Quercetin and Fisetin activate circadian clock via RORα and inhibit adipocyte growth

Xuekai Xiong1, Jemima Pangemanan1, Tali Kiperman1

  • 1Department of Diabetes Complications & Metabolism, Arthur Riggs Diabetes & Metabolism Research Institute, Beckman Research Institute of City of Hope, Duarte, CA 91010.

Insights

Quercetin and Fisetin activate the circadian clock, inhibiting fat cell development and lipid metabolism. These flavonoids offer potential therapeutic strategies for metabolic diseases by limiting adipose tissue expansion.

Area of Science:

  • Metabolic regulation
  • Circadian biology
  • Adipocyte biology

Background:

  • The circadian clock regulates metabolic processes and adipocyte development.
  • Clock-modulatory compounds are potential therapeutic agents for metabolic diseases.

Purpose of the Study:

  • Identify clock-modulatory compounds.
  • Investigate the effects of Quercetin and Fisetin on adipogenesis and lipid metabolism.
  • Explore the role of RORα in mediating these effects.

Main Methods:

  • Screening of flavonoid compounds for clock-activating properties.
  • In vitro studies on preadipocytes and mature adipocytes.
  • In vivo studies in mice treated with Quercetin or Fisetin.
  • Analysis of gene expression, lipid accumulation, and metabolic parameters.

Main Results:

  • Quercetin and Fisetin were identified as clock-activating molecules with RORα agonism.
  • These flavonoids inhibited adipogenic differentiation and lipid accumulation in adipocytes.
  • In vivo treatment suppressed adipogenic and lipogenic programs in adipose tissue.
  • Quercetin improved insulin sensitivity and reduced free fatty acids.

Conclusions:

  • Quercetin and Fisetin prevent adipocyte maturation and hypertrophy by activating the circadian clock.
  • These compounds limit adipose tissue expansion and contribute to beneficial metabolic effects.
  • RORα activation is a key mechanism underlying the observed effects.

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