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三价铬通过靶向作用于线粒体 ATP 合酶改善高血糖应激

Mitochondrial ATP synthase as a direct molecular target of chromium(III) to ameliorate hyperglycaemia stress.

机构信息

Department of Chemistry, State Key Laboratory of Synthetic Chemistry, CAS-HKU Joint Laboratory of Metallomics on Health and Environment, The University of Hong Kong, Pok Fu Lam, Hong Kong S.A.R., P.R. China.

State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing, P.R. China.

出版信息

Nat Commun. 2023 Mar 28;14(1):1738. doi: 10.1038/s41467-023-37351-w.

Abstract

Chromium(III) is extensively used as a supplement for muscle development and the treatment of diabetes mellitus. However, its mode of action, essentiality, and physiological/pharmacological effects have been a subject of scientific debate for over half a century owing to the failure in identifying the molecular targets of Cr(III). Herein, by integrating fluorescence imaging with a proteomic approach, we visualized the Cr(III) proteome being mainly localized in the mitochondria, and subsequently identified and validated eight Cr(III)-binding proteins, which are predominately associated with ATP synthesis. We show that Cr(III) binds to ATP synthase at its beta subunit via the catalytic residues of Thr213/Glu242 and the nucleotide in the active site. Such a binding suppresses ATP synthase activity, leading to the activation of AMPK, improving glucose metabolism, and rescuing mitochondria from hyperglycaemia-induced fragmentation. The mode of action of Cr(III) in cells also holds true in type II diabetic male mice. Through this study, we resolve the long-standing question of how Cr(III) ameliorates hyperglycaemia stress at the molecular level, opening a new horizon for further exploration of the pharmacological effects of Cr(III).

摘要

三价铬被广泛用作肌肉发育和治疗糖尿病的补充剂。然而,由于未能确定 Cr(III) 的分子靶标,其作用机制、必需性和生理/药理作用在半个多世纪以来一直是科学争论的主题。在此,我们通过将荧光成像与蛋白质组学方法相结合,可视化 Cr(III) 蛋白质组主要定位于线粒体中,随后鉴定并验证了 8 种与 Cr(III)结合的蛋白质,这些蛋白质主要与 ATP 合成有关。我们表明 Cr(III)通过 Thr213/Glu242 的催化残基和活性位点中的核苷酸与 ATP 合酶的β亚基结合。这种结合抑制 ATP 合酶的活性,导致 AMPK 的激活,改善葡萄糖代谢,并防止线粒体因高血糖诱导的碎片化。Cr(III)在细胞中的作用模式在 2 型糖尿病雄性小鼠中也是如此。通过这项研究,我们解决了 Cr(III)如何在分子水平上改善高血糖应激的长期问题,为进一步探索 Cr(III)的药理作用开辟了新的视野。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b22b/10050403/31fd97f49ff5/41467_2023_37351_Fig1_HTML.jpg

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