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子宫内膜上皮细胞并列激活小鼠囊胚着床。

Apposition to endometrial epithelial cells activates mouse blastocysts for implantation.

机构信息

Maternal and Fetal Health Research Centre, Division of Developmental Biology and Medicine, School of Medical Sciences, Faculty of Biology, Medicine and Health, University of Manchester, Manchester Academic Health Sciences Centre, St. Mary's Hospital, Manchester M13 9WL, UK.

Maternal and Fetal Health Research Centre, St. Mary's Hospital, Central Manchester University Hospitals NHS Foundation Trust, Manchester Academic Health Sciences Centre, Manchester M13 9WL, UK.

出版信息

Mol Hum Reprod. 2017 Sep 1;23(9):617-627. doi: 10.1093/molehr/gax043.

Abstract

STUDY QUESTION

How do interactions between blastocyst-stage embryos and endometrial epithelial cells regulate the early stages of implantation in an in vitro model?

SUMMARY ANSWER

Mouse blastocyst apposition with human endometrial epithelial cells initiates trophectoderm differentiation to trophoblast, which goes on to breach the endometrial epithelium.

WHAT IS KNOWN ALREADY

In vitro models using mouse blastocysts and human endometrial cell lines have proven invaluable in the molecular characterisation of embryo attachment to endometrial epithelium at the onset of implantation. Genes involved in embryonic breaching of the endometrial epithelium have not been investigated in such in vitro models.

STUDY DESIGN, SIZE, DURATION: This study used an established in vitro model of implantation to examine cellular and molecular interactions during blastocyst attachment to endometrial epithelial cells.

PARTICIPANTS/MATERIALS, SETTING, METHODS: Mouse blastocysts developed from embryonic day (E) 1.5 in vitro were hatched and co-cultured with confluent human endometrial adenocarcinoma-derived Ishikawa cells in serum-free medium. A scale of attachment stability based on blastocyst oscillation upon agitation was devised. Blastocysts were monitored for 48 h to establish the kinetics of implantation, and optical sectioning using fluorescence microscopy revealed attachment and invasion interfaces. Quantitative PCR was used to determine blastocyst gene expression. Data from a total of 680 mouse blastocysts are reported, with 3-6 experimental replicates. T-test and ANOVA analyses established statistical significance at P < 0.05, P < 0.01 and P < 0.001.

MAIN RESULTS AND THE ROLE OF CHANCE

Hatched E4.5 mouse blastocysts exhibited weak attachment to confluent Ishikawa cells over the first 24 h of co-culture, with intermediate and stable attachment occurring from 28 h (E5.5 + 4 h) in a hormone-independent manner. Attached embryos fixed after 48 h (E6.5) frequently exhibited outgrowths, characterised morphologically and with antibody markers as trophoblast giant cells (TGCs), which had breached the Ishikawa cell layer. Beginning co-culture at E5.5 also resulted in intermediate and stable attachment from E5.5 + 4 h; however, these embryos did not go on to breach the Ishikawa cell layer, even when co-culture was extended to E7.5 (P < 0.01). Blastocysts cultured from E4.5 in permeable transwell inserts above Ishikawa cells before transfer to direct co-culture at E5.5 went on to attach but failed to breach the Ishikawa cell layer by E6.5 (P < 0.01). Gene expression analysis at E5.5 demonstrated that direct co-culture with Ishikawa cells from E4.5 resulted in downregulation of trophectoderm transcription factors Cdx2 (P < 0.05) and Gata3 (P < 0.05) and upregulation of the TGC transcription factor Hand1 (P < 0.05). Co-culture with non-endometrial human fibroblasts did not alter the expression of these genes.

LARGE SCALE DATA

None.

LIMITATIONS, REASONS FOR CAUTION: The in vitro model used here combines human carcinoma-derived endometrial cells with mouse embryos, in which the cellular interactions observed may not fully recapitulate those in vivo. The data gleaned from such models can be regarded as hypothesis-generating, and research is now needed to develop more sophisticated models of human implantation combining multiple primary endometrial cell types with surrogate and real human embryos.

