间质细胞
胚胎
细胞生物学
生物
子宫内膜
上皮
类有机物
功能(生物学)
电池类型
细胞培养
限制
干细胞
细胞
子宫内膜癌
男科
激素
内分泌学
内科学
胚胎干细胞
基质
基因
子宫内
胚胎发生
计算生物学
细胞分化
作者
Qiu Xiao-Yan,Jingyi Tu,Tu Jing-Yi,Lang Li,Li Lang,Wang Da,Long Man-Qing,Tian Ji-Wen,Zhao Yong-Ju,Li Tian-Qing,昆明理工大学灵长类转化医学研究院, 省部共建非人灵长类生物医学国家重点实验室, 云南 昆明 650032, 中国,云南中科灵长类生物医学重点实验室, 云南 昆明 650500, 中国
标识
DOI:10.24272/j.issn.2095-8137.2025.265
摘要
Background Embryo implantation involves complex interactions between the embryo and the maternal endometrium. Recently, the endometrial organoids (EOs) provide a new approach for studying embryo implantation. However, the currently constructed mouse EOs (mEOs) were mainly made by single cell types, so they lacked the interaction between different cell types and the luminal epithelium (LE) structure, which leads to a lack of dynamic hormonal responses, making them difficult to mimic the receptive phase of the endometrium in vivo. Results We here successfully developed mouse endometrial assembloids with LE structures in vitro by co-culturing mouse endometrial gland-like organoids (GLOs) and endometrial stromal cells (ESCs) using the air-liquid interface (ALI) method. To do this end, we first optimized the culture system for mouse GLOs by fine-tuning the concentrations of Wnt3a and R-Spondin1 and then improved the culture of ESCs by incorporating hydrocortisone, L-ascorbic acid, and ITS-X. Comparison analysis showed that the ALI culture methods significantly enhance epithelial cell proliferation, gland development, and metabolic activity of GLOs and ESCs. Importantly, mouse endometrial assembloids in the ALI condition (ALI-mEnAOs) exhibited LE characteristics, which effectively simulate the mouse pre-receptive and receptive endometrium in vivo, respectively. Conclusion Compared to existing mouse endometrial organoids, we successfully developed ALI-mEnAOs that closely resemble the receptive phase of the mouse endometrium in vivo in LE structure, cellular phenotypes, gene expression profiles and dynamic hormonal responses. This study provides a reliable and valuable in vitro platform for investigating functions of the endometrium and embryo implantation.
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