神经炎症
氧化应激
信号转导
NF-κB
NFKB1型
细胞生物学
炎症
神经科学
医学
化学
生物
免疫学
内科学
转录因子
生物化学
基因
作者
Kaiqi Zhang,Yong Zhao,Xi Chen,Ye Li,Tian Lan,Mengni Chang,Wenjing Wang,Changmin Wang,Xianghua Zhuang,Bin Zhang,Shu Yan Yu
出处
期刊:Redox biology
[Elsevier BV]
日期:2025-08-20
卷期号:86: 103836-103836
被引量:12
标识
DOI:10.1016/j.redox.2025.103836
摘要
Depression is a mood disorder characterized by persistent emotional and behavioral dysregulation. Oxidative stress-induced neuronal damage is increasingly recognized as a critical risk factor contributing to the pathogenesis of depression. However, the potential molecular mechanisms and therapeutic targets underlying brain homeostasis disruption induced by neuroinflammatory responses remain unclear. The polyphenolic compound curcumin has been shown to exert neuroprotective effects and partially alleviate depression-related behavioral symptoms through its anti-oxidative properties. However, the molecular mechanisms and therapeutic targets underlying curcumin's ability to ameliorate oxidative stress-induced behavioral abnormalities in specific brain regions remain insufficiently defined. In this study, we demonstrate that chronic administration of corticosterone (CORT) induces pronounced depression- and anxiety-like behaviors in mice, accompanied by marked oxidative stress, neuroinflammation, and disrupted synaptic plasticity within the medial prefrontal cortex (mPFC). Curcumin treatment significantly ameliorated these behavioral and neuropathological abnormalities by enhancing antioxidant capacity, suppressing inflammatory cytokine production and restoring dendritic architecture. Transcriptomic profiling and network pharmacology identified the p53-DDIT4-NF-κB signaling as a key signaling hub underlying these effects. Pharmacological inhibition of p53 with pifithrin-α (PFT-α) mimicked the antidepressant-like effects of curcumin, whereas activation with NSC697923 abolished them. These findings support curcumin may serve as a promising strategy for anti-oxidative stress and anti-neuroinflammation in depression via targeting p53-DDIT4-NF-κB signaling.
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