RORα fine-tunes the circadian control of hepatic triglyceride synthesis and gluconeogenesis

Chloé Monnier1, Munkhzul Ganbold1, Martine Auclair1

  • 1UMR_S938, Centre de Recherche Saint-Antoine, IHU ICAN, Faculté de Médecine Site Saint-Antoine, Sorbonne Université-Inserm, 27 Rue Chaligny, 75012, Paris, France.

Scientific Reports
|March 27, 2025
PubMed

Insights

Deleting RORα disrupts liver fat synthesis rhythmically. Pharmacological RORα inhibition mimics this, highlighting RORα

Area of Science:

  • Chronobiology
  • Molecular Metabolism
  • Nuclear Receptor Signaling

Background:

  • Circadian rhythms govern hepatic lipid and glucose metabolism.
  • RORα (Retinoid-orphan receptor alpha) is a nuclear receptor regulating metabolic processes.
  • Previous work indicated RORα antagonism reduces body fat.

Purpose of the Study:

  • To investigate the impact of whole-body RORα deletion on hepatic lipid metabolism across a circadian cycle.
  • To explore RORα's role in regulating key metabolic genes and clock gene expression.

Main Methods:

  • Utilized RORα-knockout (staggerer) mice.
  • Analyzed hepatic triglyceride synthesis and lipogenesis over a circadian cycle.
  • Examined transcriptional regulation of Srebp1c, Insigs, and core clock genes.
  • Administered SR3335, a pharmacological RORα inverse agonist.

Main Results:

  • RORα deletion caused time-dependent disruption in hepatic triglyceride synthesis.
  • Lipogenesis was reduced during the light phase.
  • Srebp1c transcription increased at night, but phase-shifted Insig expression prevented lipid synthesis.
  • Core clock gene expression, including Reverbα, was attenuated and phase-shifted.
  • Pharmacological RORα inhibition produced similar metabolic alterations.

Conclusions:

  • RORα is a crucial regulator of hepatic lipid and glucose homeostasis under a chow diet.
  • Disruption of RORα impacts the circadian rhythm of hepatic lipid metabolism.
  • RORα represents a potential therapeutic target for metabolic disorders like obesity and dyslipidemia.

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