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Muscle activation patterns when passively stretching spastic lower limb muscles of children with cerebral palsy
Lynn Bar-On1, Erwin Aertbeliën2, Guy Molenaers3
1Clinical Motion Analysis Laboratory, University Hospital Leuven, Leuven, Belgium; KU Leuven Department of Rehabilitation Sciences, Leuven, Belgium.
Insights
This study quantifies distinct muscle activation patterns in children with spastic cerebral palsy (CP). Findings reveal velocity-dependent activation, with unique patterns varying by muscle and individual, impacting treatment considerations.
Area of Science:
- Neurology
- Biomedical Engineering
- Pediatric Rehabilitation
Background:
- Spasticity is typically defined by velocity-dependent stretch reflex activation.
- Pathological muscle activity in neurological conditions like stroke and spinal cord injury can present diverse activation patterns.
- Distinct muscle activation patterns in the lower limbs of children with spastic cerebral palsy (CP) remain underexplored.
Purpose of the Study:
- To utilize an instrumented assessment to quantify varied muscle activation patterns in four lower-limb muscles of children with CP.
- To investigate the muscle- and subject-specific nature of these activation patterns.
- To evaluate the reliability of quantitative parameters for categorizing muscle activation.
Main Methods:
- Fifty-four children with CP underwent instrumented assessment involving passive, single-joint, sagittal-plane movements at increasing velocities.
- Synchronous recording of muscle activity (electromyography - EMG) and joint motion (inertial sensors) from adductors, medial hamstrings, rectus femoris, and gastrocnemius.
- Visual categorization of muscle activation patterns based on normalized root mean square EMG (RMS-EMG) across positions and velocities, followed by quantitative parameter definition and comparison.
Main Results:
- All observed muscle activation patterns exhibited high velocity-dependency, with over half also showing low velocity-dependent activation.
- Muscle activation patterns were significantly muscle- and subject-specific (p<0.01).
- Comparing RMS-EMG across incremental position zones during low-velocity stretches proved most sensitive for pattern categorization (p<0.01), with moderate to good intra-rater reliability for quantitative parameters.
Conclusions:
- Instrumented assessment effectively quantifies distinct muscle activation patterns in children with spastic CP, highlighting significant inter-individual and inter-muscular variability.
- The findings challenge a singular definition of spasticity, suggesting diverse underlying mechanisms contribute to pathological muscle activity.
- Further research is warranted to determine if these identified muscle activation patterns influence treatment response in pediatric CP.
Abstract:
The definition of spasticity as a velocity-dependent activation of the tonic stretch reflex during a stretch to a passive muscle is the most widely accepted. However, other mechanisms are also thought to contribute to pathological muscle activity and, in patients post-stroke and spinal cord injury can result in different activation patterns. In the lower-limbs of children with spastic cerebral palsy (CP) these distinct activation patterns have not yet been thoroughly explored. The aim of the study was to apply an instrumented assessment to quantify different muscle activation patterns in four lower-limb muscles of children with CP. Fifty-four children with CP were included (males/females n = 35/19; 10.8 ± 3.8 yrs; bilateral/unilateral involvement n = 32/22; Gross Motor Functional Classification Score I-IV) of whom ten were retested to evaluate intra-rater reliability. With the subject relaxed, single-joint, sagittal-plane movements of the hip, knee, and ankle were performed to stretch the lower-limb muscles at three increasing velocities. Muscle activity and joint motion were synchronously recorded using inertial sensors and electromyography (EMG) from the adductors, medial hamstrings, rectus femoris, and gastrocnemius. Muscles were visually categorised into activation patterns using average, normalized root mean square EMG (RMS-EMG) compared across increasing position zones and velocities. Based on the visual categorisation, quantitative parameters were defined using stretch-reflex thresholds and normalized RMS-EMG. These parameters were compared between muscles with different activation patterns. All patterns were dominated by high velocity-dependent muscle activation, but in more than half, low velocity-dependent activation was also observed. Muscle activation patterns were found to be both muscle- and subject-specific (p<0.01). The intra-rater reliability of all quantitative parameters was moderate to good. Comparing RMS-EMG between incremental position zones during low velocity stretches was found to be the most sensitive in categorizing muscles into activation patterns (p<0.01). Future studies should investigate whether muscles with different patterns react differently to treatment.
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