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Vertebrate reproductive science and technology
RESEARCH ARTICLE

Role of epithelial–mesenchymal transition regulated by twist basic helix-loop-helix transcription factor 2 (Twist2) in embryo implantation in mice

Jinhai Gou https://orcid.org/0000-0002-2706-8094 A B * , Tingwenyi Hu A B * , Lin Li A B , Luqi Xue A B , Xia Zhao A B C , Tao Yi B C and Zhengyu Li A B D
+ Author Affiliations
- Author Affiliations

A Department of Gynecology and Obstetrics, West China Second University Hospital, Sichuan University, Chengdu 610041, Sichuan Province, PR China.

B Key Laboratory of Birth Defects and Related Diseases of Women and Children (Sichuan University), Ministry of Education, Chengdu 610041, Sichuan Province, PR China.

C Sichuan Key Laboratory of Gynecologic Oncology, West China Second University Hospital, Sichuan University, Chengdu 610041, Sichuan Province, PR China.

D Corresponding author. Email: zhengyuli@scu.edu.cn

Reproduction, Fertility and Development 31(5) 932-940 https://doi.org/10.1071/RD18314
Submitted: 14 November 2018  Accepted: 19 December 2018   Published: 20 February 2019

Abstract

In a previous study we found the expression of epithelial–mesenchymal transition (EMT) biomarkers, including E-cadherin and N-cadherin, was significantly altered in uterine endometrium during embryo implantation via regulation by microRNA (miRNA)-429 and protocadherin-8 (Pcdh8). As a natural continuation of the previous study, the aim of the present study was to explore the role of EMT during embryo implantation and the potential activity of twist basic helix-loop-helix transcription factor 2 (Twist2) in regulating embryo implantation. A pregnancy model was established by naturally mating adult female ICR mice with fertile males. A pseudopregnancy model was established by mating fertile female ICR mice with vasectomised males. An in vitro model of embryo implantation was established by the coculture of Ishikawa and JAR spheroids. Endometrial tissue during the peri-implantation period was collected, as were Ishikawa cells, JAR cells and cocultured cells. The expression of EMT markers (E-cadherin, N-cadherin, vimentin and cytokeratin) and Twist2 was detected in vivo and in vitro using the western blot analysis during embryo implantation. The expression of N-cadherin and vimentin (mesenchymal markers) was upregulated in the in vitro implantation model, with downregulation of E-cadherin and cytokeratin (epithelial markers) expression. The expression of N-cadherin, vimentin and Twist2 increased significantly at the implantation sites at the time of implantation (Day 5), whereas the expression of E-cadherin and cytokeratin decreased. Location of Twist2 during embryo implantation was detected by immunohistochemistry (IHC), which revealed that it was extensively expressed in endometrial glandular epithelium and luminal epithelium at implantation sites on Day 5. The effect of the expression of Twist2 on embryo implantation was evaluated by suppressing Twist2 using Twist2-short interference (si) RNA in in vivo and in vitro models. The numbers of implanted embryos and the implantation rate were compared in vivo and in vitro. Western blot analysis showed that suppression of Twist2 led to upregulation of E-cadherin and cytokeratin, accompanied by downregulation of N-cadherin and vimentin (P < 0.05). The number of implanted embryos after Twist2-siRNA interference was lower than in normal pregnancy (mean (± s.d.) 2.4 ± 0.5 vs 6.8 ± 1.3 respectively; P < 0.05). These findings suggest the involvement of EMT in embryo implantation. The suppression of Twist2 could suppress embryo implantation by regulating EMT.

Additional keywords: in vitro implantation assay, short interference RNA.


References

Acloque, H., Adams, M. S., Fishwick, K., Bronner-Fraser, M., and Nieto, M. A. (2009). Epithelial–mesenchymal transitions: the importance of changing cell state in development and disease. J. Clin. Invest. 119, 1438–1449.
Epithelial–mesenchymal transitions: the importance of changing cell state in development and disease.Crossref | GoogleScholarGoogle Scholar | 19487820PubMed |

Aplin, J. D. (2006). Embryo implantation: the molecular mechanism remains elusive. Reprod. Biomed. Online 13, 833–839.
Embryo implantation: the molecular mechanism remains elusive.Crossref | GoogleScholarGoogle Scholar | 17169205PubMed |

