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Published on: October 28, 2017
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.
Abstract:
Disruption of circadian rhythms predisposes shift workers to many chronic conditions, including osteoporosis. However, the effects of disrupted circadian rhythms on bone remodeling remain largely unknown. Here, we show that one of the core circadian regulators PER1 inhibits osteoclastogenesis by upregulating genes involved in inflammation. The conditional knockout of Per1 in osteoclasts and related cells resulted in decreased bone mass in the femurs of mice, along with increased osteoclasts and decreased osteoblasts. Osteoclastogenesis was also promoted by Per1 depletion in vitro with 16 downregulated inflammatory genes. Seven of these genes were known to promote or inhibit osteoclastogenesis depending on the stage of osteoclastogenesis and the presence or absence of infection. Knockdown of Nlrp3, Tlr8, or Tlr9 in the group of genes promoted osteoclastogenesis, mirroring the effects of Per1 knockout and offering a mechanistic explanation for the Per1-mediated inhibition of osteoclastogenesis. These results were not observed following the knockout of a paralog Per2. Per1 knockout mice maintain general circadian rhythms, unlike arrhythmic Per1;Per2 double knockout mice. This gives credence to Per1 as a selective target for therapeutic interventions without disrupting the circadian rhythms. This study uncovered a molecular link between a circadian regulator and osteoclastogenesis in the broader context of inflammatory reactions. Our findings may be mechanistically relevant to inflammatory bone diseases influenced by circadian rhythms, such as rheumatoid arthritis and osteoarthritis, as well as other bone diseases predisposed by chronic circadian disruption.
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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