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A pediatric animal model to evaluate the effects of disuse on musculoskeletal growth and development
Daniel L Miranda1, Melissa Putman2, Ruby Kandah1
1Wyss Institute for Biologically Inspired Engineering at Harvard University, Boston, MA, USA.
Insights
Prolonged immobilization in young rabbits caused significant bone and muscle loss, mirroring complications seen in immobilized children. This new rabbit model aids research into pediatric musculoskeletal health interventions.
Area of Science:
- Orthopedics
- Pediatric Musculoskeletal Health
- Animal Models
Background:
- Prolonged immobilization in hospitalized children leads to fragility fractures and muscle atrophy.
- Musculoskeletal complications in children with chronic conditions require effective interventions.
Purpose of the Study:
- To develop a lower-extremity disuse rabbit model.
- To replicate musculoskeletal changes seen in immobilized children.
Main Methods:
- Six-week-old rabbits underwent bilateral sciatic and femoral neurectomy (bSFN) or served as controls (CTRL).
- Hind limbs were analyzed using CT scans, micro-CT (μCT), and mechanical testing after eight weeks.
Main Results:
- bSFN rabbits showed decreased bone mineral density, axial rigidity, and soft tissue mass.
- μCT revealed reduced tibia and calcaneus cortical thickness and bone volume fraction.
- Mechanical testing demonstrated significant changes in bone stiffness, strength, and displacement.
Conclusions:
- Limb disuse during rapid growth severely impairs muscle and bone development in rabbits.
- This model reflects pediatric immobilization complications and is valuable for pre-clinical research.
- Urgent need for interventions to mitigate pediatric musculoskeletal complications.
Abstract:
Prolonged immobilization in hospitalized children can lead to fragility fractures and muscle contractures and atrophy. The purpose of this study was to develop a lower-extremity disuse rabbit model with musculoskeletal changes similar to those observed in children subjected to prolonged immobilization. Six-week-old rabbits were randomly assigned to control (CTRL, n=4) or bilateral sciatic and femoral neurectomy (bSFN, n=4) groups. Trans-axial helical CT scans of each rabbit׳s hind limbs were acquired after eight weeks. The rabbits were then euthanized and the tibiae and calcanea were harvested from each rabbit. μCT imaging was performed on the tibiae and calcanea mid-diaphysis. Four-point bending, gas pycnometry, and ashing were then performed on each tibia. All comparisons reflect the differences between the bSFN and CTRL rabbits. Significant decreases in tibiae bone mineral density (≥9.41%, p≤0.006), axial rigidity (≥50.47%, p≤0.02), and soft tissue mass (55.25%, p=0.006) were observed from the trans-axial helical CT scans. The μCT results indicated significant detriments in tibia and calcaneus cortical thickness and bone volume fraction (p≤0.011). Significant changes in stiffness, yield load, ultimate load, and ultimate displacement (≥30.05%, p≤0.025) were observed from mechanical testing. These data indicate that limb disuse at a time of rapid musculoskeletal growth severely impairs muscle and bone development, reflecting the musculoskeletal complications observed in children with chronic medical conditions causing immobilization. Interventions to reduce these musculoskeletal complications in children are urgently needed. This disuse rabbit model will be useful in pre-clinical studies evaluating novel interventions for improving pediatric musculoskeletal health.
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