in several metabolites involved in respiration and amino acid metabolism. Decreased abundance of serine hydroxymethyltransferase and glycine decarboxylase (GDC) H and L subunits as well as reduced NADH/NAD ratios were also observed in trxh2 mutants. We further demonstrated that the redox status of GDC-L is altered in trxh2 mutants in vivo and that recombinant TRX h2 can deactivate GDC-L in vitro, indicating that this protein is redox regulated by the TRX system. Collectively, our results demonstrate that TRX h2 plays an important role in the redox regulation of mitochondrial photorespiratory metabolism.
硫氧还蛋白(TRXs)是参与代谢氧化还原调节的重要蛋白质。在植物中,已经表明线粒体代谢受线粒体 TRX 系统调节。然而,在细胞质和线粒体都存在的 TRX h2 的功能意义仍不清楚。缺乏 TRX h2 的拟南芥植物表现出种子发芽延迟和呼吸作用降低,同时气孔和叶肉导度受损,在环境 O 条件下光合作用不受影响。然而,在 trxh2 突变体中进行的 O 依赖性气体交换测量中发现,光呼吸 CO 释放的化学计量比增加。trxh2 叶片的代谢物分析显示,光呼吸和参与呼吸作用和氨基酸代谢的几个关键代谢物发生了改变。还观察到 trxh2 突变体中丝氨酸羟甲基转移酶和甘氨酸脱羧酶(GDC)H 和 L 亚基的丰度降低以及 NADH/NAD 比值降低。我们进一步证明,trxh2 突变体中 GDC-L 的氧化还原状态发生了改变,并且重组 TRX h2 可以在体外使 GDC-L 失活,表明该蛋白受 TRX 系统的氧化还原调节。总的来说,我们的结果表明 TRX h2 在调节线粒体光呼吸代谢的氧化还原中发挥重要作用。