Related Experiment Video
Updated: Dec 9, 2025

Author Spotlight: Repetitive Transcranial Magnetic Stimulation Combined with Movement Observation in Cerebral Palsy
Published on: August 9, 2024
Botulinum toxin injections minimally affect modelled muscle forces during gait in children with cerebral palsy
M Wesseling1, H Kainz2, T Hoekstra1
1Human Movement Biomechanics Research Group, Department of Movement Sciences, KU Leuven, Leuven, Belgium.
Insights
Botulinum toxin type A (BTX-A) injections show limited impact on muscle force balance in children with cerebral palsy (CP). Electromyography-constrained modeling is recommended for accurate gait analysis in CP.
Area of Science:
- Biomechanics
- Pediatric Rehabilitation
- Neuromuscular Disorders
Background:
- Children with cerebral palsy (CP) exhibit abnormal gait and muscle activity.
- Botulinum Toxin type A (BTX-A) injections are used to manage muscle imbalances in CP.
Purpose of the Study:
- To evaluate the effect of BTX-A on dynamic muscle forces during gait in children with CP.
- To compare EMG-constrained modeling with static optimization for muscle force calculation.
Main Methods:
- Musculoskeletal modeling and dynamic gait simulations were performed on children with CP and typically developing (TD) children.
- Muscle forces were calculated using EMG-constrained optimization before and after BTX-A treatment.
- Statistical analyses compared muscle forces between groups and treatment conditions.
Main Results:
- Children with CP showed reduced muscle forces compared to TD children, persisting after BTX-A treatment.
- BTX-A treatment resulted in limited changes in muscle forces.
- EMG-constrained optimization yielded higher muscle force estimates than static optimization.
Conclusions:
- BTX-A injections have a minimal effect on improving muscle balance during gait in children with CP.
- EMG-constrained optimization is a recommended approach for analyzing muscle function in pediatric CP gait studies.
Background:
Children with cerebral palsy (CP) present altered gait patterns and electromyography (EMG) activity compared to typically developing children. To temporarily reduce muscular activity and to correct the abnormal muscle force balance, Botulinum Toxin type A (BTX-A) injections are used.
Research Question:
What is the effect of BTX-A injections on dynamic muscle forces during gait, when calculated using an EMG-constrained approach?.
Methods:
Retrospective data of ten typically developing (TD) and fourteen children with spastic diplegic CP were used for musculoskeletal modeling and dynamic simulations of gait, before and after BTX-A treatment. Individual muscle forces were calculated using an EMG-constrained optimization, in which EMG of eight muscles was used as muscle excitation signal to constrain the muscle activation patterns. Paired t-tests were used to compare average modelled muscle forces in different phases of the gait cycle pre- and post-BTX-A, summarized in the muscle profile score. Two-sample t-tests were used to determine significant differences between TD and pre- and post-BTX-A modelled muscle forces.
Results:
For most muscles, the force was decreased in CP compared to TD children in all phases of the gait cycle, both before and after BTX-A treatment. Differences in muscle forces before and after BTX-A treatment were limited, with only few significant differences between pre- and post-BTX-A. Compared to a standard static optimization approach, imposing the EMG activity increased modelled muscle forces for most muscles.
Significance:
Our findings indicate that BTX-A treatment has a limited effect on the muscle balance in CP children. Besides that, the use of EMG-constrained optimization is recommended when studying muscle balance in children with CP.
Related Concept Videos
Directly Acting Muscle Relaxants: Dantrolene and Botulinum Toxin
The binding of dantrolene to the RYR1...
Skeletal Muscle Relaxants: Adverse Effects
Unlike...
Skeletal Muscle Relaxants: Therapeutic Uses
Classification of Skeletal Muscle Relaxants
Peripherally acting skeletal muscle relaxants interfere with the neurotransmission at the neuromuscular end plate to induce paralysis during...
Nondepolarizing (Competitive) Neuromuscular Blockers: Pharmacological Actions
Although all competitive neuromuscular blockers are designed...

