DNA 甲基化与成人神经发生

Emily M Jobe, Xinyu Zhao
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摘要

DNA 甲基化在大脑发育中的作用是一个热门研究领域,因为大脑中的 CpG 含量特别高,而参与 DNA 甲基化的建立、维持、解释和清除的许多蛋白质的突变都会影响大脑的发育和/或功能。这些蛋白包括 DNA 甲基转移酶 (DNMT)、Ten-Eleven Translocation (TET) 和甲基 CpG 结合蛋白 (MBPs)。最近在测序广度和深度以及检测不同形式的甲基化方面取得的进展极大地扩展了我们对大脑中 DNA 甲基化多样性的了解。我们将研究 DNA 甲基化和相关蛋白对胚胎和成年神经发生的贡献。将特别关注对成人海马神经发生(AHN)的影响,这是大脑可塑性、学习、记忆和情绪调节的关键机制。DNA 甲基化影响神经发生的多个方面,包括干细胞的维持和增殖、命运规范、神经元分化和成熟以及突触发生。此外,无论是在正常情况下还是在疾病和损伤期间,神经发生过程中的 DNA 甲基化对许多外在信号都有反应。最后,以 DNA 甲基化、甲基 DNA 结合域(MBD)蛋白(如 MeCP2 和 MBD1)以及组蛋白修饰复合物之间的相互影响为例,说明了这些表观遗传调控系统之间广泛的相互联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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DNA Methylation and Adult Neurogenesis.

The role of DNA methylation in brain development is an intense area of research because the brain has particularly high levels of CpG and mutations in many of the proteins involved in the establishment, maintenance, interpretation, and removal of DNA methylation impact brain development and/or function. These include DNA methyltransferase (DNMT), Ten-Eleven Translocation (TET), and Methyl-CpG binding proteins (MBPs). Recent advances in sequencing breadth and depth as well the detection of different forms of methylation have greatly expanded our understanding of the diversity of DNA methylation in the brain. The contributions of DNA methylation and associated proteins to embryonic and adult neurogenesis will be examined. Particular attention will be given to the impact on adult hippocampal neurogenesis (AHN), which is a key mechanism contributing to brain plasticity, learning, memory and mood regulation. DNA methylation influences multiple aspects of neurogenesis from stem cell maintenance and proliferation, fate specification, neuronal differentiation and maturation, and synaptogenesis. In addition, DNA methylation during neurogenesis has been shown to be responsive to many extrinsic signals, both under normal conditions and during disease and injury. Finally, crosstalk between DNA methylation, Methyl-DNA binding domain (MBD) proteins such as MeCP2 and MBD1 and histone modifying complexes is used as an example to illustrate the extensive interconnection between these epigenetic regulatory systems.

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