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帕金森病相关蛋白DJ-1对糖酵解副产物的降解反应机制

The reaction mechanism for glycolysis side product degradation by Parkinson's disease-linked DJ-1.

作者信息

Watanabe Aiko, Ogiwara Shizuka, Saito Mirei, Mishima Masaki, Yamashina Masahiro, Ishitani Ryuichiro, Ito Yutaka, Tanaka Keiji, Koyano Fumika, Yamano Koji, Kosako Hidetaka, Moriwaki Yoshitaka, Matsuda Noriyuki

机构信息

Department of Biomolecular Pathogenesis, Division of Advanced Pathophysiological Science, Medical Research Laboratory, Institute of Integrated Research, Institute of Science Tokyo, Tokyo, Japan.

Department of Molecular Biophysics, School of Pharmacy, Tokyo University of Pharmacy and Life Sciences, Tokyo, Japan.

出版信息

J Cell Biol. 2025 Aug 4;224(8). doi: 10.1083/jcb.202411078. Epub 2025 Jun 4.

Abstract

DJ-1/PARK7 is the causative gene for hereditary recessive Parkinson's disease. Recent studies have reported that DJ-1 hydrolyzes cyclic 3-phosphoglyceric anhydride (cPGA), a highly reactive metabolite. However, the molecular mechanisms underlying cPGA hydrolase activity have yet to be fully elucidated. To gain a more comprehensive understanding of this activity in DJ-1, we performed molecular simulations that predicted how DJ-1 recognizes and hydrolyzes cPGA. The accuracy of these structural predictions was validated through systematic mutational analyses exemplified by loss of activity with the A107P mutation. Although DJ-1 possesses both cPGA hydrolase and α-oxoaldehyde hydratase activities in vitro, we confirmed that DJ-1 dysfunction caused an increase in cPGA-derived modifications but had no effect on α-oxoaldehyde-derived modifications in cells. Importantly, A107 and P158, pathogenic missense mutation sites found in Parkinson's disease patients, are critical for cPGA hydrolysis both in vitro and in cells. The evidence-based catalytic mechanism for DJ-1 hydrolysis of cPGA that we propose here explains their pathophysiological significance.

摘要

DJ-1/PARK7是遗传性隐性帕金森病的致病基因。最近的研究报道,DJ-1可水解环状3-磷酸甘油酸酐(cPGA),这是一种高反应性代谢产物。然而,cPGA水解酶活性的分子机制尚未完全阐明。为了更全面地了解DJ-1中的这种活性,我们进行了分子模拟,预测了DJ-1如何识别和水解cPGA。通过以A107P突变导致活性丧失为例的系统突变分析,验证了这些结构预测的准确性。尽管DJ-1在体外同时具有cPGA水解酶和α-氧代醛水合酶活性,但我们证实DJ-1功能障碍导致细胞中cPGA衍生修饰增加,但对α-氧代醛衍生修饰没有影响。重要的是,帕金森病患者中发现的致病错义突变位点A107和P158,在体外和细胞中对cPGA水解都至关重要。我们在此提出的基于证据的DJ-1水解cPGA的催化机制解释了它们的病理生理意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/404c/12240045/54ede048d594/jcb_202411078_fig1.jpg

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