Extravillous trophoblasts reverse the decidualization induced increase in matrix production by secreting TGFβ antagonists Emilin-1 and Gremlin-1

IF 3.9 4区 生物学 Q4 Biochemistry, Genetics and Molecular Biology Cells and Development Pub Date : 2025-01-03 DOI:10.1016/j.cdev.2025.203994
Yasir Suhail , Yamin Liu , Junaid Afzal , Wenqiang Du , Paul Robson , Ashkan Novin , Ramalakshmi Ramasamy , Kshitiz
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Abstract

The maternal-fetal interface has long been considered as a frontier for an evolutionary arms race due to the close juxtaposition of genetically distinct tissues. In hemochorial species with deep placental invasion, including in humans, maternal stroma prepares its defenses against deep trophoblast invasion by decidualization, a differentiation process characterized by increased stromal cell matrix production, and contractile force generation. Decidualization has evolved from an ancestral wound healing response of fibroblast activation by the endometrial stroma. On the placental side, a new trophoblast cell type in great apes has recently evolved, called extravillous trophoblast (EVT), with an exceptionally high invasive capability. Using HTR8, and differentiated EVTs from trophectodermal stem cells, we show that EVTs partly counter decidual myofibroblast activation derived defenses. This reversal in decidual defenses is achieved by secreted antagonists of Transforming Growth Factor β/Bone morphogenic pathway, specifically Emilin-1 and Gremlin-1. Emilin-1 and Gremlin-1 reverse TGFβ activation in decidual cells, reducing high collagen production, and expression of genes associated with myofibroblast transformation. We also show that these secreted TGFβ antagonists can functionally reverse acquired decidual resistance to trophoblast invasion. As our work highlights new mechanisms evolved by trophoblasts to regulate stromal invasibility, it has broader implications in other invasive processes, including wound healing, and cancer metastasis.
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外滋养细胞通过分泌tgf - β拮抗剂Emilin-1和Gremlin-1逆转去人格化诱导的基质生成增加。
母胎界面长期以来一直被认为是进化军备竞赛的前沿,因为遗传上不同的组织紧密并列。在胎盘深侵的造血物种中,包括人类,母细胞间质通过脱胞来防御深层滋养细胞的侵袭,这是一个分化过程,其特征是间质细胞基质的产生增加,收缩力的产生。去个体化是从子宫内膜间质激活成纤维细胞的远古伤口愈合反应演变而来的。在胎盘方面,类人猿最近进化出一种新的滋养细胞类型,称为外绒毛滋养细胞(EVT),具有异常高的侵袭能力。利用HTR8,并从滋养外胚层干细胞中分化evt,我们发现evt部分对抗蜕膜肌成纤维细胞激活引发的防御。这种个体防御的逆转是由转化生长因子β/骨形态发生途径的分泌拮抗剂实现的,特别是Emilin-1和Gremlin-1。Emilin-1和Gremlin-1逆转蜕细胞中tgf - β的激活,减少高胶原蛋白的产生,以及与肌成纤维细胞转化相关的基因的表达。我们还发现这些分泌的TGFβ拮抗剂可以在功能上逆转获得性蜕膜细胞对滋养细胞侵袭的抗性。由于我们的工作强调了滋养细胞调节基质侵袭性的新机制,它在其他侵袭性过程中具有更广泛的意义,包括伤口愈合和癌症转移。
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来源期刊
Cells and Development
Cells and Development Biochemistry, Genetics and Molecular Biology-Developmental Biology
CiteScore
2.90
自引率
0.00%
发文量
33
审稿时长
41 days
期刊最新文献
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