4.6 Article

Trophoblast derived extracellular vesicles specifically alter the transcriptome of endometrial cells and may constitute a critical component of embryo-maternal communication

期刊

出版社

BMC
DOI: 10.1186/s12958-021-00801-5

关键词

Embryo-maternal communication; Extracellular vesicles; miRNA signalling; RNA-sequencing

资金

  1. European Union's Horizon 2020 research and innovation programme [668989]
  2. European Union's Horizon 2020 research and innovation programme under COMBIVET ERA Chair grant [857418]
  3. Estonian Ministry of Education and Research [IUT34-16]
  4. Enterprise Estonia [EU48695]
  5. European Commission Horizon 2020 research and innovation programme [692065]
  6. MSCA-RISE-2015 project MOMENDO [691058]
  7. University of Tartu

向作者/读者索取更多资源

The study demonstrates that trophoblast-derived EVs have the capability to modify the gene expression of endometrial cells, particularly in the aspects of extracellular matrix remodeling and G protein-coupled receptors signaling. These alterations may play a significant role in embryo-maternal communication during implantation.
Background The period of time when the embryo and the endometrium undergo significant morphological alterations to facilitate a successful implantation-known as window of implantation-is a critical moment in human reproduction. Embryo and the endometrium communicate extensively during this period, and lipid bilayer bound nanoscale extracellular vesicles (EVs) are purported to be integral to this communication. Methods To investigate the nature of the EV-mediated embryo-maternal communication, we have supplemented trophoblast analogue spheroid (JAr) derived EVs to an endometrial analogue (RL 95-2) cell layer and characterized the transcriptomic alterations using RNA sequencing. EVs derived from non-trophoblast cells (HEK293) were used as a negative control. The cargo of the EVs were also investigated through mRNA and miRNA sequencing. Results Trophoblast spheroid derived EVs induced drastic transcriptomic alterations in the endometrial cells while the non-trophoblast cell derived EVs failed to induce such changes demonstrating functional specificity in terms of EV origin. Through gene set enrichment analysis (GSEA), we found that the response in endometrial cells was focused on extracellular matrix remodelling and G protein-coupled receptors' signalling, both of which are of known functional relevance to endometrial receptivity. Approximately 9% of genes downregulated in endometrial cells were high-confidence predicted targets of miRNAs detected exclusively in trophoblast analogue-derived EVs, suggesting that only a small proportion of reduced expression in endometrial cells can be attributed directly to gene silencing by miRNAs carried as cargo in the EVs. Conclusion Our study reveals that trophoblast derived EVs have the ability to modify the endometrial gene expression, potentially with functional importance for embryo-maternal communication during implantation, although the exact underlying signalling mechanisms remain to be elucidated.

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