Rexinoids modulate steroid and xenobiotic receptor activity by increasing its protein turnover in a calpain-dependent

Filippa Pettersson1, Nessrine Hanna, Marina Lagodich

  • 1Lady Davis Institute for Medical Research, Segal Cancer Centre of the Sir Mortimer B. Davis Jewish General Hospital, McGill University, Montreal, Quebec H3T 1E2, Canada.

Insights

RXR-selective ligands, rexinoids, weakly activate the steroid and xenobiotic receptor (SXR) but antagonize its drug metabolism activity. Rexinoids also decrease SXR and RXR protein levels, explaining their weak activation and antagonistic effects.

Area of Science:

  • Molecular pharmacology
  • Nuclear receptor signaling
  • Drug metabolism and detoxification

Background:

  • The steroid and xenobiotic receptor (SXR), also known as the human pregnane X receptor, is crucial for drug metabolism and detoxification.
  • SXR functions as a heterodimer with the retinoid X receptor (RXR) to regulate target gene transcription.
  • Ligands for SXR/RXR modulate drug metabolism pathways, making them important targets for pharmacological intervention.

Purpose of the Study:

  • To investigate the effects of RXR-selective ligands (rexinoids) on SXR/RXR activity and protein stability.
  • To elucidate the mechanisms underlying rexinoid-mediated antagonism of SXR activation.
  • To understand how rexinoids influence the protein levels of SXR and RXR.

Main Methods:

  • In vitro and in vivo assays to assess SXR/RXR binding and transcriptional activity.
  • Treatment with rexinoids (bexarotene, LG100268) and the SXR agonist rifampicin.
  • Analysis of SXR and RXR protein levels and degradation pathways (calpain, proteasome).

Main Results:

  • Rexinoids are weak activators of SXR/RXR but antagonize activation by rifampicin.
  • Rexinoids reduce SXR/RXR binding to response elements and suppress target gene expression.
  • Bexarotene and LG100268 induce rapid degradation of SXR (calpain-dependent) and RXR (proteasome-dependent).

Conclusions:

  • Rexinoids modulate SXR/RXR activity through antagonism and by reducing receptor protein stability.
  • Enhanced SXR degradation via calpain activity is a novel mechanism explaining weak rexinoid activation.
  • Rexinoid-induced degradation of both SXR and RXR contributes to their antagonistic effects on drug-activated SXR signaling.

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