Cha, J., Sun, X., and Dey, S. K. (2012). Mechanisms of implantation: strategies for successful pregnancy. Nat. Med. 18, 1754–1767.
Mechanisms of implantation: strategies for successful pregnancy.Crossref | GoogleScholarGoogle Scholar | 23223073PubMed |

Davidson, L. M., and Coward, K. (2016). Molecular mechanisms of membrane interaction at implantation. Birth Defects Res. C Embryo Today 108, 19–32.
Molecular mechanisms of membrane interaction at implantation.Crossref | GoogleScholarGoogle Scholar | 26969610PubMed |

Dey, S. K., Lim, H., Das, S. K., Reese, J., Paria, B. C., Daikoku, T., and Wang, H. (2004). Molecular cues to implantation. Endocr. Rev. 25, 341–373.
Molecular cues to implantation.Crossref | GoogleScholarGoogle Scholar | 15180948PubMed |

Dimitriadis, E., White, C. A., Jones, R. L., and Salamonsen, L. A. (2005). Cytokines, chemokines and growth factors in endometrium related to implantation. Hum. Reprod. Update 11, 613–630.
Cytokines, chemokines and growth factors in endometrium related to implantation.Crossref | GoogleScholarGoogle Scholar | 16006437PubMed |

Du, F., Yang, R., Ma, H. L., Wang, Q. Y., and Wei, S. L. (2009). Expression of transcriptional repressor Slug gene in mouse endometrium and its effect during embryo implantation. Appl. Biochem. Biotechnol. 157, 346–355.
Expression of transcriptional repressor Slug gene in mouse endometrium and its effect during embryo implantation.Crossref | GoogleScholarGoogle Scholar | 19172233PubMed |

Galván, J. A., Helbling, M., Koelzer, V. H., Tschan, M. P., Berger, M. D., Hädrich, M., Schnüriger, B., Karamitopoulou, E., Dawson, H., Inderbitzin, D., Lugli, A., and Zlobec, I. (2015). TWIST1 and TWIST2 promoter methylation and protein expression in tumor stroma influence the epithelial–mesenchymal transition-like tumor budding phenotype in colorectal cancer. Oncotarget 6, 874–885.
TWIST1 and TWIST2 promoter methylation and protein expression in tumor stroma influence the epithelial–mesenchymal transition-like tumor budding phenotype in colorectal cancer.Crossref | GoogleScholarGoogle Scholar | 25528769PubMed |

Gou, J., Jia, J., Zhao, X., Yi, T., and Li, Z. (2015). Identification of stathmin 1 during peri-implantation period in mouse endometrium by a proteomics-based analysis. Biochem. Biophys. Res. Commun. 461, 211–216.
Identification of stathmin 1 during peri-implantation period in mouse endometrium by a proteomics-based analysis.Crossref | GoogleScholarGoogle Scholar | 25866183PubMed |

Gou, J., Jia, J., Feng, J., Zhao, X., Yi, T., Cui, T., and Li, Z. (2017). Stathmin 1 plays a role in endometrial decidualisation by regulating hypoxia inducible factor-1α and vascular endothelial growth factor during embryo implantation. Reprod. Fertil. Dev. 29, 1530–1537.
Stathmin 1 plays a role in endometrial decidualisation by regulating hypoxia inducible factor-1α and vascular endothelial growth factor during embryo implantation.Crossref | GoogleScholarGoogle Scholar | 27456758PubMed |

Harun, R., Ruban, L., Matin, M., Draper, J., Jenkins, N. M., Liew, G. C., Andrews, P. W., Li, T. C., Laird, S. M., and Moore, H. D. (2006). Cytotrophoblast stem cell lines derived from human embryonic stem cells and their capacity to mimic invasive implantation events. Hum. Reprod. 21, 1349–1358.
Cytotrophoblast stem cell lines derived from human embryonic stem cells and their capacity to mimic invasive implantation events.Crossref | GoogleScholarGoogle Scholar | 16478759PubMed |

Illingworth, I. M., Kiszka, I., Bagley, S., Ireland, G. W., Garrod, D. R., and Kimber, S. J. (2000). Desmosomes are reduced in the mouse uterine luminal epithelium during the preimplantation period of pregnancy: a mechanism for facilitation of implantation. Biol. Reprod. 63, 1764–1773.
Desmosomes are reduced in the mouse uterine luminal epithelium during the preimplantation period of pregnancy: a mechanism for facilitation of implantation.Crossref | GoogleScholarGoogle Scholar | 11090447PubMed |

