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Published on: January 15, 2016
Potential of lower-limb muscles to accelerate the body during cerebral palsy gait
Tomas A Correa1, Anthony G Schache, H Kerr Graham
1Department of Mechanical Engineering, University of Melbourne, Victoria 3010, Australia. t.correa@pgrad.unimelb.edu.au
Insights
Understanding muscle function in children with spastic diplegic cerebral palsy (CP) is key. This study reveals significant differences in lower-limb muscle potential between crouch gait, jump gait, and able-bodied walking, aiding treatment development.
Area of Science:
- Biomechanics
- Pediatric Orthopedics
- Computational Modeling
Background:
- Spastic diplegic cerebral palsy (CP) often presents with crouch or jump gait patterns.
- Surgical interventions for CP aim to improve functional mobility, but responses vary, potentially due to misunderstood muscle function.
- Accurate assessment of muscle function is crucial for optimizing treatment outcomes.
Purpose of the Study:
- To differentiate lower-limb muscle function between crouch gait, jump gait, and able-bodied gait patterns.
- To quantify the potential of lower-limb muscles to accelerate the body's center of mass in these gait patterns.
- To establish a foundation for better understanding gait deviations and surgical treatment effects in CP.
Main Methods:
- Developed dynamic walking simulations using musculoskeletal models.
- Quantified muscle potential acceleration (acceleration from unit muscle force) for hip, knee, and ankle muscles.
- Compared gait patterns in eight children with crouch gait, ten with jump gait, and ten able-bodied controls.
Main Results:
- Significant differences (p<0.05) in muscle potential accelerations were found between crouch/jump gait and able-bodied gait for major lower-limb muscles.
- Both crouch and jump gait patterns showed significantly reduced potential of the gluteus medius to extend the hip.
- Identified distinct muscle function profiles characterizing crouch and jump gaits compared to typical walking.
Conclusions:
- Potential acceleration analysis effectively distinguishes between crouch gait, jump gait, and able-bodied walking.
- This computational approach can inform surgical treatment strategies for children with CP.
- Improved understanding of muscle function can lead to better therapeutic interventions and functional mobility outcomes.
Abstract:
Two of the most common gait patterns in children with spastic diplegic cerebral palsy (CP) are termed 'crouch gait' and 'jump gait'. While outcomes of surgical interventions designed to improve functional mobility are generally positive, many children displaying these gait patterns show minimal or no improvement post-surgery. A poor response to treatment may be partially attributable to incorrect interpretations of muscle function. Computational techniques that assess muscle function may help address this issue, but before studying specific surgeries, the gait patterns themselves must be better understood. The aim of this study was to identify differences in lower-limb muscle function when comparing crouch, jump and able-bodied gait patterns by quantifying the potential of lower-limb muscles to accelerate the body's center of mass. A muscle's potential acceleration was defined as the acceleration induced by a unit of muscle force. Dynamic simulations of walking using musculoskeletal models were developed for eight children with crouch gait, ten with jump gait, and ten controls. There were significant differences (p<0.05) in muscle potential accelerations between crouch and able-bodied gait patterns, and between jump and able-bodied gait patterns, for most of the major muscles of the hip, knee, and ankle. One important outcome was the identification of the significantly reduced potential of gluteus medius to extend the hip in both crouch gait and jump gait. Potential acceleration analyses appear to be suitable for evaluating differences between common gait patterns and may also be applied to study the effects of surgical treatments. The results of such studies may lead to improved treatment outcomes for individuals with impaired mobility.
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