首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >PNAS Plus: Sensing and signaling of oxidative stress in chloroplasts by inactivation of the SAL1 phosphoadenosine phosphatase
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PNAS Plus: Sensing and signaling of oxidative stress in chloroplasts by inactivation of the SAL1 phosphoadenosine phosphatase

机译:PNAS Plus:通过灭活SAL1磷酸腺苷磷酸酶来感知和传递叶绿体中的氧化应激

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摘要

Intracellular signaling during oxidative stress is complex, with organelle-to-nucleus retrograde communication pathways ill-defined or incomplete. Here we identify the 3′-phosphoadenosine 5′-phosphate (PAP) phosphatase SAL1 as a previously unidentified and conserved oxidative stress sensor in plant chloroplasts. Arabidopsis thaliana SAL1 (AtSAL1) senses changes in photosynthetic redox poise, hydrogen peroxide, and superoxide concentrations in chloroplasts via redox regulatory mechanisms. AtSAL1 phosphatase activity is suppressed by dimerization, intramolecular disulfide formation, and glutathionylation, allowing accumulation of its substrate, PAP, a chloroplast stress retrograde signal that regulates expression of plastid redox associated nuclear genes (PRANGs). This redox regulation of SAL1 for activation of chloroplast signaling is conserved in the plant kingdom, and the plant protein has evolved enhanced redox sensitivity compared with its yeast ortholog. Our results indicate that in addition to sulfur metabolism, SAL1 orthologs have evolved secondary functions in oxidative stress sensing in the plant kingdom.
机译:氧化应激过程中的细胞内信号传递是复杂的,细胞器-细胞核逆行通信途径定义不清或不完整。在这里,我们将3'-磷酸腺苷5'-磷酸(PAP)磷酸酶SAL1鉴定为植物叶绿体中以前未知且保守的氧化应激传感器。拟南芥SAL1(AtSAL1)通过氧化还原调节机制感知光合氧化还原平衡,过氧化氢和叶绿体中超氧化物浓度的变化。 AtSAL1磷酸酶活性被二聚化,分子内二硫键形成和谷胱甘肽化抑制,从而允许其底物PAP积累,叶绿体逆转录信号调节质体氧化还原相关核基因(PRANGs)的表达。 SAL1激活叶绿体信号转导的这种氧化还原调节在植物界中得到了保留,与酵母直向同源物相比,植物蛋白已经进化出增强的氧化还原敏感性。我们的结果表明,除硫代谢外,SAL1直向同源物在植物界中的氧化应激感测中已发展出次要功能。

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