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极低频电磁场对成年海马神经发生的表观遗传调控

Epigenetic modulation of adult hippocampal neurogenesis by extremely low-frequency electromagnetic fields.

作者信息

Leone Lucia, Fusco Salvatore, Mastrodonato Alessia, Piacentini Roberto, Barbati Saviana Antonella, Zaffina Salvatore, Pani Giovambattista, Podda Maria Vittoria, Grassi Claudio

机构信息

Institute of Human Physiology, Medical School, Università Cattolica, Largo Francesco Vito 1, 00168, Rome, Italy.

出版信息

Mol Neurobiol. 2014 Jun;49(3):1472-86. doi: 10.1007/s12035-014-8650-8. Epub 2014 Feb 16.

Abstract

Throughout life, adult neurogenesis generates new neurons in the dentate gyrus of hippocampus that have a critical role in memory formation. Strategies able to stimulate this endogenous process have raised considerable interest because of their potential use to treat neurological disorders entailing cognitive impairment. We previously reported that mice exposed to extremely low-frequency electromagnetic fields (ELFEFs) showed increased hippocampal neurogenesis. Here, we demonstrate that the ELFEF-dependent enhancement of hippocampal neurogenesis improves spatial learning and memory. To gain insights on the molecular mechanisms underlying ELFEFs' effects, we extended our studies to an in vitro model of neural stem cells (NSCs) isolated from the hippocampi of newborn mice. We found that ELFEFs enhanced proliferation and neuronal differentiation of hippocampal NSCs by regulation of epigenetic mechanisms leading to pro-neuronal gene expression. Upon ELFEF stimulation of NSCs, we observed a significant enhancement of expression of the pro-proliferative gene hairy enhancer of split 1 and the neuronal determination genes NeuroD1 and Neurogenin1. These events were preceded by increased acetylation of H3K9 and binding of the phosphorylated transcription factor cAMP response element-binding protein (CREB) on the regulatory sequence of these genes. Such ELFEF-dependent epigenetic modifications were prevented by the Cav1-channel blocker nifedipine, and were associated with increased occupancy of CREB-binding protein (CBP) to the same loci within the analyzed promoters. Our results unravel the molecular mechanisms underlying the ELFEFs' ability to improve endogenous neurogenesis, pointing to histone acetylation-related chromatin remodeling as a critical determinant. These findings could pave the way to the development of novel therapeutic approaches in regenerative medicine.

摘要

在整个生命过程中,成体神经发生在海马齿状回中产生新的神经元,这些神经元在记忆形成中起关键作用。由于能够刺激这种内源性过程的策略在治疗伴有认知障碍的神经系统疾病方面具有潜在用途,因此引起了人们的极大兴趣。我们之前报道过,暴露于极低频电磁场(ELFEFs)的小鼠海马神经发生增加。在此,我们证明ELFEF依赖的海马神经发生增强可改善空间学习和记忆。为了深入了解ELFEFs作用的分子机制,我们将研究扩展到从新生小鼠海马中分离的神经干细胞(NSCs)的体外模型。我们发现ELFEFs通过调节导致神经元前体基因表达的表观遗传机制,增强了海马NSCs的增殖和神经元分化。在对NSCs进行ELFEF刺激后,我们观察到促增殖基因hairy enhancer of split 1以及神经元决定基因NeuroD1和Neurogenin1的表达显著增强。这些事件之前,H3K9的乙酰化增加,并且磷酸化转录因子cAMP反应元件结合蛋白(CREB)与这些基因的调控序列结合。Cav1通道阻滞剂硝苯地平可阻止这种ELFEF依赖的表观遗传修饰,并且与CREB结合蛋白(CBP)在分析启动子内相同位点的占有率增加有关。我们的结果揭示了ELFEFs改善内源性神经发生能力的分子机制,指出组蛋白乙酰化相关染色质重塑是一个关键决定因素。这些发现可能为再生医学中新型治疗方法的开发铺平道路。

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