Combined chronic copper exposure and aging lead to neurotoxicity in vivo

自噬 神经毒性 安普克 ATG5型 氧化应激 体内 星形细胞增多症 铜缺乏 化学 细胞生物学 程序性细胞死亡 药理学 蛋白激酶A 生物 生物化学 毒性 细胞凋亡 内分泌学 磷酸化 医学 内科学 生物技术 有机化学 中枢神经系统
作者
Alfredo González-Alcocer,Yareth Gopar‐Cuevas,Adolfo Soto‐Domínguez,Uziel Castillo-Velazquez,María de Jesús Loera‐Arias,Odila Saucedo‐Cárdenas,Roberto Montes‐de‐Oca‐Luna,Aracely García‐García,Humberto Rodríguez‐Rocha
出处
期刊:Neurotoxicology [Elsevier BV]
卷期号:95: 181-192 被引量:19
标识
DOI:10.1016/j.neuro.2023.02.002
摘要

The environment, containing pollutants, toxins, and transition metals (copper, iron, manganese, and zinc), plays a critical role in neurodegenerative disease development. Copper occupational exposure increases Parkinson's disease (PD) risk. Previously, we determined the mechanisms by which copper induces dopaminergic cell death in vitro. The copper transporter protein 1 (Ctr1) overexpression led to intracellular glutathione depletion potentiating caspase-3 mediated cell death; oxidative stress was primarily cytosolic, and Nrf2 was upregulated mediating an antioxidant response; and protein ubiquitination, AMPK-Ulk1 signaling, p62, and Atg5-dependent autophagy were increased as a protective mechanism. However, the effect of chronic copper exposure on the neurodegenerative process has not been explored in vivo. We aimed to elucidate whether prolonged copper treatment reproduces PD features and mechanisms during aging. Throughout 40 weeks, C57BL/6J male mice were treated with copper at 0, 100, 250, and 500 ppm in the drinking water. Chronic copper exposure altered motor function and induced dopaminergic neuronal loss, astrocytosis, and microgliosis in a dose-dependent manner. α-Synuclein accumulation and aggregation were increased in response to copper, and the proteasome and autophagy alterations, previously observed in vitro, were confirmed in vivo, where protein ubiquitination, AMPK phosphorylation, and the autophagy marker LC3-II were also increased by copper exposure. Finally, nitrosative stress was induced by copper in a concentration-dependent fashion, as evidenced by increased protein nitration. To our knowledge, this is the first study combining chronic copper exposure and aging, which may represent an in vivo model of non-genetic PD and help to assess potential prophylactic and therapeutic approaches. DATA AVAILABILITY: The data underlying this article are available in the article.
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