Division of Molecular Neurobiology, Department of Medical Biochemistry and Biophysics, Karolinska Institute, Stockholm, Sweden.
Brain Mind Institute, School of Life Sciences, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.
Nature. 2021 Aug;596(7870):92-96. doi: 10.1038/s41586-021-03775-x. Epub 2021 Jul 28.
The mammalian brain develops through a complex interplay of spatial cues generated by diffusible morphogens, cell-cell interactions and intrinsic genetic programs that result in probably more than a thousand distinct cell types. A complete understanding of this process requires a systematic characterization of cell states over the entire spatiotemporal range of brain development. The ability of single-cell RNA sequencing and spatial transcriptomics to reveal the molecular heterogeneity of complex tissues has therefore been particularly powerful in the nervous system. Previous studies have explored development in specific brain regions, the whole adult brain and even entire embryos. Here we report a comprehensive single-cell transcriptomic atlas of the embryonic mouse brain between gastrulation and birth. We identified almost eight hundred cellular states that describe a developmental program for the functional elements of the brain and its enclosing membranes, including the early neuroepithelium, region-specific secondary organizers, and both neurogenic and gliogenic progenitors. We also used in situ mRNA sequencing to map the spatial expression patterns of key developmental genes. Integrating the in situ data with our single-cell clusters revealed the precise spatial organization of neural progenitors during the patterning of the nervous system.
哺乳动物的大脑通过由扩散形态发生因子、细胞-细胞相互作用和内在遗传程序产生的空间线索的复杂相互作用而发育,这些线索可能导致超过一千种不同的细胞类型。要全面了解这一过程,需要系统地描述大脑发育的整个时空范围内的细胞状态。单细胞 RNA 测序和空间转录组学能够揭示复杂组织的分子异质性,因此在神经系统中具有特别强大的作用。以前的研究已经探索了特定脑区、整个成年大脑甚至整个胚胎的发育。在这里,我们报告了胚胎期小鼠大脑在原肠胚形成到出生之间的全面单细胞转录组图谱。我们鉴定了近 800 种细胞状态,描述了大脑及其包膜的功能元件的发育程序,包括早期神经上皮、区域特异性次级组织者,以及神经发生和神经胶质发生前体。我们还使用原位 mRNA 测序来绘制关键发育基因的空间表达模式。将原位数据与我们的单细胞聚类进行整合,揭示了神经系统模式形成过程中神经前体细胞的精确空间组织。