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Updated: Aug 17, 2025

Isolation of Human Endometrial Stromal Cells for In Vitro Decidualization
Published on: September 1, 2018
Decidualization of human endometrial stromal cells requires steroid receptor coactivator-3
Vineet K Maurya1, Maria M Szwarc1, David M Lonard1
1Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, TX, United States.
Abstract:
Steroid receptor coactivator-3 (SRC-3; also known as NCOA3 or AIB1) is a member of the multifunctional p160/SRC family of coactivators, which also includes SRC-1 and SRC-2. Clinical and cell-based studies as well as investigations on mice have demonstrated pivotal roles for each SRC in numerous physiological and pathophysiological contexts, underscoring their functional pleiotropy. We previously demonstrated the critical involvement of SRC-2 in murine embryo implantation as well as in human endometrial stromal cell (HESC) decidualization, a cellular transformation process required for trophoblast invasion and ultimately placentation. We show here that, like SRC-2, SRC-3 is expressed in the epithelial and stromal cellular compartments of the human endometrium during the proliferative and secretory phase of the menstrual cycle as well as in cultured HESCs. We also found that SRC-3 depletion in cultured HESCs results in a significant attenuation in the induction of a wide-range of established biomarkers of decidualization, despite exposure of these cells to a deciduogenic stimulus and normal progesterone receptor expression. These molecular findings are supported at the cellular level by the inability of HESCs to morphologically transform from a stromal fibroblastoid cell to an epithelioid decidual cell when endogenous SRC-3 levels are markedly reduced. To identify genes, signaling pathways and networks that are controlled by SRC-3 and potentially important for hormone-dependent decidualization, we performed RNA-sequencing on HESCs in which SRC-3 levels were significantly reduced at the time of administering the deciduogenic stimulus. Comparing HESC controls with HESCs deficient in SRC-3, gene enrichment analysis of the differentially expressed gene set revealed an overrepresentation of genes involved in chromatin remodeling, cell proliferation/motility, and programmed cell death. These predictive bioanalytic results were confirmed by the demonstration that SRC-3 is required for the expansion, migratory and invasive activities of the HESC population, cellular properties that are required in vivo in the formation or functioning of the decidua. Collectively, our results support SRC-3 as an important coregulator in HESC decidualization. Since perturbation of normal homeostatic levels of SRC-3 is linked with common gynecological disorders diagnosed in reproductive age women, this endometrial coregulator-along with its new molecular targets described here-may open novel clinical avenues in the diagnosis and/or treatment of a non-receptive endometrium, particularly in patients presenting non-aneuploid early pregnancy loss.
Insights
Steroid receptor coactivator-3 (SRC-3) is crucial for human endometrial decidualization, impacting cell transformation, proliferation, and invasion. Its deficiency impairs key decidualization biomarkers and cellular functions, suggesting a role in early pregnancy loss.
Area of Science:
- Reproductive biology and endocrinology
- Molecular and cellular biology
- Gynecological health
Background:
- Steroid receptor coactivator-3 (SRC-3) is a key coactivator in the p160/SRC family, involved in various physiological processes.
- Previous studies highlighted SRC-2's role in embryo implantation and human endometrial stromal cell (HESC) decidualization.
- SRC-3 expression and function in the human endometrium and HESC decidualization remain to be fully elucidated.
Purpose of the Study:
- To investigate the expression and function of SRC-3 in human endometrial stromal cells (HESCs) during decidualization.
- To determine the impact of SRC-3 depletion on HESC decidualization biomarkers and cellular behaviors.
- To identify SRC-3-regulated genes, pathways, and networks involved in hormone-dependent decidualization.
Main Methods:
- SRC-3 expression analysis in human endometrium and cultured HESCs.
- SRC-3 depletion in HESCs using RNA interference.
- Assessment of decidualization biomarkers, progesterone receptor expression, and HESC morphology.
- RNA-sequencing to identify SRC-3-regulated genes and pathways.
- Evaluation of HESC expansion, migration, and invasion.
Main Results:
- SRC-3 is expressed in human endometrial epithelial and stromal cells and in cultured HESCs.
- SRC-3 depletion significantly attenuates decidualization biomarkers and HESC morphological transformation.
- RNA-sequencing revealed SRC-3 regulates genes involved in chromatin remodeling, cell proliferation/motility, and programmed cell death.
- SRC-3 is essential for HESC expansion, migration, and invasion, critical for decidua formation.
Conclusions:
- SRC-3 acts as an important coregulator in human endometrial stromal cell decidualization.
- SRC-3 regulates key cellular processes including proliferation, motility, and invasion necessary for decidua development.
- Dysregulation of SRC-3 may contribute to gynecological disorders and non-receptive endometrium, offering potential diagnostic and therapeutic targets.
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