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小鼠器官发生的三维分子结构。

Three-dimensional molecular architecture of mouse organogenesis.

机构信息

Center for Cell Lineage and Atlas, Bioland Laboratory, Guangzhou, China.

GMU-GIBH Joint School of Life Sciences, The Guangdong-Hong Kong-Macau Joint Laboratory for Cell Fate Regulation and Diseases, Guangzhou Medical University, 510005, Guangzhou, Guangdong, China.

出版信息

Nat Commun. 2023 Jul 31;14(1):4599. doi: 10.1038/s41467-023-40155-7.

Abstract

Mammalian embryos exhibit sophisticated cellular patterning that is intricately orchestrated at both molecular and cellular level. It has recently become apparent that cells within the animal body display significant heterogeneity, both in terms of their cellular properties and spatial distributions. However, current spatial transcriptomic profiling either lacks three-dimensional representation or is limited in its ability to capture the complexity of embryonic tissues and organs. Here, we present a spatial transcriptomic atlas of all major organs at embryonic day 13.5 in the mouse embryo, and provide a three-dimensional rendering of molecular regulation for embryonic patterning with stacked sections. By integrating the spatial atlas with corresponding single-cell transcriptomic data, we offer a detailed molecular annotation of the dynamic nature of organ development, spatial cellular interactions, embryonic axes, and divergence of cell fates that underlie mammalian development, which would pave the way for precise organ engineering and stem cell-based regenerative medicine.

摘要

哺乳动物胚胎表现出复杂的细胞模式,这种模式在分子和细胞水平上都被精细地协调。最近,人们已经清楚地认识到,动物体内的细胞在细胞特性和空间分布方面存在显著的异质性。然而,目前的空间转录组分析要么缺乏三维表现形式,要么在捕捉胚胎组织和器官的复杂性方面能力有限。在这里,我们展示了一个在小鼠胚胎第 13.5 天的所有主要器官的空间转录组图谱,并提供了一个三维的分子调控图,用于胚胎模式形成的堆叠切片。通过将空间图谱与相应的单细胞转录组数据进行整合,我们提供了一个关于器官发育、空间细胞相互作用、胚胎轴以及哺乳动物发育所依赖的细胞命运分歧的动态特性的详细分子注释,这将为精确的器官工程和基于干细胞的再生医学铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9d8/10390492/4f06d341f8ce/41467_2023_40155_Fig1_HTML.jpg

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