光呼吸
拟南芥
生物化学
突变体
硫氧还蛋白
化学
光合作用
细胞生物学
酶
互补
生物物理学
拟南芥
双分子荧光互补
氧化磷酸化
新陈代谢
生物
半胱氨酸
叶绿体
磷酸酶
低聚物
蛋白质片段互补分析
硫氧还蛋白还原酶
突变
作者
Yue Xi,G. Q. Li,Qiufei Peng,Wenjing Miao,Y. Shiow. Su,Zhisheng Zhang,Xinxiang Peng,Guohui Zhu
摘要
Photorespiration is essential for maintaining plant photosynthesis and growth under aerobic conditions. While environmental factors like light-dark transitions and high light modulate this pathway, the underlying molecular regulatory mechanisms remain unclear. Here, we report that the activity of phosphoglycolate phosphatase (PGLP), the first enzyme in the photorespiratory pathway, is redox-regulated in response to environmental light conditions. Specifically, Arabidopsis PGLP enzymatic activity enhanced under reducing conditions and light, but suppressed under oxidative conditions and darkness. Light-dark transitions dynamically alter the oligomeric state of PGLP1, as darkness promotes oligomer assembly, while light triggers disassembly, a process critically dependent on cysteine 320 (Cys320) of PGLP1. Thioredoxin (Trx) f directly interacts with PGLP1, modulating both; its light-dependent oligomeric state and enzymatic activity. Complementation of the Arabidopsis pglp1-2 mutant with wild-type PGLP1 or the Cys320 mutant (C320S) revealed that C320S-complemented lines show greater tolerance to high-light and fluctuating light conditions. Collectively, our study identifies a redox-dependent post-translational modification mechanism that fine-tunes PGLP activity, thereby optimizing photorespiratory metabolism to enhance plant photosynthetic efficiency and environmental adaptability.
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