Embryonic Self-Organization research group, Max Planck Institute for Molecular Biomedicine, Röntgenstraße 20, 48149 Münster, Germany.
Bioactive Materials Laboratory, Max Planck Institute for Molecular Biomedicine, Röntgenstraße 20, 48149 Münster, Germany.
Dev Cell. 2021 Dec 6;56(23):3276-3287.e8. doi: 10.1016/j.devcel.2021.10.014. Epub 2021 Nov 5.
The process of implantation and the cellular interactions at the embryo-maternal interface are intrinsically difficult to analyze, as the implanting embryo is concealed by the uterine tissues. Therefore, the mechanisms mediating the interconnection of the embryo and the mother are poorly understood. Here, we established a 3D biomimetic culture environment that harbors the key features of the murine implantation niche. This culture system enabled direct analysis of trophoblast invasion and revealed the first embryonic interactions with the maternal vasculature. We found that implantation is mediated by the collective migration of penetrating strands of trophoblast giant cells, which acquire the expression of vascular receptors, ligands, and adhesion molecules, assembling a network for communication with the maternal blood vessels. In particular, Pdgf signaling cues promote the establishment of the heterologous contacts. Together, the biomimetic platform and our findings thereof elucidate the hidden dynamics of the early interactions at the implantation site.
胚胎着床过程和胚胎-母体界面的细胞相互作用本质上难以分析,因为着床胚胎被子宫组织所隐藏。因此,介导胚胎和母体相互连接的机制还了解甚少。在这里,我们建立了一个 3D 仿生培养环境,其中包含了小鼠着床微环境的关键特征。该培养系统能够直接分析滋养层细胞的侵袭,并揭示了胚胎与母体血管的最初相互作用。我们发现,着床是通过滋养层巨细胞穿透丝的集体迁移来介导的,这些细胞获得了血管受体、配体和粘附分子的表达,形成了与母体血管进行通讯的网络。特别是,PDGF 信号提示促进了异源接触的建立。总之,仿生平台及其研究结果阐明了着床部位早期相互作用的隐藏动态。