Jimenez, P. T., Mainigi, M. A., Word, R. A., Kraus, W. L., and Mendelson, C. R. (2016). miR-200 regulates endometrial development during early pregnancy. Mol. Endocrinol. 30, 977–987.
miR-200 regulates endometrial development during early pregnancy.Crossref | GoogleScholarGoogle Scholar | 27533790PubMed |

Kalluri, R., and Weinberg, R. A. (2009). The basics of epithelial–mesenchymal transition. J. Clin. Invest. 119, 1420–1428.
The basics of epithelial–mesenchymal transition.Crossref | GoogleScholarGoogle Scholar | 19487818PubMed |

Koot, Y. E., Teklenburg, G., Salker, M. S., Brosens, J. J., and Macklon, N. S. (2012). Molecular aspects of implantation failure. Biochim. Biophys. Acta 1822, 1943–1950.
Molecular aspects of implantation failure.Crossref | GoogleScholarGoogle Scholar | 22683339PubMed |

Li, Y., Wang, W., Wang, W., Yang, R., Wang, T., Su, T., Weng, D., Tao, T., Li, W., Ma, D., and Wang, S. (2012). Correlation of TWIST2 up-regulation and epithelial–mesenchymal transition during tumorigenesis and progression of cervical carcinoma. Gynecol. Oncol. 124, 112–118.
Correlation of TWIST2 up-regulation and epithelial–mesenchymal transition during tumorigenesis and progression of cervical carcinoma.Crossref | GoogleScholarGoogle Scholar | 22018873PubMed |

Li, Z., Gou, J., Jia, J., and Zhao, X. (2015). MicroRNA-429 functions as a regulator of epithelial–mesenchymal transition by targeting Pcdh8 during murine embryo implantation. Hum. Reprod. 30, 507–518.
MicroRNA-429 functions as a regulator of epithelial–mesenchymal transition by targeting Pcdh8 during murine embryo implantation.Crossref | GoogleScholarGoogle Scholar | 25609238PubMed |

Li, X., Yang, J., Wang, X., Li, X., Liang, J., and Xing, H. (2016). Role of TWIST2, E-cadherin and vimentin in epithelial ovarian carcinogenesis and prognosis and their interaction in cancer progression. Eur. J. Gynaecol. Oncol. 37, 100–108.
| 27048119PubMed |

Liu, A. Y., Cai, Y., Mao, Y., Lin, Y., Zheng, H., Wu, T., Huang, Y., Fang, X., Lin, S., Feng, Q., Huang, Z., Yang, T., Luo, Q., and Ouyang, G. (2014). Twist2 promotes self-renewal of liver cancer stem-like cells by regulating CD24. Carcinogenesis 35, 537–545.
Twist2 promotes self-renewal of liver cancer stem-like cells by regulating CD24.Crossref | GoogleScholarGoogle Scholar | 24193512PubMed |

Ma, X. H., Hu, S. J., Yu, H., Xu, L. B., and Yang, Z. M. (2006). Differential expression of transcriptional repressor snail gene at implantation site in mouse uterus. Mol. Reprod. Dev. 73, 133–141.
Differential expression of transcriptional repressor snail gene at implantation site in mouse uterus.Crossref | GoogleScholarGoogle Scholar | 16261611PubMed |

Margalioth, E. J., Ben-Chetrit, A., Gal, M., and Eldar-Geva, T. (2006). Investigation and treatment of repeated implantation failure following IVF-ET. Hum. Reprod. 21, 3036–3043.
Investigation and treatment of repeated implantation failure following IVF-ET.Crossref | GoogleScholarGoogle Scholar | 16905766PubMed |

Murphy, C. R., Swift, J. G., Mukherjee, T. M., and Rogers, A. W. (1982). The structure of tight junctions between uterine luminal epithelial-cells at different stages of pregnancy in the rat. Cell Tissue Res. 223, 281–286.
The structure of tight junctions between uterine luminal epithelial-cells at different stages of pregnancy in the rat.Crossref | GoogleScholarGoogle Scholar | 7066976PubMed |

Paria, B. C., Huet-Hudson, Y. M., and Dey, S. K. (1993). Blastocyst’s state of activity determines the ‘window’ of implantation in the receptive mouse uterus. Proc. Natl Acad. Sci. USA 90, 10159–10162.
Blastocyst’s state of activity determines the ‘window’ of implantation in the receptive mouse uterus.Crossref | GoogleScholarGoogle Scholar | 8234270PubMed |

