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使用三种类型的小鼠囊胚衍生干细胞生成的类胚胎样结构的植入启动。

Implantation initiation of self-assembled embryo-like structures generated using three types of mouse blastocyst-derived stem cells.

机构信息

State Key Laboratory of Agrobiotechnology, College of Biological Sciences, China Agricultural University, Beijing, 10094, China.

Fujian Provincial Key Laboratory of Reproductive Health Research, Medical College of Xiamen University, Xiamen, Fujian, 361102, China.

出版信息

Nat Commun. 2019 Jan 30;10(1):496. doi: 10.1038/s41467-019-08378-9.

Abstract

Spatially ordered embryo-like structures self-assembled from blastocyst-derived stem cells can be generated to mimic embryogenesis in vitro. However, the assembly system and developmental potential of such structures needs to be further studied. Here, we devise a nonadherent-suspension-shaking system to generate self-assembled embryo-like structures (ETX-embryoids) using mouse embryonic, trophoblast and extra-embryonic endoderm stem cells. When cultured together, the three cell types aggregate and sort into lineage-specific compartments. Signaling among these compartments results in molecular and morphogenic events that closely mimic those observed in wild-type embryos. These ETX-embryoids exhibit lumenogenesis, asymmetric patterns of gene expression for markers of mesoderm and primordial germ cell precursors, and formation of anterior visceral endoderm-like tissues. After transplantation into the pseudopregnant mouse uterus, ETX-embryoids efficiently initiate implantation and trigger the formation of decidual tissues. The ability of the three cell types to self-assemble into an embryo-like structure in vitro provides a powerful model system for studying embryogenesis.

摘要

从囊胚衍生的干细胞中自组装形成的空间有序的类胚胎结构可用于模拟体外胚胎发生。然而,此类结构的组装系统和发育潜能仍需要进一步研究。在这里,我们设计了一种非贴壁-悬浮-摇动系统,使用小鼠胚胎、滋养层和胚胎外内胚层干细胞生成自组装的类胚胎结构(ETX-类胚体)。当这三种细胞类型共同培养时,它们会聚集并分类到特定的细胞谱系隔室中。这些隔室之间的信号传递导致分子和形态发生事件,这些事件与在野生型胚胎中观察到的事件非常相似。这些 ETX-类胚体表现出腔形成、中胚层和原始生殖细胞前体标志物的不对称表达模式,以及前内脏内胚层样组织的形成。将 ETX-类胚体移植到假孕小鼠子宫后,能够有效启动着床并触发蜕膜组织的形成。三种细胞类型在体外自组装形成类胚胎结构的能力为研究胚胎发生提供了强大的模型系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/11fa/6353907/74bbb05eb449/41467_2019_8378_Fig1_HTML.jpg

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