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急性肾损伤的分子病理生理学:沉默信息调节因子及其与其他大分子相互作用的作用。

Molecular pathophysiology of acute kidney injury: The role of sirtuins and their interactions with other macromolecular players.

机构信息

Nutrition Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.

Kidney Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.

出版信息

J Cell Physiol. 2021 May;236(5):3257-3274. doi: 10.1002/jcp.30084. Epub 2020 Sep 28.

DOI:10.1002/jcp.30084
PMID:32989772
Abstract

Acute kidney injury (AKI), a rapid drop in kidney function, displays high mortality and morbidity, and its repeated or severe status can shift into chronic kidney disease or even end-stage renal disease. How and which events cause AKI still is controversial. In addition, no specific therapies have emerged that can attenuate AKI or expedite recovery. Some central mechanisms including tubular epithelial cells injury, endothelial injury, renal cell apoptosis, and necrosis signaling cascades, and inflammation have been reported in the pathophysiology of AKI. However, the timing of the activation of each pathway, their interactions, and the hierarchy of these pathways remain unknown. The main molecular mechanisms that might be complicated in this process are the mitochondrial impairment and alteration/shifting of cellular metabolites (e.g., acetyl-CoA and NAD /NADH) acting as cofactors to alter the activities of many enzymes, for instance, sirtuins. Moreover, alteration of mitochondrial structure over the fusion and fission mechanisms can regulate cellular signaling pathways by modifying the rate of reactive oxygen species generation and metabolic activities. The aim of this review is to better understand the underlying pathophysiological and molecular mechanisms of AKI. In addition, we predicted the main other molecular players in interaction with sirtuins as energy/stresses monitoring proteins for the development of future approaches in the treatment or prevention of ischemic AKI.

摘要

急性肾损伤 (AKI) 是一种肾功能迅速下降的疾病,具有较高的死亡率和发病率,其反复或严重的状态可发展为慢性肾脏病甚至终末期肾病。是什么以及哪些事件导致 AKI 仍然存在争议。此外,目前还没有出现可以减轻 AKI 或加速恢复的特定疗法。在 AKI 的病理生理学中,已经报道了一些中心机制,包括肾小管上皮细胞损伤、内皮损伤、肾细胞凋亡和坏死信号级联以及炎症。然而,每个途径的激活时间、它们之间的相互作用以及这些途径的优先级仍然未知。在这个过程中可能变得复杂的主要分子机制是线粒体损伤和细胞代谢物(例如乙酰辅酶 A 和 NAD/NADH)的改变/转移,作为改变许多酶(例如沉默调节蛋白)活性的辅助因子。此外,通过改变活性氧生成和代谢活性的速率,线粒体融合和裂变机制的改变可以调节细胞信号通路。本综述的目的是更好地了解 AKI 的潜在病理生理和分子机制。此外,我们预测了与沉默调节蛋白相互作用的主要其他分子参与者,作为能量/应激监测蛋白,用于开发治疗或预防缺血性 AKI 的未来方法。

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