神经科学
疾病
机制(生物学)
细胞代谢
发病机制
平衡
生物
铁稳态
代谢途径
氯喹诺尔
中枢神经系统
信号转导
细胞生物学
化学
神经系统
阿尔茨海默病
神经退行性变
细胞代谢
评论文章
细胞
生物信息学
人类疾病
自噬
医学
生物途径
电池类型
微量营养素
铜代谢
细胞信号
作者
Xin Liu,Lin Jia,Kerong Wu,Mo Chen,Jichao Sun,Chuanbin Yang,Chengchao Xu,Jie Sun,Jigang Wang,Lingyun Dai
出处
期刊:MedComm
[Wiley]
日期:2026-05-18
卷期号:7 (6): e70766-e70766
摘要
Iron (Fe) and copper (Cu) are vital micronutrients that regulate many critical physiological processes in the human body, with their homeostasis in the central nervous system (CNS) being essential for proper neuronal function. Disruptions in their metabolism and regulatory pathways have been associated with the pathogenesis of various forms of neurodegenerative diseases (NDDs) such as Alzheimer's disease (AD) and Parkinson's disease (PD). Despite growing research on metal homeostasis, the intricate molecular mechanisms that link iron and copper metabolism to the initiation and progression of NDDs remain insufficiently elucidated. In this review, we provide a systematic overview of the metabolic processes of iron and copper in the body and CNS, highlighting their interactions with many metal-binding proteins, including transporters, storage proteins, and important intrinsically disordered proteins (e.g., amyloid β-protein, tau, and alpha-synuclein) involved in NDDs. We further dissect the downstream effects of metal ion dyshomeostasis on cellular redox balance, neuroinflammation, autophagy, organelle interaction network, and cell death. Additionally, we discuss current therapeutic strategies aimed at targeting iron and copper dyshomeostasis, as well as the emerging role of artificial intelligence in this field of research. By integrating metal metabolism, metal-protein interactions, the effect of metal dyshomeostasis on downstream biological processes, and potential intervention strategies, this review serves as a comprehensive reference for understanding the pathogenesis of NDDs and offers new perspectives for developing effective therapeutics. Overall, this review underscores the significance of reinstating metal balance for the treatment of neurodegeneration.
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