Drug and cell type-specific regulation of genes with different classes of estrogen receptor beta-selective agonists

Sreenivasan Paruthiyil1, Aleksandra Cvoro, Xiaoyue Zhao

  • 1Departments of Obstetrics, Gynecology and Reproductive Sciences,Center for Reproductive Sciences, University of California San Francisco, San Francisco, California, United States of America.

Plos One
|July 18, 2009
PubMed

Insights

Selective estrogen receptor modulators (SERMs) targeting ERbeta may offer safer therapeutic options. This study compared the gene expression patterns of three ERbeta-selective compound classes, finding distinct biological effects despite commonalities with estradiol.

Area of Science:

  • Endocrinology
  • Molecular Pharmacology
  • Genomics

Background:

  • Estrogen receptors, ERalpha and ERbeta, mediate estrogen's biological effects.
  • Selective ERbeta agonists offer potential for safer therapies compared to non-selective estrogens.
  • Three distinct classes of ERbeta-selective compounds have been identified: ERB-041, plant-derived compounds (MF101, nyasol, liquiritigenin), and diarylpropionitrile.

Purpose of the Study:

  • To compare the ERbeta selectivity and gene expression profiles of three classes of ERbeta-selective compounds.
  • To evaluate the similarities and differences in gene regulation by ERbeta agonists versus estradiol (E(2)).
  • To investigate potential cell type-specific effects of ERbeta-selective compounds.

Main Methods:

  • U2OS cells stably transfected with ERalpha or ERbeta were treated with E(2) or ERbeta-selective compounds.
  • Gene expression analysis was performed using microarrays.
  • Fluorescence resonance energy transfer (FRET) analysis was used to assess ERbeta conformation.

Main Results:

  • ERB-041, MF101, and liquiritigenin demonstrated the highest ERbeta selectivity, followed by nyasol and diarylpropionitrile.
  • All compounds induced a similar ERbeta conformation, and most regulated genes overlapped with E(2).
  • Distinct gene classes were differentially regulated by ERbeta agonists and E(2); MF101 and liquiritigenin showed cell type-specific gene regulation.

Conclusions:

  • While ERbeta-selective agonists share commonalities in gene regulation with E(2), distinct gene expression patterns exist.
  • Different ERbeta-selective compounds may elicit unique biological and clinical outcomes.
  • Further research into cell type-specific effects is warranted for targeted therapeutic development.

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