Circadian regulator PER1 inhibits osteoclastogenesis by activating inflammatory genes

Nobuko Katoku-Kikyo1,2, Elizabeth K Vu1,3, Samuel Mitchell1,3

  • 1Stem Cell Institute, University of Minnesota.

Insights

The circadian regulator PER1 inhibits bone loss by controlling inflammation and osteoclast formation. Targeting PER1 may treat bone diseases without disrupting sleep-wake cycles.

Area of Science:

  • Chronobiology
  • Bone Biology
  • Inflammation

Background:

  • Disrupted circadian rhythms are linked to chronic diseases like osteoporosis.
  • The impact of circadian disruption on bone remodeling is not well understood.

Purpose of the Study:

  • To investigate the role of the core circadian regulator PER1 in osteoclastogenesis and bone mass regulation.
  • To elucidate the molecular mechanisms linking circadian rhythm disruption to bone remodeling.

Main Methods:

  • Conditional knockout of Per1 in mouse osteoclasts and related cells.
  • In vitro studies on osteoclastogenesis with Per1 depletion.
  • Analysis of gene expression, including inflammatory genes.
  • Knockdown experiments for specific inflammatory genes (Nlrp3, Tlr8, Tlr9).

Main Results:

  • Per1 knockout in osteoclasts led to decreased bone mass, increased osteoclasts, and decreased osteoblasts in mice.
  • Per1 depletion in vitro promoted osteoclastogenesis and downregulated 16 inflammatory genes.
  • Knockdown of Nlrp3, Tlr8, or Tlr9 mimicked Per1 knockout effects, suggesting a mechanistic link.
  • Per2 knockout did not yield similar results, and Per1 knockout mice retained circadian rhythms.

Conclusions:

  • PER1 acts as an inhibitor of osteoclastogenesis, potentially by regulating inflammatory genes.
  • PER1 is a potential therapeutic target for bone diseases associated with circadian disruption, such as osteoporosis, rheumatoid arthritis, and osteoarthritis.
  • Findings reveal a molecular connection between circadian regulation and inflammatory bone diseases.

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