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1.Determine the epigenetic mechanisms of chronic hypoxia induced learning and memory deficiency and Alzheimer’s disease neuropathology
2.Understanding the molecular mechanisms of transcription factors Nurr1 and Pitx3, and microRNA-132 regulation in dopaminergic cell differentiation
3.Define the role of dopaminergic neuron development gene defects in Parkinson’s disease
4.Assess the pathological effect of reactive microglia and astrocytes in Parkinson’s disease
5.Investigate the pathological role of autophagy defects in motor neuron degeneration in ALS and other neurodegenerative disorders
1.Determine the epigenetic mechanisms of chronic hypoxia induced learning and memory deficiency and Alzheimer’s disease neuropathology
2.Understanding the molecular mechanisms of transcription factors Nurr1 and Pitx3, and microRNA-132 regulation in dopaminergic cell differentiation
3.Define the role of dopaminergic neuron development gene defects in Parkinson’s disease
4.Assess the pathological effect of reactive microglia and astrocytes in Parkinson’s disease
5.Investigate the pathological role of autophagy defects in motor neuron degeneration in ALS and other neurodegenerative disorders
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CELL PROLIFERATIONno. 3 (2024): e13560-e13560
Jinjian Hu,Wencheng Xia,Shuyi Zeng,Yeh-Jun Lim,Youqi Tao,Yunpeng Sun, Lang Zhao, Haosen Wang,Weidong Le,Dan Li,Shengnan Zhang,Cong Liu,
Nature Communicationsno. 1 (2024): 1-13
Xiao-Ling Chen, Quan-Dan Tan,Ke-Jie Chen,Dan-Ni Zheng, Hong-Wei Deng, Song He, Feng-Kai Mao,Jun-Li Hao,Wei-Dong Le,Jie Yang
Neurochemical Researchno. 3 (2024): 557-567
Redox Biology (2024): 103006-103006
Cellular and Molecular Life Sciencesno. 1 (2024): 1-15
Nature reviews. Neurologyno. 11 (2023): 645-654
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Neurobiology of Disease (2023)
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