Paria, B. C., Lim, H., Das, S. K., Reese, J., and Dey, S. K. (2000). Molecular signaling in uterine receptivity for implantation. Semin. Cell Dev. Biol. 11, 67–76.
Molecular signaling in uterine receptivity for implantation.Crossref | GoogleScholarGoogle Scholar | 10873704PubMed |

Paria, B. C., Reese, J., Das, S. K., and Dey, S. K. (2002). Deciphering the cross-talk of implantation: advances and challenges. Science 296, 2185–2188.
Deciphering the cross-talk of implantation: advances and challenges.Crossref | GoogleScholarGoogle Scholar | 12077405PubMed |

Pollard, R. M., and Finn, C. A. (1974). Influence of the trophoblast upon differentiation of the uterine epithelium during implantation in the mouse. J. Endocrinol. 62, 669–NP.
Influence of the trophoblast upon differentiation of the uterine epithelium during implantation in the mouse.Crossref | GoogleScholarGoogle Scholar | 4413875PubMed |

Sozen, B., Pehlivanoglu, S., and Demir, N. (2016). Differential expression pattern of Twist1 in mouse preimplantation embryos suggests its multiple roles during early development. J. Assist. Reprod. Genet. 33, 1533–1540.
Differential expression pattern of Twist1 in mouse preimplantation embryos suggests its multiple roles during early development.Crossref | GoogleScholarGoogle Scholar | 27544279PubMed |

Thiery, J. P., and Sleeman, J. P. (2006). Complex networks orchestrate epithelial–mesenchymal transitions. Nat. Rev. Mol. Cell Biol. 7, 131–142.
Complex networks orchestrate epithelial–mesenchymal transitions.Crossref | GoogleScholarGoogle Scholar | 16493418PubMed |

Thiery, J. P., Acloque, H., Huang, R. Y., and Nieto, M. A. (2009). Epithelial–mesenchymal transitions in development and disease. Cell 139, 871–890.
Epithelial–mesenchymal transitions in development and disease.Crossref | GoogleScholarGoogle Scholar | 19945376PubMed |

Uchida, H., Maruyama, T., Nishikawa-Uchida, S., Oda, H., Miyazaki, K., Yamasaki, A., and Yoshimura, Y. (2012). Studies using an in vitro model show evidence of involvement of epithelial–mesenchymal transition of human endometrial epithelial cells in human embryo implantation. J. Biol. Chem. 287, 4441–4450.
Studies using an in vitro model show evidence of involvement of epithelial–mesenchymal transition of human endometrial epithelial cells in human embryo implantation.Crossref | GoogleScholarGoogle Scholar | 22174415PubMed |

Uchida, H., Maruyama, T., Masuda, H., Uchida, S., Miki, F., Hihara, H., Katakura, S., Yoshimasa, Y., and Tanaka, M. (2016). How to create an embryo penetration route. Am. J. Reprod. Immunol. 75, 326–332.
How to create an embryo penetration route.Crossref | GoogleScholarGoogle Scholar | 26732539PubMed |

Wang, T., Li, Y., Tuerhanjiang, A., Wang, W., Wu, Z., Yuan, M., Maitituoheti, M., and Wang, S. (2014a). Twist2 contributes to cisplatin-resistance of ovarian cancer through the AKT/GSK-3beta signaling pathway. Oncol. Lett. 7, 1102–1108.
Twist2 contributes to cisplatin-resistance of ovarian cancer through the AKT/GSK-3beta signaling pathway.Crossref | GoogleScholarGoogle Scholar | 24944676PubMed |

Wang, T., Li, Y., Wang, W., Tuerhanjiang, A., Wu, Z., Yang, R., Yuan, M., Ma, D., Wang, W., and Wang, S. (2014b). Twist2, the key Twist isoform related to prognosis, promotes invasion of cervical cancer by inducing epithelial–mesenchymal transition and blocking senescence. Hum. Pathol. 45, 1839–1846.
Twist2, the key Twist isoform related to prognosis, promotes invasion of cervical cancer by inducing epithelial–mesenchymal transition and blocking senescence.Crossref | GoogleScholarGoogle Scholar | 24974259PubMed |

Zeisberg, M., and Neilson, E. G. (2009). Biomarkers for epithelial–mesenchymal transitions. J. Clin. Invest. 119, 1429–1437.
Biomarkers for epithelial–mesenchymal transitions.Crossref | GoogleScholarGoogle Scholar | 19487819PubMed |