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Culture of Murine Embryonic Metatarsals: A Physiological Model of Endochondral Ossification
Published on: December 3, 2016
Modulation of endochondral ossification by MEK inhibitors PD0325901 and AZD6244 (Selumetinib)
J El-Hoss1, M Kolind2, M T Jackson3
1Orthopaedic Research & Biotechnology Unit, The Children's Hospital at Westmead, Sydney, Australia; Discipline of Paediatrics and Child Health, Faculty of Medicine, University of Sydney, Sydney, Australia.
Abstract:
MEK inhibitors (MEKi) PD0325901 and AZD6244 (Selumetinib) are drugs currently under clinical investigation for cancer treatment, however the Ras-MAPK pathway is also an important mediator of normal bone cell differentiation and function. In this study we examined the effects of these compounds on endochondral processes using both in vitro and in vivo models. Treatment with PD0325901 or AZD6244 significantly increased Runx2 and Alkaline phosphate gene expression in calvarial osteoblasts and decreased TRAP+ cells in induced osteoclast cultures. To test the effects of these drugs on bone healing, C57/Bl6 mice underwent a closed tibial fracture and were treated with PD0325901 or AZD6244 at 10mg/kg/day. Animals were culled at day 10 and at day 21 post-fracture for analysis of the fracture callus and the femoral growth plate in the contralateral leg. MEKi treatment markedly increased cartilage volume in the soft callus at day 10 post-fracture (+60% PD0325901, +20% AZD6244) and continued treatment led to a delay in cartilage remodeling. At the growth plate, we observed an increase in the height of the hypertrophic zone relative to the proliferative zone of +78% in PD0325901 treated mice. Osteoclast surface was significantly decreased both at the terminal end of the growth plate and within the fracture calluses of MEKi treated animals. The mechanistic effects of MEKi on genes encoding cartilage matrix proteins and catabolic enzymes were examined in articular chondrocyte cultures. PD0325901 or AZD6244 led to increased matrix protein expression (Col2a1 and Acan) and decreased expression of catabolic factors (Mmp13 and Adamts-5). Taken together, these data support the hypothesis that MEKi treatment can impact chondrocyte hypertrophy, matrix resorption, and fracture healing. These compounds can also affect bone architecture by expanding the hypertrophic zone of the growth plate and reducing osteoclast surface systemically.
Insights
MEK inhibitors (MEKi) impact bone healing by increasing cartilage and delaying remodeling. These drugs affect chondrocyte hypertrophy and reduce osteoclast activity, influencing fracture repair and bone growth plate development.
Area of Science:
- Bone Biology and Fracture Healing
- Pharmacology and Drug Development
- Cellular and Molecular Medicine
Background:
- Mitogen-activated protein kinase kinase (MEK) inhibitors (MEKi) are investigated for cancer therapy.
- The Ras-MAPK pathway regulates normal bone cell differentiation and function.
- Understanding MEKi effects on bone is crucial due to their clinical investigation.
Purpose of the Study:
- To investigate the impact of MEK inhibitors (PD0325901 and AZD6244) on endochondral ossification and fracture healing.
- To analyze the effects of MEKi on osteoblast and osteoclast activity in vitro.
- To evaluate MEKi influence on fracture callus formation and growth plate dynamics in vivo.
Main Methods:
- In vitro studies using calvarial osteoblasts and chondrocytes.
- In vivo closed tibial fracture model in C57/Bl6 mice treated with MEKi.
- Analysis of fracture callus, growth plate, gene expression (Runx2, Alkaline phosphatase, Col2a1, Acan, Mmp13, Adamts-5), and osteoclast surface.
Main Results:
- MEKi treatment increased osteoblast gene expression and decreased osteoclast markers in vitro.
- In vivo, MEKi markedly increased cartilage volume in fracture calluses and delayed remodeling.
- MEKi expanded the hypertrophic zone in the growth plate and reduced osteoclast surface systemically.
Conclusions:
- MEK inhibitors influence chondrocyte hypertrophy, matrix production, and resorption.
- MEKi treatment affects fracture healing by modulating cartilage dynamics and osteoclast activity.
- These findings highlight potential impacts of MEKi on bone architecture and healing processes.
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