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绒毛外滋养层细胞分化过程中的上皮-间质转化

Epithelial-mesenchymal transition during extravillous trophoblast differentiation.

作者信息

E Davies Jessica, Pollheimer Jürgen, Yong Hannah E J, Kokkinos Maria I, Kalionis Bill, Knöfler Martin, Murthi Padma

机构信息

a Department of Obstetrics and Gynecology , The University of Melbourne , Parkville , Victoria , Australia.

b Department of Maternal-Fetal Medicine Pregnancy Research Centre , The Royal Women's Hospital , Parkville , Victoria , Australia.

出版信息

Cell Adh Migr. 2016 May 3;10(3):310-21. doi: 10.1080/19336918.2016.1170258. Epub 2016 Apr 12.

Abstract

A successful pregnancy depends on the intricate and timely interactions of maternal and fetal cells. Placental extravillous cytotrophoblast invasion involves a cellular transition from an epithelial to mesenchymal phenotype. Villous cytotrophoblasts undergo a partial epithelial to mesenchymal transition (EMT) when differentiating into extravillous cytotrophoblasts and gain the capacity to migrate and invade. This review summarizes our current knowledge regarding known regulators of EMT in the human placenta, including the inducers of EMT, upstream transcription factors that control EMT and the downstream effectors, cell adhesion molecules and their differential expression and functions in pregnancy pathologies, preeclampsia (PE) and fetal growth restriction (FGR). The review also describes the research strategies that were used for the identification of the functional role of EMT targets in vitro. A better understanding of molecular pathways driven by placental EMT and further elucidation of signaling pathways underlying the developmental programs may offer novel strategies of targeted therapy for improving feto-placental growth in placental pathologies including PE and FGR.

摘要

成功的妊娠依赖于母体和胎儿细胞复杂而适时的相互作用。胎盘绒毛外细胞滋养层细胞的侵袭涉及从上皮表型到间充质表型的细胞转变。绒毛细胞滋养层细胞在分化为绒毛外细胞滋养层细胞时经历部分上皮-间充质转化(EMT),并获得迁移和侵袭能力。本综述总结了我们目前关于人胎盘中已知EMT调节因子的知识,包括EMT的诱导剂、控制EMT的上游转录因子和下游效应器、细胞粘附分子及其在妊娠病理、子痫前期(PE)和胎儿生长受限(FGR)中的差异表达和功能。该综述还描述了用于鉴定EMT靶点体外功能作用的研究策略。更好地理解胎盘EMT驱动的分子途径以及进一步阐明发育程序背后的信号通路,可能为改善包括PE和FGR在内的胎盘病理中的胎儿-胎盘生长提供新的靶向治疗策略。

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