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Dysfunctional mitochondria in age-related neurodegeneration: Utility of melatonin as an antioxidant treatment

褪黑素 神经退行性变 线粒体 抗氧化剂 氧化应激 氧化磷酸化 自由基清除剂 活性氧 SIRT3 柠檬酸循环 衰老自由基理论 医学 内科学 生物 细胞生物学 化学 内分泌学 新陈代谢 生物化学 疾病 NAD+激酶 锡尔图因
作者
Rüssel J. Reiter,Ramaswamy Sharma,Walter Manucha,Sergio Rosales‐Corral,Luiz Gustavo de Almieda Chuffa,Doris Loh,Francesca Luchetti,Walter Balduini,Piyarat Govitrapong
出处
期刊:Ageing Research Reviews [Elsevier BV]
卷期号:101: 102480-102480 被引量:54
标识
DOI:10.1016/j.arr.2024.102480
摘要

Mitochondria functionally degrade as neurons age. Degenerative changes cause inefficient oxidative phosphorylation (OXPHOS) and elevated electron leakage from the electron transport chain (ETC) promoting increased intramitochondrial generation of damaging reactive oxygen and reactive nitrogen species (ROS and RNS). The associated progressive accumulation of molecular damage causes an increasingly rapid decline in mitochondrial physiology contributing to aging. Melatonin, a multifunctional free radical scavenger and indirect antioxidant, is synthesized in the mitochondrial matrix of neurons. Melatonin reduces electron leakage from the ETC and elevates ATP production; it also detoxifies ROS/RNS and via the SIRT3/FOXO pathway it upregulates activities of superoxide dismutase 2 and glutathione peroxidase. Melatonin also influences glucose processing by neurons. In neurogenerative diseases, neurons often adopt Warburg-type metabolism which excludes pyruvate from the mitochondria causing reduced intramitochondrial acetyl coenzyme A production. Acetyl coenzyme A supports the citric acid cycle and OXPHOS. Additionally, acetyl coenzyme A is a required co-substrate for arylalkylamine-N-acetyl transferase, which rate limits melatonin synthesis; therefore, melatonin production is diminished in cells that experience Warburg-type metabolism making mitochondria more vulnerable to oxidative stress. Moreover, endogenously produced melatonin diminishes during aging, further increasing oxidative damage to mitochondrial components. More normal mitochondrial physiology is preserved in aging neurons with melatonin supplementation. • Neurons are exposed to melatonin from intrinsic mitochondria and the pineal gland. • Melatonin reverses Warburg metabolism in pathological neurons. • Both pineal and mitochondrial-derived melatonin diminish with age. • Melatonin supports the transfer of mitochondria through tunnelling nanotubes. • Melatonin supplementation defers mitochondrial aging, preserving cell physiology.
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