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.

Plos One
|March 22, 2014
PubMed

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.