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Curcumin monomer regulates ferroptosis via the melatonin receptor 2/cyclic adenosine monophosphate/protein kinase A/inositol-requiring enzyme 1 pathway to treat ischemic stroke.

神经保护 姜黄素 药理学 活力测定 氧化应激 医学 腺苷 褪黑素 脑水肿 背景(考古学) 细胞损伤 炎症 缺血 激酶 程序性细胞死亡 冲程(发动机) 脑缺血 细胞凋亡 蛋白激酶A 受体 信号转导 化学 腺苷受体 神经元 环磷酸腺苷 坏死性下垂 血脑屏障
作者
J B Xu,B Z Chen,S S Liu,B Zhao,Y M Xue,L Lv
出处
期刊:PubMed [National Institutes of Health]
卷期号:76 (6): 729-743
标识
DOI:10.26402/jpp.2025.6.10
摘要

Neurological dysfunction during ischemic stroke can lead to severe neural damage. Curcumin, a natural polyphenolic compound, has shown significant neuroprotective effects in the context of cerebral ischemia, though the detailed mechanisms remain insufficiently understood. This study aims to determine whether curcumin pre-treatment provides neuroprotection against ischemic stroke (IS) and to elucidate the underlying molecular pathways. A middle cerebral artery occlusion (MCAO) model was induced and pre-treated with 50, 100, or 200 mg/kg of curcumin. The impact of curcumin on ischemic injury was evaluated by assessing neurological deficits, cerebral edema, and blood-brain barrier (BBB) permeability using neurological scoring, brain water content analysis, and Evans blue staining. Neuronal morphology and apoptosis were assessed. An oxygen-glucose deprivation/reperfusion (OGD/R) model was employed using HT-22 cells. Cell viability and apoptosis were measured. Oxidative stress and inflammation were determined, as well as iron levels in brain tissue and cells. Curcumin pre-treatment significantly improved neurological scores, reduced neuronal morphological damage, and ameliorated cerebral edema and BBB disruption in MCAO/R rats. Furthermore, curcumin enhanced cell viability in HT-22 cells following OGD/R, reduced apoptosis, and alleviated ferroptosis, oxidative stress, and inflammation through activation of the melatonin receptor 2 (MT2)/cyclic adenosine monophosphate (cAMP)/protein kinase A (PKA)/inositol-requiring enzyme 1 (IRE1) signaling pathway. We conclude that curcumin enhances neuron survival and provides neuroprotection against IS by activating the MT2/cAMP/PKA/IRE1 pathway.

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