An Hsp27-related, dominant-negative-acting intracellular estradiol-binding protein

Hong Chen1, Martin Hewison, Bing Hu

  • 1Division of Endocrinology, Diabetes, and Metabolism, Cedars-Sinai Medical Center, UCLA School of Medicine, Los Angeles, California 90048, USA.

Insights

New World primates resist estrogen due to an intracellular estradiol-binding protein (IEBP) that interacts with the estrogen receptor (ER). This IEBP protein inhibits estrogen signaling, contributing to hormone resistance in these species.

Area of Science:

  • Endocrinology
  • Molecular Biology
  • Primate Biology

Background:

  • New World primates (NWPs) display inherent resistance to gonadal steroid hormones.
  • Estrogen resistance in NWP cells is linked to overexpression of ERE-binding protein (ERE-BP) and intracellular estradiol-binding protein (IEBP).

Purpose of the Study:

  • To clone and characterize the intracellular estradiol-binding protein (IEBP) involved in estrogen resistance in New World primates.
  • To elucidate the mechanism by which IEBP contributes to estrogen resistance by examining its interaction with the estrogen receptor (ER).

Main Methods:

  • Cloning of IEBP cDNA from an estrogen-resistant NWP cell line (B95-8).
  • Transient transfection assays in hormone-responsive Old World primate (OWP) cells to assess IEBP's effect on ERE reporter activity.
  • Co-immunoprecipitation, glutathione S-transferase pull-down, and yeast two-hybrid assays to investigate protein-protein interactions between IEBP and ERalpha.

Main Results:

  • IEBP shares 87% sequence identity with human Hsp27.
  • Transfection of IEBP cDNA into OWP cells significantly reduced E2-directed ERE reporter luciferase activity by 50%.
  • IEBP interacts with the ligand-binding domain of ERalpha, inhibiting ERalpha-E2 interaction and ERalpha-directed transactivation.

Conclusions:

  • IEBP is a key mediator of estrogen resistance in New World primates.
  • IEBP functions by physically interacting with ERalpha, thereby blocking estrogen signaling pathways.
  • The findings provide a molecular basis for understanding hormone resistance mechanisms in primates.

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