Noack Florian, Vangelisti Silvia, Raffl Gerald, Carido Madalena, Diwakar Jeisimhan, Chong Faye, Bonev Boyan
Helmholtz Pioneer Campus, Helmholtz Zentrum München, Neuherberg, Germany.
Physiological Genomics, Biomedical Center, Ludwig-Maximilians-Universität München, Munich, Germany.
Nat Neurosci. 2022 Feb;25(2):154-167. doi: 10.1038/s41593-021-01002-4. Epub 2022 Feb 7.
How multiple epigenetic layers and transcription factors (TFs) interact to facilitate brain development is largely unknown. Here, to systematically map the regulatory landscape of neural differentiation in the mouse neocortex, we profiled gene expression and chromatin accessibility in single cells and integrated these data with measurements of enhancer activity, DNA methylation and three-dimensional genome architecture in purified cell populations. This allowed us to identify thousands of new enhancers, their predicted target genes and the temporal relationships between enhancer activation, epigenome remodeling and gene expression. We characterize specific neuronal transcription factors associated with extensive and frequently coordinated changes across multiple epigenetic modalities. In addition, we functionally demonstrate a new role for Neurog2 in directly mediating enhancer activity, DNA demethylation, increasing chromatin accessibility and facilitating chromatin looping in vivo. Our work provides a global view of the gene regulatory logic of lineage specification in the cerebral cortex.
多种表观遗传层和转录因子(TFs)如何相互作用以促进大脑发育,目前很大程度上尚不清楚。在这里,为了系统地描绘小鼠新皮质中神经分化的调控格局,我们分析了单细胞中的基因表达和染色质可及性,并将这些数据与纯化细胞群体中的增强子活性、DNA甲基化和三维基因组结构测量结果相结合。这使我们能够识别数千个新的增强子、它们预测的靶基因以及增强子激活、表观基因组重塑和基因表达之间的时间关系。我们表征了与多种表观遗传模式中广泛且频繁协调变化相关的特定神经元转录因子。此外,我们在功能上证明了Neurog2在体内直接介导增强子活性、DNA去甲基化、增加染色质可及性和促进染色质环化方面的新作用。我们的工作提供了大脑皮质中谱系特化的基因调控逻辑的全局视图。