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Muscle architecture in children with cerebral palsy and ankle contractures: an investigation using diffusion tensor
Arkiev D'Souza1, Bart Bolsterlee1, Ann Lancaster2
1Neuroscience Research Australia (NeuRA), Randwick, NSW, Australia; University of New South Wales, Randwick, NSW, Australia.
Insights
Children with cerebral palsy have altered medial gastrocnemius muscle architecture, including shorter fascicles and smaller volumes, contributing to ankle contractures. These changes were observed on the more-affected side compared to typically developing children.
Area of Science:
- Biomedical Engineering
- Orthopedics
- Pediatric Neurology
Background:
- Ankle contractures are common in children with cerebral palsy (CP).
- Muscle architectural changes in the calf may underlie these contractures.
- Novel imaging techniques allow for detailed muscle analysis.
Purpose of the Study:
- To compare medial gastrocnemius muscle architecture in children with unilateral CP and typically developing children.
- To investigate the relationship between muscle architecture and ankle contractures in CP.
Main Methods:
- Diffusion tensor imaging and mDixon scans were used to measure muscle architecture.
- Muscle volume, fascicle length, pennation angle, and physiological cross-sectional area were quantified.
- 20 children with unilateral CP and 20 typically developing children were included.
Main Results:
- The more-affected limb in children with CP showed reduced dorsiflexion range, shorter fascicles, smaller muscle volume, and smaller physiological cross-sectional area compared to the less-affected limb.
- Significant differences in muscle architecture were found between the more-affected side of children with CP and typically developing children.
- No significant differences were detected between the less-affected limb of children with CP and typically developing children.
Conclusions:
- The medial gastrocnemius muscle architecture differs significantly between the affected and unaffected sides in children with unilateral CP.
- Reduced fascicle length, muscle volume, and physiological cross-sectional area likely contribute to the development of ankle contractures in children with CP.
Background:
Children with cerebral palsy frequently have ankle contractures which may be caused by changes in architecture of calf muscles. Here, we compared the architecture of medial gastrocnemius muscles in children with unilateral cerebral palsy and typically developing children using novel imaging techniques.
Methods And Procedures:
Muscle volumes, fascicle lengths, pennation angles and physiological cross-sectional areas were measured from diffusion tensor images and mDixon scans obtained from 20 ambulant children with unilateral spastic cerebral palsy who had ankle contractures (age 11 ± 3 years; mean ± standard deviation) and 20 typically developing children (11 ± 4 years).
Findings:
In children with cerebral palsy, the more-affected side had, on average, 13° less dorsiflexion range and the medial gastrocnemius muscle had 4.9 mm shorter fascicles, 50 cm3 smaller volume and 9.5 cm2 smaller physiological cross-sectional area than the less-affected side. Compared to typically developing children, the more-affected side had 10° less dorsiflexion range and the medial gastrocnemius muscle had 4.2 mm shorter fascicles, 51 cm3 smaller volume and 10 cm2 smaller physiological cross-sectional area. We did not detect differences between the less-affected and typically developing legs.
Interpretation:
Three-dimensional measurement of whole medial gastrocnemius muscles confirmed that the architecture of muscles on the more-affected side of children with cerebral palsy differs from the less-affected side and from muscles of typically developing children. Reductions in fascicle length, muscle volume and physiological cross-sectional area may contribute to muscle contracture.
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