Adverse effects of valproate on bone: defining a model to investigate the pathophysiology
Susan M Senn1, Susan Kantor, Ingrid J Poulton
1Department of Medicine, Bone Mineral Service and Neurology, The Royal Melbourne Hospital, The University of Melbourne, Melbourne, Victoria, Australia.
Purpose:
Bone disease and fractures are common with chronic antiepileptic drug (AED) therapy, but the underlying mechanisms are poorly understood. This study aimed to characterize adverse bone effects of valproate and to identify mouse strains either resistant or sensitive to these effects.
Methods:
Seven mouse strains (n = 40/strain; 10/diet) were screened for the effect of chronic (8 weeks) valproate treatment (0, 2, 4, and 6 g/kg food) on total bone mineral content (BMC, by dual energy x-ray absorptiometry). In a confirmatory study the effect of valproate (0 or 4 g/kg food) over 16 weeks was assessed in five of the mouse strains (n = 60/strain; 30/diet) identified in the screening phase as either sensitive or resistant. Ex vivo volumetric bone measures and structural changes were assessed using peripheral quantitative computed tomography (pQCT) and histomorphometry.
Results:
Chronic valproate treatment reproducibly affected bone in C3H/HeJ mice, with a 9.1% (p < 0.01) reduction in total BMC and a 10.7% (p < 0.01) reduction in trabecular volumetric density, indicating a sensitive strain to AED-induced bone loss. Histomorphometry was consistent, revealing reductions in trabecular volume (19.6%, p < 0.05) and number (14.3%, p < 0.04), and a 19.9% (p < 0.05) increase in trabecular separation. In contrast the A/J mice were reproducibly resistant to the bone effects.
Conclusion:
Mouse strains sensitive and resistant to the adverse bone effects of chronic valproate treatment were identified. The strain-specific effects suggest a role of genetic factors in the pathogenesis of AED-induced bone disease. This novel model provides a new, powerful tool to investigate the pathophysiology and therapy of AED-associated bone disease.
Insights
Researchers identified mouse strains sensitive and resistant to bone loss from antiepileptic drug (AED) valproate. This discovery offers a new model to study genetic factors in AED-induced bone disease.
Area of Science:
- Pharmacology
- Bone Biology
- Genetics
Background:
- Chronic antiepileptic drug (AED) therapy is linked to bone disease and fractures.
- The mechanisms underlying AED-induced bone alterations remain poorly understood.
Purpose of the Study:
- To characterize the adverse bone effects of valproate.
- To identify mouse strains exhibiting differential sensitivity or resistance to valproate's bone effects.
Main Methods:
- Screened seven mouse strains for valproate's impact on bone mineral content (BMC) over 8 weeks.
- Confirmatory studies assessed bone structure using pQCT and histomorphometry after 16 weeks of valproate treatment.
- Evaluated valproate doses ranging from 0 to 6 g/kg food.
Main Results:
- C3H/HeJ mice showed significant reductions in total BMC and trabecular volumetric density, indicating sensitivity to valproate.
- Histomorphometry confirmed valproate-induced decreases in trabecular volume and number, with increased separation in sensitive strains.
- A/J mice demonstrated consistent resistance to the bone-related effects of valproate.
Conclusions:
- Identified distinct mouse strains sensitive and resistant to chronic valproate's adverse bone effects.
- Strain-specific responses suggest a significant role for genetic factors in AED-induced bone disease pathogenesis.
- This study establishes a novel animal model for investigating the pathophysiology and potential therapies for AED-associated bone disease.
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