线粒体铜金属酶的配位化学:探索细胞死亡中铜稳态失调的意义

Daeun Shim, Jiyeon Han
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引用次数: 0

摘要

线粒体是控制能量代谢的基本细胞器,在细胞活力中起着关键作用。当消耗二氧产生三磷酸腺苷(ATP)时,线粒体内的电子转移过程可以产生活性氧,在内皮稳态信号传导和氧化应激中发挥双重作用。在复杂的电子传递过程中,包括铜、铁、锌和锰在内的几种金属离子在线粒体金属酶中充当重要的辅助因子,介导ATP的合成和抗氧化防御。在这篇综述中,我们提供了线粒体铜原酶的配位化学的全面了解。其中,超氧化物歧化酶1 (SOD1)的作用是将超氧化物解毒为过氧化氢,而细胞色素c氧化酶(CcO)通过质子泵送将二氧还原为水,从而产生电化学梯度。重点是铜金属酶的催化反应和对其配体环境的了解,我们还概述了这些酶在铜运输系统中的金属化过程。铜稳态的损害可引发线粒体功能障碍,并可能导致铜相关疾病的发展。我们描述了目前关于铜介导的毒性机制的知识,从而揭示了与铜平衡失调相关的病理的前瞻性治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Coordination chemistry of mitochondrial copper metalloenzymes: exploring implications for copper dyshomeostasis in cell death
Mitochondria, fundamental cellular organelles that govern energy metabolism, hold a pivotal role in cellular vitality. While consuming dioxygen to produce adenosine triphosphate (ATP), the electron transfer process within mitochondria can engender the formation of reactive oxygen species that exert dual roles in endothelial homeostatic signaling and oxidative stress. In the context of the intricate electron transfer process, several metal ions that include copper, iron, zinc, and manganese serve as crucial cofactors in mitochondrial metalloenzymes to mediate the synthesis of ATP and antioxidant defense. In this mini review, we provide a comprehensive understanding of the coordination chemistry of mitochondrial cuproenzymes. In detail, superoxide dismutase 1 (SOD1) functions in detoxifying superoxide into hydrogen peroxide, while cytochrome c oxidase (CcO) reduces dioxygen to water coupled with proton pumping to generate an electrochemical gradient. With an emphasis on the catalytic reactions of the copper metalloenzymes and insights into their ligand environment, we also outline the metalation process of these enzymes throughout the copper trafficking system. The impairment of copper homeostasis can trigger mitochondrial dysfunction, and potentially lead to the development of copper-related disorders. We describe the current knowledge regarding copper-mediated toxicity mechanisms, thereby shedding light on prospective therapeutic strategies for pathologies intertwined with copper dyshomeostasis.
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