4.2 Article

SIRT1 suppresses in vitro decidualization of human endometrial stromal cells through the downregulation of forkhead box O1 expression

Journal

REPRODUCTIVE BIOLOGY
Volume 22, Issue 3, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.repbio.2022.100672

Keywords

SIRT1; Decidualization; ForkheadboxO1; Prolactin; Insulin-likegrowthfactor-bindingprotein1

Funding

  1. National Research Foundation of Korea (NRF) - Ministry of Education, Science and Technology (MEST) [NRF-2017R1A6A1A03015713]

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SIRT1 inhibits decidualization of human endometrial stromal cells by suppressing FOXO1 expression.
SIRT1 regulates survival, DNA repair, and metabolism in human cells and has pleiotropic effects on age-related diseases through either deacetylating target proteins or inhibiting gene transcription. Forkhead box O1 (FOXO1) is one of the most important transcription factors during decidualization. Prolactin (PRL) and insulin-like growth factor-binding protein 1 (IGFBP1) are well-known FOXO1-dependent genes in decidualizing cells. To determine whether SIRT1 plays a role in decidualization, we investigated morphological changes in cells following artifi-cially stimulated decidualization and expression levels of PRL, IGFBP1, and FOXO1 in the immortalized non -neoplastic human endometrial stromal cell line T HESCs. SIRT1 expression decreased in the decidualization condition and SIRT1 inhibited morphological changes caused by decidualization of T HESCs. SIRT1 suppressed PRL, IGFBP1, and FOXO1 expression; inhibited FOXO1, PRL, and IGFBP1 promoter activity; and decreased histone protein acetylation of the FOXO1 promoter. We found that FOXO1 expression increased in the secretory phase compared with the proliferative phase, whereas SIRT1 expression decreased in the secretory phase in the human endometrium. We also revealed that SIRT1 may inhibit embryo implantation according to the blastocyst-like spheroid implantation assay. Collectively, these results indicate that SIRT1 suppresses decidualization of human endometrial stromal cells by inhibiting FOXO1 expression.

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