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The PDE4 Inhibitors Roflumilast and Rolipram Rescue ADO2 Osteoclast Resorption Dysfunction
Jung Min Hong1, Rita L Gerard-O'Riley2, Dena Acton2
1Department of Biomedical Sciences and Comprehensive Care, Indiana University School of Dentistry, 1121 West Michigan Street, DS266, Indianapolis, IN, 46202, USA.
Abstract:
Autosomal Dominant Osteopetrosis type II (ADO2) is a rare bone disease of impaired osteoclastic bone resorption caused by heterozygous missense mutations in the chloride channel 7 (CLCN7). Adenylate cyclase, which catalyzes the formation of cAMP, is critical for lysosomal acidification in osteoclasts. We found reduced cAMP levels in ADO2 osteoclasts compared to wild-type (WT) osteoclasts, leading us to examine whether regulating cAMP would improve ADO2 osteoclast activity. Although forskolin, a known activator of adenylate cyclase and cAMP levels, negatively affected osteoclast number, it led to an overall increase in ADO2 and WT osteoclast resorption activity in vitro. Next, we examined cAMP hydrolysis by the phosphodiesterase 4 (PDE4) proteins in ADO2 versus WT osteoclasts. QPCR analysis revealed higher expression of the three major PDE4 subtypes (4a, 4b, 4d) in ADO2 osteoclasts compared in WT, consistent with reduced cAMP levels in ADO2 osteoclasts. In addition, we found that the PDE4 antagonists, rolipram and roflumilast, stimulated ADO2 and WT osteoclast formation in a dose-dependent manner. Importantly, roflumilast and rolipram displayed a concentration-dependent increase in osteoclast resorption activity which was greater in ADO2 than WT osteoclasts. Moreover, treatment with roflumilast rescued cAMP levels in ADO2 OCLs. The key findings from our studies demonstrate that osteoclasts from ADO2 mice exhibit reduced cAMP levels and PDE4 inhibition rescues cAMP levels and ADO2 osteoclast activity dysfunction in vitro. The mechanism of action of PDE4 inhibitors and their ability to reduce the high bone mass of ADO2 mice in vivo are currently under investigation. Importantly, these studies advance the understanding of the mechanisms underlying the ADO2 osteoclast dysfunction which is critical for the development of therapeutic approaches to treat clinically affected ADO2 patients.
Insights
Autosomal Dominant Osteopetrosis type II (ADO2) osteoclasts have low cAMP levels. Inhibiting phosphodiesterase 4 (PDE4) restored cAMP and improved osteoclast function, suggesting a therapeutic target for ADO2 bone disease.
Area of Science:
- Molecular Biology
- Cell Biology
- Bone Biology
Background:
- Autosomal Dominant Osteopetrosis type II (ADO2) is a rare genetic bone disorder characterized by impaired osteoclast resorption, caused by mutations in the CLCN7 gene.
- Osteoclast function, including lysosomal acidification, relies on cyclic adenosine monophosphate (cAMP) signaling regulated by adenylate cyclase and phosphodiesterases (PDEs).
Purpose of the Study:
- To investigate the role of cAMP levels and phosphodiesterase 4 (PDE4) activity in ADO2 osteoclast dysfunction.
- To determine if modulating cAMP levels or inhibiting PDE4 can rescue ADO2 osteoclast activity.
Main Methods:
- Quantitative PCR (qPCR) to analyze PDE4 subtype expression in ADO2 and wild-type (WT) osteoclasts.
- In vitro assays to assess osteoclast formation, resorption activity, and cAMP levels following treatment with forskolin (cAMP activator) and PDE4 inhibitors (rolipram, roflumilast).
Main Results:
- ADO2 osteoclasts exhibited reduced cAMP levels compared to WT osteoclasts.
- Higher expression of PDE4 subtypes (4a, 4b, 4d) was observed in ADO2 osteoclasts.
- PDE4 inhibition with rolipram and roflumilast dose-dependently increased osteoclast formation and resorption activity, with a greater effect in ADO2 osteoclasts.
- Roflumilast treatment rescued cAMP levels in ADO2 osteoclasts.
Conclusions:
- Osteoclasts in ADO2 mice display diminished cAMP levels, linked to increased PDE4 expression.
- Inhibition of PDE4 effectively restores cAMP levels and enhances osteoclast function in vitro, presenting a potential therapeutic strategy for ADO2.
- These findings provide critical insights into ADO2 osteoclast dysfunction, paving the way for novel treatments.
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