Neuronal Histone Methyltransferase EZH2 Regulates Neuronal Morphogenesis, Synaptic Plasticity, and Cognitive Behavior in Mice

被引:0
作者
Mei Zhang
Yong Zhang
Qian Xu
Joshua Crawford
Cheng Qian
Guo-Hua Wang
Jiang Qian
Xin-Zhong Dong
Mikhail V. Pletnikov
Chang-Mei Liu
Feng-Quan Zhou
机构
[1] Johns Hopkins University School of Medicine,Department of Orthopaedic Surgery
[2] Johns Hopkins University School of Medicine,The Solomon H. Snyder Department of Neuroscience
[3] Johns Hopkins University School of Medicine,Department of Psychiatry and Behavioral Sciences
[4] Johns Hopkins University School of Medicine,Department of Ophthalmology
[5] University of Science and Technology of China,School of Life Sciences, Division of Life Sciences and Medicine
[6] Chinese Academy of Sciences,State Key Laboratory of Reproductive Biology, Institute of Zoology
[7] Sir Run Run Shaw Hospital,undefined
[8] Zhejiang University School of Medicine,undefined
来源
Neuroscience Bulletin | 2023年 / 39卷
关键词
Neural development; Dendritic branching; Dendritic spine; Cognitive function; Epigenetics; Histone methylation; EZH2;
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中图分类号
学科分类号
摘要
The histone methyltransferase enhancer of zeste 2 polycomb repressive complex 2 subunit (EZH2)-mediated trimethylation of histone H3 lysine 27 (H3K27me3) regulates neural stem cell proliferation and fate specificity through silencing different gene sets in the central nervous system. Here, we explored the function of EZH2 in early post-mitotic neurons by generating a neuron-specific Ezh2 conditional knockout mouse line. The results showed that a lack of neuronal EZH2 led to delayed neuronal migration, more complex dendritic arborization, and increased dendritic spine density. Transcriptome analysis revealed that neuronal EZH2-regulated genes are related to neuronal morphogenesis. In particular, the gene encoding p21-activated kinase 3 (Pak3) was identified as a target gene suppressed by EZH2 and H3K27me3, and expression of the dominant negative Pak3 reversed Ezh2 knockout-induced higher dendritic spine density. Finally, the lack of neuronal EZH2 resulted in impaired memory behaviors in adult mice. Our results demonstrated that neuronal EZH2 acts to control multiple steps of neuronal morphogenesis during development, and has long-lasting effects on cognitive function in adult mice.
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页码:1512 / 1532
页数:20
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