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褪黑素的氧化还原生物学:区分昼夜节律和非昼夜节律功能。

Redox Biology of Melatonin: Discriminating Between Circadian and Noncircadian Functions.

机构信息

Johann Friedrich Blumenbach Institute of Zoology and Anthropology, University of Goettingen, Goettingen, Germany.

出版信息

Antioxid Redox Signal. 2022 Oct;37(10-12):704-725. doi: 10.1089/ars.2021.0275. Epub 2022 Feb 10.

DOI:10.1089/ars.2021.0275
PMID:35018802
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9587799/
Abstract

Melatonin has not only to be seen as a regulator of circadian clocks. In addition to its chronobiotic functions, it displays other actions, especially in cell protection. This includes antioxidant, anti-inflammatory, and mitochondria-protecting effects. Although protection is also modulated by the circadian system, the respective actions of melatonin can be distinguished and differ with regard to dose requirements in therapeutic settings. It is the aim of this article to outline these differences in terms of function, signaling, and dosage. Focus has been placed on both the nexus and the dissecting properties between circadian and noncircadian mechanisms. This has to consider details beyond the classic view of melatonin's role, such as widespread synthesis in extrapineal tissues, formation in mitochondria, effects on the mitochondrial permeability transition pore, and secondary signaling, for example, upregulation of sirtuins and by regulating noncoding RNAs, especially microRNAs. The relevance of these findings, the differences and connections between circadian and noncircadian functions of melatonin shed light on the regulation of inflammation, including macrophage/microglia polarization, damage-associated molecular patterns, avoidance of cytokine storms, and mitochondrial functions, with numerous consequences to antioxidative protection, that is, aspects of high actuality with regard to deadly viral and bacterial diseases. 37, 704-725.

摘要

褪黑素不仅被视为生物钟的调节剂。除了其生理时钟功能外,它还具有其他作用,特别是在细胞保护方面。这包括抗氧化、抗炎和保护线粒体的作用。虽然保护作用也受到生物钟系统的调节,但褪黑素的各自作用可以区分开来,并且在治疗环境中对剂量的要求也不同。本文旨在从功能、信号和剂量方面概述这些差异。重点放在昼夜节律和非昼夜节律机制之间的联系和分离特性上。这需要考虑超越褪黑素作用的经典观点的细节,例如广泛存在于松果体外组织中的合成、在线粒体中形成、对线粒体通透性转换孔的影响以及二级信号,例如上调沉默信息调节因子和通过调节非编码 RNA,特别是 microRNA。这些发现的相关性、褪黑素的昼夜节律和非昼夜节律功能之间的差异和联系,揭示了炎症的调节,包括巨噬细胞/小胶质细胞极化、损伤相关分子模式、避免细胞因子风暴和线粒体功能,对抗氧化保护有许多影响,这是与致命病毒和细菌疾病相关的高度现实的方面。 37, 704-725.

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Inflammation. 2021 Jun;44(3):1184-1193. doi: 10.1007/s10753-021-01413-2. Epub 2021 Jan 15.
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Melatonin alleviates d-galactose-decreased hyaluronic acid production in synovial membrane cells via Sirt1 signalling.褪黑素通过 Sirt1 信号通路减轻 D-半乳糖降低的滑膜细胞中透明质酸的产生。
Cell Biochem Funct. 2021 Jun;39(4):488-495. doi: 10.1002/cbf.3613. Epub 2021 Jan 11.
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Melatonin Attenuates Sepsis-Induced Acute Lung Injury Through Improvement of Epithelial Sodium Channel-Mediated Alveolar Fluid Clearance Via Activation of SIRT1/SGK1/Nedd4-2 Signaling Pathway.褪黑素通过激活SIRT1/SGK1/Nedd4-2信号通路改善上皮钠通道介导的肺泡液体清除,从而减轻脓毒症诱导的急性肺损伤。
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