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Chronic systemic D‐galactose exposure induces memory loss, neurodegeneration, and oxidative damage in mice: Protective effects of R‐α‐lipoic acid

神经退行性变 氧化应激 丙二醛 神经发生 化学 谷胱甘肽过氧化物酶 超氧化物歧化酶 内分泌学 内科学 亚颗粒带 医学 生物 生物化学 细胞生物学 神经干细胞 干细胞 疾病 室下区
作者
Xu Cui,Pingping Zuo,Qing Zhang,Xuekun Li,Yazhuo Hu,Jiangang Long,Lester Packer,Jiankang Liu
出处
期刊:Journal of Neuroscience Research [Wiley]
卷期号:83 (8): 1584-1590 被引量:391
标识
DOI:10.1002/jnr.20845
摘要

Abstract Chronic systemic exposure of D‐galactose to mice, rats, and Drosophila causes the acceleration of senescence and has been used as an aging model. However, the underlying mechanism is as yet unclear. To investigate the mechanisms of neurodegeneration in this model, we studied cognitive function, hippocampal neuronal apoptosis and neurogenesis, and peripheral oxidative stress biomarkers and also the protective effects of the antioxidant R‐α‐lipoic acid. Chronic systemic exposure of mice to D‐galactose (100 mg/kg, s.c., 7 weeks) induced a spatial memory deficit, an increase in cell karyopyknosis, apoptosis, and caspase‐3 protein levels in hippocampal neurons, a decrease in the number of new neurons in the subgranular zone in the dentate gyrus, a reduction of migration of neural progenitor cells, and an increase in death of newly formed neurons in the granular cell layer. The D‐galactose exposure also induced an increase in peripheral oxidative stress, including an increase in malondialdehyde and decreases in total antioxidative capabilities (T‐AOC), total superoxide dismutase (T‐SOD), and glutathione peroxidase (GSH‐Px) activities. A concomitant treatment with lipoic acid ameliorated cognitive dysfunction and neurodegeneration in the hippocampus and also reduced peripheral oxidative damage by decreasing malondialdehyde and increasing T‐AOC and T‐SOD, without an effect on GSH‐Px. These findings suggest that chronic D‐galactose exposure induces neurodegeneration by enhancing caspase‐mediated apoptosis and inhibiting neurogenesis and neuron migration, as well as increasing oxidative damage. In addition, D‐galactose‐induced toxicity in mice is a useful model for studying the mechanisms of neurodegeneration and neuroprotective drugs and agents. © 2006 Wiley‐Liss, Inc.
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