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.

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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