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褪黑素相关信号通路及其对衰老机体的调控作用。

Melatonin-related signaling pathways and their regulatory effects in aging organisms.

机构信息

Cerrahpasa Faculty of Medicine, Medical Program, Istanbul University-Cerrahpasa, Istanbul, Turkey.

Cerrahpasa Faculty of Medicine, Department of Medical Biochemistry, Istanbul University-Cerrahpasa, Istanbul, Turkey.

出版信息

Biogerontology. 2022 Oct;23(5):529-539. doi: 10.1007/s10522-022-09981-y. Epub 2022 Jul 27.

DOI:10.1007/s10522-022-09981-y
PMID:35895186
Abstract

Melatonin is a tryptophan-derived ancestral molecule evolved in bacteria. According to the endosymbiotic theory, eukaryotic cells received mitochondria, plastids, and other organelles from bacteria by internalization. After the endosymbiosis, bacteria evolved into organelles and retained their ability of producing melatonin. Melatonin is a small, evolutionarily conserved indole with multiple receptor-mediated, receptor-dependent, and independent actions. Melatonin's initial function was likely a radical scavenger in bacteria that's why there was high intensity of free radicals on primitive atmosphere in the ancient times, and hormetic functions of melatonin, which are effecting through the level of gene expression via prooxidant and antioxidant redox pathways, are developed in throughout the eukaryotic evolution. In the earlier stages of life, endosymbiotic events between mitochondria and other downstream organelles continue with mutual benefits. However, this interaction gradually deteriorates as a result of the imperfection of both mitochondrial and extramitochondrial endosymbiotic crosstalk with the advancing age of eukaryotic organisms. Throughout the aging process melatonin levels tend to reduce and as a manifestation of this, many symptoms in organisms' homeostasis, such as deterioration in adjustment of cellular clocks, are commonly seen. In addition, due to deterioration in mitochondrial integrity and functions, immunity decreases, and lower levels of melatonin renders older individuals to be more susceptible to impaired redox modulation and age-related diseases. Our aim in this paper is to focus on the several redox modulation mechanisms in which melatonin signaling has a central role, to discuss melatonin's gerontological aspects and to provide new research ideas with researchers.

摘要

褪黑素是一种色氨酸衍生的古老分子,在细菌中进化而来。根据内共生理论,真核细胞通过内化从细菌中获得线粒体、质体和其他细胞器。内共生后,细菌演变成细胞器,并保留了产生褪黑素的能力。褪黑素是一种具有多种受体介导、受体依赖性和非依赖性作用的小型、进化上保守的吲哚。褪黑素的最初功能可能是细菌中的自由基清除剂,这就是为什么在古代原始大气中有高强度的自由基,以及褪黑素的应激功能,通过通过氧化还原途径的前氧化剂和抗氧化剂水平影响基因表达而发展起来的。在生命的早期阶段,线粒体和其他下游细胞器之间的内共生事件继续相互受益。然而,随着真核生物年龄的增长,这种相互作用逐渐恶化,这是由于线粒体和细胞外共生之间的不完善的相互交流造成的。在整个衰老过程中,褪黑素水平往往会降低,作为这种情况的表现,生物体的许多内稳态症状,如细胞时钟的调节恶化,通常会出现。此外,由于线粒体完整性和功能的恶化,免疫力下降,褪黑素水平降低使老年人更容易受到氧化还原调节受损和与年龄相关的疾病的影响。我们在本文中的目的是重点关注褪黑素信号在其中起核心作用的几种氧化还原调节机制,讨论褪黑素的老年学方面,并为研究人员提供新的研究思路。

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Melatonin-related signaling pathways and their regulatory effects in aging organisms.褪黑素相关信号通路及其对衰老机体的调控作用。
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Melatonin restores zinc levels, activates the Keap1/Nrf2 pathway, and modulates endoplasmic reticular stress and HSP in rats with chronic hepatotoxicity.褪黑素可恢复锌水平,激活Keap1/Nrf2通路,并调节慢性肝毒性大鼠的内质网应激和热休克蛋白。
World J Gastrointest Pharmacol Ther. 2022 Mar 5;13(2):11-22. doi: 10.4292/wjgpt.v13.i2.11.
2
Copolymer Micelle-administered Melatonin Ameliorates Hyperosmolarity-induced Ocular Surface Damage through Regulating PINK1-mediated Mitophagy.共聚胶束给药褪黑素通过调节 PINK1 介导线粒体自噬改善高渗诱导的眼表面损伤。
Curr Eye Res. 2022 May;47(5):688-703. doi: 10.1080/02713683.2021.2022163. Epub 2022 Mar 7.
3
Neurosci Bull. 2024 Dec;40(12):1901-1914. doi: 10.1007/s12264-024-01299-8. Epub 2024 Sep 16.
4
Insight into the cardioprotective effects of melatonin: shining a spotlight on intercellular Sirt signaling communication.褪黑素的心脏保护作用洞察:聚焦细胞间Sirt信号通讯
Mol Cell Biochem. 2025 Feb;480(2):799-823. doi: 10.1007/s11010-024-05002-3. Epub 2024 Jul 9.
5
Aging, oxidative stress and degenerative diseases: mechanisms, complications and emerging therapeutic strategies.衰老、氧化应激与退行性疾病:机制、并发症与新兴治疗策略。
Biogerontology. 2023 Oct;24(5):609-662. doi: 10.1007/s10522-023-10050-1. Epub 2023 Jul 30.
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Molecular mechanism of caloric restriction mimetics-mediated neuroprotection of age-related neurodegenerative diseases: an emerging therapeutic approach.热量限制模拟物介导的与年龄相关的神经退行性疾病的神经保护的分子机制:一种新兴的治疗方法。
Biogerontology. 2023 Oct;24(5):679-708. doi: 10.1007/s10522-023-10045-y. Epub 2023 Jul 10.
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Melatonin alleviates cadmium-induced nonalcoholic fatty liver disease in ducks by alleviating autophagic flow arrest via PPAR-α and reducing oxidative stress.褪黑素通过激活过氧化物酶体增殖物激活受体-α和减少氧化应激缓解自噬流阻滞从而减轻鸭子镉诱导的非酒精性脂肪肝病。
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Biogerontology. 2023 Oct;24(5):771-782. doi: 10.1007/s10522-023-10038-x. Epub 2023 May 25.
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