Single-Cell Transcriptomics Reveals Regulators of Neuronal Migration and Maturation During Brain Development.

Journal of Experimental Neuroscience Pub Date : 2018-03-08 eCollection Date: 2018-01-01 DOI:10.1177/1179069518760783
Daniel Pensold, Geraldine Zimmer
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引用次数: 10

Abstract

The correct establishment of inhibitory circuits is crucial for cortical functionality and defects during the development of γ-aminobutyric acid-expressing cortical interneurons contribute to the pathophysiology of psychiatric disorders. A critical developmental step is the migration of cortical interneurons from their site of origin within the subpallium to the cerebral cortex, orchestrated by intrinsic and extrinsic signals. In addition to genetic networks, epigenetic mechanisms such as DNA methylation by DNA methyltransferases (DNMTs) are suggested to drive stage-specific gene expression underlying developmental processes. The mosaic structure of the interneuron generating domains producing a variety of interneurons for diverse destinations complicates research on regulatory instances of cortical interneuron migration. To this end, we performed single-cell transcriptome analysis revealing Dnmt1 expression in subsets of migrating interneurons. We found that DNMT1 preserves the migratory morphology in part through transcriptional control over Pak6 that promotes neurite complexity in postmigratory cells. In addition, we identified Ccdc184, a gene of unknown function, to be highly expressed in postmitotic interneurons. Single-cell mRNA sequencing revealed a positive correlation of Ccdc184 with cell adhesion-associated genes pointing to potential implications of CCDC184 in processes relying on cell-cell adhesion-like migration or morphological differentiation of interneurons that deserves further investigations.

Abstract Image

Abstract Image

单细胞转录组学揭示大脑发育过程中神经元迁移和成熟的调节因子。
抑制回路的正确建立对皮质功能和表达γ-氨基丁酸的皮质中间神经元发育过程中的缺陷至关重要,这有助于精神疾病的病理生理。一个关键的发育步骤是皮层中间神经元在内在和外在信号的协调下,从其在皮层下的起源位置迁移到大脑皮层。除了遗传网络,表观遗传机制,如DNA甲基转移酶(dnmt)的DNA甲基化被认为是驱动发育过程中特定阶段基因表达的基础。中间神经元产生域的镶嵌结构为不同的目的地产生各种中间神经元,使皮层中间神经元迁移的调控实例研究复杂化。为此,我们进行了单细胞转录组分析,揭示了迁移中间神经元亚群中Dnmt1的表达。我们发现DNMT1在一定程度上通过转录控制Pak6来保持迁移形态,从而促进迁移后细胞的神经突复杂性。此外,我们发现Ccdc184,一个功能未知的基因,在有丝分裂后的中间神经元中高度表达。单细胞mRNA测序显示Ccdc184与细胞粘附相关基因正相关,这表明Ccdc184在依赖于细胞-细胞粘附样迁移或中间神经元形态分化的过程中具有潜在的意义,值得进一步研究。
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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