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Drug therapy targeting pyrophosphate slows the ossification of spinal ligaments in twy mice
Shigeto Hiratsuka1, Masahiko Takahata1, Tomohiro Shimizu1
1Department of Orthopaedic Surgery, School of Medicine, Hokkaido University, Kita-15 Nishi-7 Kita-ku, Sapporo, 060-8638, Japan.
Abstract:
The lack of an effective drug therapy against ossification of spinal ligament (OSL) warrants investigation into the therapeutic target of this disease. An endogenous inhibitor of biomineralization, pyrophosphate (PPi) is a potential therapy for ectopic ossification; however, exogenous PPi is rapidly hydrolyzed by tissue non-specific alkaline phosphatase (TNAP) present in body fluids. In this study, we examined whether a drug therapy targeting PPi is efficacious for the treatment of OSL using the Enpp1ttw/ttw (twy) mouse model. Twenty male twy mice were randomized into four groups: (i) vehicle (Control); (ii) alkaline phosphatase inhibitor levamisole (5 mg/kg/day sc continuously); (iii) levamisole + exogenous PPi (160 µmol/kg/day sc continuously); and (iv) nuclear retinoic acid receptor-γ (RARγ) agonist (6 µg/kg sc daily). The RARγ agonist, which is a proven inhibitor of ectopic endochondral ossification, was used as a positive control. Treatments commenced when the mice were 5 weeks of age and continued for 4 weeks. Longitudinal micro-computed tomography and postmortem histological analysis were performed. Administration of levamisole alone and in combination with PPi increased serum PPi concentration by 17% and 52%, respectively, compared to that in vehicle-treated mice. The development of OSL in twy mice was suppressed by levamisole + PPi and RARγ agonist treatments, but not by levamisole alone. The levamisole + PPi therapy did not cause osteoporosis, whereas RARγ agonist-treated mice developed osteoporosis. Treatment of twy mice with levamisole in combination with exogenous PPi increased serum PPi level, which slowed the progression of OSL without producing adverse effect on bone. © 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 36:1256-1261, 2018.
Insights
Investigating pyrophosphate (PPi) therapy for ossification of spinal ligament (OSL) in mice, researchers found that combining PPi with an alkaline phosphatase inhibitor slowed OSL progression without bone damage. This PPi therapy offers a promising treatment strategy for OSL.
Area of Science:
- Orthopedics
- Biomineralization
- Pharmacology
Background:
- Ossification of spinal ligament (OSL) lacks effective drug therapies, necessitating research into novel therapeutic targets.
- Pyrophosphate (PPi), an endogenous inhibitor of biomineralization, shows potential for treating ectopic ossification but is rapidly degraded by tissue non-specific alkaline phosphatase (TNAP).
Purpose of the Study:
- To evaluate the efficacy of a drug therapy targeting PPi for treating OSL using the Enpp1ttw/ttw (twy) mouse model.
- To assess the safety and therapeutic effects of combining exogenous PPi with an alkaline phosphatase inhibitor.
Main Methods:
- Twenty male twy mice were randomized into four groups: vehicle control, levamisole (alkaline phosphatase inhibitor), levamisole + exogenous PPi, and a positive control (RARγ agonist).
- Treatments were administered for 4 weeks, starting at 5 weeks of age.
- Longitudinal micro-computed tomography and postmortem histological analyses were performed to assess OSL development and bone health.
Main Results:
- Levamisole combined with PPi significantly increased serum PPi levels compared to controls.
- The levamisole + PPi combination therapy and the RARγ agonist suppressed OSL development in twy mice.
- Levamisole + PPi treatment did not induce osteoporosis, unlike the RARγ agonist, which caused adverse bone effects.
Conclusions:
- Treatment with levamisole and exogenous PPi effectively increased serum PPi levels, slowing OSL progression in mice.
- This PPi-based therapy demonstrated efficacy in managing OSL without causing detrimental effects on bone density, presenting a potential therapeutic strategy.
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