Selective hormone-dependent repression of estrogen receptor beta by a p38-activated ErbB2/ErbB3 pathway

Véronique St-Laurent1, Mélanie Sanchez, Catherine Charbonneau

  • 1Ste-Justine Hospital Research Center, 3175 Cote Ste-Catherine, Montreal, Que., Canada H3T 1C5.

Insights

ErbB2 signaling impacts estrogen receptor beta (ERbeta) activity in breast cancer cells, unlike ERalpha. This study reveals ErbB2

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Signaling

Background:

  • Deregulated ErbB2 signaling is linked to hormone resistance in ERalpha-positive breast cancers.
  • The role of ErbB2 signaling in modulating estrogen receptor beta (ERbeta) activity is less understood.

Purpose of the Study:

  • To investigate how ErbB2 signaling affects ERbeta activity in estrogen receptor-expressing breast cancer cells.
  • To elucidate the specific pathways and domains involved in ErbB2-mediated regulation of ERbeta.

Main Methods:

  • Activation of ErbB2/ErbB3 signaling using heregulin beta or a constitutively active ErbB2 mutant.
  • Analysis of estrogen-dependent transcriptional activity and promoter occupancy of ERbeta.
  • Investigating the role of the p38 MAPK pathway and ERbeta's AF-1 domain, including phosphorylation sites (Ser106, Ser124) and SRC-1 recruitment.

Main Results:

  • ErbB2 signaling alters ERbeta transcriptional activity similarly to ERalpha.
  • The p38 MAPK pathway mediates ErbB2-induced repression of liganded ERbeta activity.
  • ERbeta's AF-1 domain, specifically serines 106 and 124, is crucial for this repression, affecting SRC-1 recruitment.

Conclusions:

  • Establishes a functional link between ERbeta and ErbB receptors in breast cancer.
  • Highlights the differential regulation of ERalpha and ERbeta by growth factor signaling.
  • Demonstrates the critical role of ERbeta's AF-1 domain in mediating growth factor-induced modulation of estrogen receptor activity and cell growth.

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