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拟南芥 2,3-二磷酸甘油酸非依赖性磷酸甘油酸变位酶 2 的活性需要丝氨酸 82 的磷酸化。

Arabidopsis thaliana 2,3-bisphosphoglycerate-independent phosphoglycerate mutase 2 activity requires serine 82 phosphorylation.

机构信息

Institute of Plant Sciences Paris-Saclay (IPS2), INRAe, CNRS, Université Evry, Université Paris-Saclay, Bat 630, Gif sur Yvette, 91190, France.

INRAE, CNRS, AgroParisTech, Université Paris-Saclay, PAPPSO, GQE-Le Moulon, Gif-sur-Yvette, 91190, France.

出版信息

Plant J. 2021 Sep;107(5):1478-1489. doi: 10.1111/tpj.15395. Epub 2021 Aug 22.

Abstract

Phosphoglycerate mutases (PGAMs) catalyse the reversible isomerisation of 3-phosphoglycerate and 2-phosphoglycerate, a step of glycolysis. PGAMs can be sub-divided into 2,3-bisphosphoglycerate-dependent (dPGAM) and -independent (iPGAM) enzymes. In plants, phosphoglycerate isomerisation is carried out by cytosolic iPGAM. Despite its crucial role in catabolism, little is known about post-translational modifications of plant iPGAM. In Arabidopsis thaliana, phosphoproteomics analyses have previously identified an iPGAM phosphopeptide where serine 82 is phosphorylated. Here, we show that this phosphopeptide is less abundant in dark-adapted compared to illuminated Arabidopsis leaves. In silico comparison of iPGAM protein sequences and 3D structural modelling of AtiPGAM2 based on non-plant iPGAM enzymes suggest a role for phosphorylated serine in the catalytic reaction mechanism. This is confirmed by the activity (or the lack thereof) of mutated recombinant Arabidopsis iPGAM2 forms, affected in different steps of the reaction mechanism. We thus propose that the occurrence of the S82-phosphopeptide reflects iPGAM2 steady-state catalysis. Based on this assumption, the metabolic consequences of a higher iPGAM activity in illuminated versus darkened leaves are discussed.

摘要

磷酸甘油酸变位酶(PGAMs)催化 3-磷酸甘油酸和 2-磷酸甘油酸的可逆异构化,这是糖酵解的一个步骤。PGAMs 可以细分为 2,3-双磷酸甘油酸依赖性(dPGAM)和非依赖性(iPGAM)酶。在植物中,磷酸甘油酸异构化由细胞质 iPGAM 进行。尽管其在分解代谢中具有重要作用,但对植物 iPGAM 的翻译后修饰知之甚少。在拟南芥中,磷酸蛋白质组学分析先前鉴定出一个 iPGAM 磷酸肽,其中丝氨酸 82 被磷酸化。在这里,我们表明与光照的拟南芥叶片相比,黑暗适应的叶片中这种磷酸肽的丰度较低。基于非植物 iPGAM 酶的 iPGAM 蛋白序列的计算机比较和 AtiPGAM2 的 3D 结构建模表明,磷酸化丝氨酸在催化反应机制中起作用。这通过受反应机制不同步骤影响的突变重组拟南芥 iPGAM2 形式的活性(或缺乏活性)得到证实。因此,我们提出 S82-磷酸肽的出现反映了 iPGAM2 的稳态催化。基于此假设,讨论了在光照和黑暗叶片中 iPGAM 活性升高的代谢后果。

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