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MicroRNA-433 Dampens Glucocorticoid Receptor Signaling, Impacting Circadian Rhythm and Osteoblastic Gene Expression
Spenser S Smith1, Neha S Dole1, Tiziana Franceschetti1
1From the Center for Molecular Medicine, UConn Health, Farmington, Connecticut 06030.
Abstract:
Serum glucocorticoids play a critical role in synchronizing circadian rhythm in peripheral tissues, and multiple mechanisms regulate tissue sensitivity to glucocorticoids. In the skeleton, circadian rhythm helps coordinate bone formation and resorption. Circadian rhythm is regulated through transcriptional and post-transcriptional feedback loops that include microRNAs. How microRNAs regulate circadian rhythm in bone is unexplored. We show that in mouse calvaria, miR-433 displays robust circadian rhythm, peaking just after dark. In C3H/10T1/2 cells synchronized with a pulse of dexamethasone, inhibition of miR-433 using a tough decoy altered the period and amplitude of Per2 gene expression, suggesting that miR-433 regulates rhythm. Although miR-433 does not directly target the Per2 3'-UTR, it does target two rhythmically expressed genes in calvaria, Igf1 and Hif1α. miR-433 can target the glucocorticoid receptor; however, glucocorticoid receptor protein abundance was unaffected in miR-433 decoy cells. Rather, miR-433 inhibition dramatically enhanced glucocorticoid signaling due to increased nuclear receptor translocation, activating glucocorticoid receptor transcriptional targets. Last, in calvaria of transgenic mice expressing a miR-433 decoy in osteoblastic cells (Col3.6 promoter), the amplitude of Per2 and Bmal1 mRNA rhythm was increased, confirming that miR-433 regulates circadian rhythm. miR-433 was previously shown to target Runx2, and mRNA for Runx2 and its downstream target, osteocalcin, were also increased in miR-433 decoy mouse calvaria. We hypothesize that miR-433 helps maintain circadian rhythm in osteoblasts by regulating sensitivity to glucocorticoid receptor signaling.
Insights
MicroRNA-433 (miR-433) regulates circadian rhythm in bone by modulating glucocorticoid signaling sensitivity. Inhibition of miR-433 in mice enhanced rhythmic gene expression and osteoblast activity, suggesting a role in maintaining bone circadian rhythm.
Area of Science:
- Molecular Biology
- Chronobiology
- Bone Biology
Background:
- Circadian rhythms are crucial for bone remodeling, coordinated by glucocorticoids.
- MicroRNAs (miRNAs) are involved in circadian regulation, but their role in bone is unknown.
- miR-433 exhibits circadian rhythm in mouse calvaria.
Purpose of the Study:
- To investigate the role of miR-433 in regulating circadian rhythm in bone cells.
- To elucidate the molecular mechanisms by which miR-433 influences glucocorticoid signaling in osteoblasts.
Main Methods:
- Utilized synchronized cell cultures (C3H/10T1/2) and mouse calvaria models.
- Employed miR-433 inhibitors (decoys) to assess effects on gene expression (Per2, Igf1, Hif1α, Runx2, osteocalcin, Bmal1).
- Analyzed glucocorticoid receptor (GR) signaling, including nuclear translocation and transcriptional activity.
Main Results:
- Inhibition of miR-433 altered Per2 rhythmicity in synchronized cells.
- miR-433 targets Igf1 and Hif1α, rhythmically expressed genes in calvaria.
- miR-433 inhibition enhanced glucocorticoid signaling via increased GR nuclear translocation, not altered GR abundance.
- Transgenic mice with miR-433 decoy in osteoblasts showed increased Per2 and Bmal1 mRNA rhythm amplitude.
- miR-433 decoy mice exhibited increased Runx2 and osteocalcin mRNA levels.
Conclusions:
- miR-433 plays a significant role in regulating circadian rhythm in osteoblasts.
- miR-433 modulates bone cell sensitivity to glucocorticoid receptor signaling.
- miR-433 may maintain osteoblast circadian rhythm by fine-tuning glucocorticoid signaling and impacting key bone-related genes like Runx2.
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