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Published on: December 10, 2010
Gene therapy with human osteoprotegerin decreases callus remodeling with limited effects on biomechanical properties
Michael Ulrich-Vinther1, Edward M Schwarz, Finn S Pedersen
1Department of Orthopaedics, Aarhus University Hospital, Noerrebrogade, DK-8000 Aarhus C, Denmark. michaelulrich@mail.dk
Abstract:
Osteoprotegerin (OPG) is a naturally occurring protein, which prevents bone resorption by inhibition of osteoclastogenesis, function, and survival. Therefore, recombinant OPG may be an attractive drug in the treatment of chronic bone resorptive diseases such as osteoporosis. Gene therapy has the potential to achieve long-term treatment by delivering genes of anti-resorptive proteins to the recipient. The effects of OPG gene therapy on fracture healing have not been described previously. The influence of OPG gene therapy on callus formation, callus tissue structural strength, apparent material properties, and histology of tibia fractures in rats was investigated after 3 weeks and 8 weeks of healing. Intramuscular administration of adeno-associated virus (AAV) vector-mediated OPG resulted in increased levels of OPG in serum of approximately 100 ng/ml throughout the study period. Control animals with fractures received transduction with an AAV reporter gene construct (AAV-enhanced green fluorescent protein (eGFP)), and in this group serum OPG levels remained at baseline (<10 ng/ml). After 3 weeks of healing, AAV-OPG treatment reduced the number of osteoclasts in the callus tissue (33%, P < 0.001). However, AAV-OPG treatment did not influence callus dimensions, callus bone mineral content (BMC), fracture structural strength, or apparent callus tissue material properties. After 8 weeks of healing, AAV-OPG treatment reduced the number of osteoclasts in the callus tissue (31%, P < 0.001) compared with AAV-eGFP fractures. Furthermore, deposition of new woven bone at the fracture line of the original cortical bone was hampered (new woven bone present: in all AAV-eGFP animals, in 41% of AAV-OPG-treated animals, P < 0.001). AAV-OPG treatment also increased callus BMC (18%, P = 0.023) compared with AAV-eGFP fractures. AAV-OPG did not influence callus dimensions, structural strength of the fractures, or ultimate stress, whereas elastic modulus was reduced in the AAV-OPG groups (37%, P = 0.039). The experiment demonstrates that AAV-OPG gene therapy decreases the fracture remodeling, but this does not influence the structural strength of healing fractures.
Insights
Osteoprotegerin (OPG) gene therapy in rats reduced osteoclast numbers and new bone formation during fracture healing. This OPG gene therapy did not negatively impact the structural strength of healing fractures.
Area of Science:
- Orthopedics
- Gene Therapy
- Bone Biology
Background:
- Osteoprotegerin (OPG) inhibits bone resorption, making it a potential therapeutic for bone diseases.
- Gene therapy offers a method for sustained delivery of therapeutic proteins like OPG.
- The impact of OPG gene therapy on fracture healing remains largely unexplored.
Purpose of the Study:
- To investigate the effects of adeno-associated virus (AAV)-mediated OPG gene therapy on fracture healing in rats.
- To evaluate OPG gene therapy's influence on callus formation, structural strength, material properties, and histology.
Main Methods:
- Rats with tibia fractures received intramuscular AAV-OPG or AAV-enhanced green fluorescent protein (eGFP) as a control.
- Serum OPG levels were monitored, and fracture healing was assessed at 3 and 8 weeks.
- Analyses included osteoclast counts, callus dimensions, bone mineral content (BMC), structural strength, and material properties.
Main Results:
- AAV-OPG treatment significantly increased serum OPG levels and reduced osteoclast numbers at both 3 and 8 weeks.
- At 8 weeks, AAV-OPG treatment hampered new woven bone deposition and increased callus BMC.
- No significant differences were observed in callus dimensions or overall fracture structural strength between groups.
Conclusions:
- AAV-OPG gene therapy effectively reduces osteoclast activity and alters fracture remodeling.
- While OPG gene therapy impacts callus composition and remodeling, it does not compromise the structural integrity of healing fractures.
- These findings suggest OPG gene therapy's potential role in managing bone resorption during fracture repair.
