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人类大脑发育过程中具有时间分辨性的三维多组学动态变化。

Temporally distinct 3D multi-omic dynamics in the developing human brain.

机构信息

Department of Human Genetics, University of California, Los Angeles, Los Angeles, CA, USA.

Bioinformatics Interdepartmental Program, University of California, Los Angeles, Los Angeles, CA, USA.

出版信息

Nature. 2024 Nov;635(8038):481-489. doi: 10.1038/s41586-024-08030-7. Epub 2024 Oct 9.

Abstract

The human hippocampus and prefrontal cortex play critical roles in learning and cognition, yet the dynamic molecular characteristics of their development remain enigmatic. Here we investigated the epigenomic and three-dimensional chromatin conformational reorganization during the development of the hippocampus and prefrontal cortex, using more than 53,000 joint single-nucleus profiles of chromatin conformation and DNA methylation generated by single-nucleus methyl-3C sequencing (snm3C-seq3). The remodelling of DNA methylation is temporally separated from chromatin conformation dynamics. Using single-cell profiling and multimodal single-molecule imaging approaches, we have found that short-range chromatin interactions are enriched in neurons, whereas long-range interactions are enriched in glial cells and non-brain tissues. We reconstructed the regulatory programs of cell-type development and differentiation, finding putatively causal common variants for schizophrenia strongly overlapping with chromatin loop-connected, cell-type-specific regulatory regions. Our data provide multimodal resources for studying gene regulatory dynamics in brain development and demonstrate that single-cell three-dimensional multi-omics is a powerful approach for dissecting neuropsychiatric risk loci.

摘要

人类海马体和前额叶皮层在学习和认知中起着关键作用,但它们发育过程中的动态分子特征仍然是个谜。在这里,我们使用超过 53000 个由单核甲基化 3C 测序 (snm3C-seq3) 生成的染色质构象和 DNA 甲基化的联合单核体剖面,研究了海马体和前额叶皮层发育过程中的表观基因组和三维染色质构象重组。DNA 甲基化的重塑与染色质构象动力学在时间上是分离的。通过单细胞分析和多模态单分子成像方法,我们发现短距离染色质相互作用在神经元中富集,而长距离相互作用在神经胶质细胞和非脑组织中富集。我们重建了细胞类型发育和分化的调控程序,发现精神分裂症的假定因果常见变体与染色质环连接的、细胞类型特异性的调控区域强烈重叠。我们的数据为研究大脑发育中的基因调控动态提供了多模态资源,并表明单细胞三维多组学是解析神经精神风险基因座的有力方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/788f/11560841/ef36de9fc732/41586_2024_8030_Fig1_HTML.jpg

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