WIDER IMPLICATIONS OF THE FINDINGS

This study implicates blastocyst apposition to endometrial epithelial cells as a critical step in trophoblast differentiation required for implantation. Understanding this maternal regulation of the embryonic developmental programme may lead to novel treatments for infertility.

STUDY FUNDING AND COMPETING INTEREST(S): This work was supported by funds from the charities Wellbeing of Women (RG1442) and Diabetes UK (15/0005207), and studentship support for SCB from the Anatomical Society. No conflict of interest is declared.

摘要

研究问题

在体外模型中,囊胚期胚胎和子宫内膜上皮细胞之间的相互作用如何调节着床的早期阶段?

总结答案

小鼠囊胚与人类子宫内膜上皮细胞的贴附启动滋养外胚层的分化,进而突破子宫内膜上皮。

已知情况

使用小鼠囊胚和人子宫内膜细胞系的体外模型已被证明在胚胎附着到着床起始时的子宫内膜上皮的分子特征方面非常有价值。在这些体外模型中,尚未研究涉及胚胎突破子宫内膜上皮的基因。

研究设计、规模、持续时间:本研究使用已建立的着床体外模型来研究囊胚附着到子宫内膜上皮细胞过程中的细胞和分子相互作用。

参与者/材料、设置、方法:体外培养的胚胎 E1.5 发育的小鼠囊胚孵化后与无血清培养基中的人子宫内膜腺癌衍生的 Ishikawa 细胞共培养。根据胚胎在搅拌时的摆动稳定性设计了附着稳定性的等级。监测囊胚 48 小时以建立着床动力学,并使用荧光显微镜的光学切片显示附着和侵袭界面。使用定量 PCR 确定囊胚的基因表达。报告了总共 680 个小鼠囊胚的数据,有 3-6 个实验重复。T 检验和 ANOVA 分析在 P < 0.05、P < 0.01 和 P < 0.001 时确定了统计学意义。

主要结果和机会的作用

孵化的 E4.5 小鼠囊胚在共培养的前 24 小时内与汇合的 Ishikawa 细胞表现出弱附着,在激素非依赖性的情况下,从 28 小时(E5.5+4 小时)开始表现出中间和稳定的附着。在 48 小时(E6.5)固定的附着胚胎经常表现出突起,其形态学和抗体标记特征为滋养层巨细胞(TGC),已突破 Ishikawa 细胞层。从 E5.5 开始共培养也导致中间和稳定的附着从 E5.5+4 小时开始;然而,这些胚胎并没有继续突破 Ishikawa 细胞层,即使共培养延长到 E7.5(P < 0.01)。在转移到 E5.5 直接共培养之前,在 Ishikawa 细胞上方的可渗透 Transwell 插入物中培养的从 E4.5 发育的囊胚继续附着,但在 E6.5 时未能突破 Ishikawa 细胞层(P < 0.01)。E5.5 时的基因表达分析表明,与 E4.5 的 Ishikawa 细胞直接共培养导致滋养外胚层转录因子 Cdx2(P < 0.05)和 Gata3(P < 0.05)下调,以及 TGC 转录因子 Hand1(P < 0.05)上调。与非子宫内膜人成纤维细胞共培养不会改变这些基因的表达。

大数据

无。

局限性、谨慎的原因:这里使用的体外模型结合了人癌衍生的子宫内膜细胞和小鼠胚胎,其中观察到的细胞相互作用可能无法完全再现体内的相互作用。从这些模型中获得的数据可以被视为假设生成,现在需要开发更复杂的结合多种原发性子宫内膜细胞类型和替代物和真实人类胚胎的人类着床模型。

研究结果的更广泛意义

本研究表明囊胚与子宫内膜上皮细胞的贴附是植入所需的滋养外胚层分化的关键步骤。了解这种母体对胚胎发育计划的调节可能会导致不孕的新治疗方法。

研究资金和竞争利益

这项工作得到了 Wellbeing of Women(RG1442)和糖尿病英国(15/0005207)慈善机构的资助,以及学生奖学金支持,用于支持 SCB 的解剖学会。没有利益冲突声明。

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