Exploring gastrocnemius medialis behavior during gait in children with cerebral palsy across different gait patterns

Babette Mooijekind1, Marjolein M van der Krogt2, Eline Flux2

  • 1Amsterdam UMC, Vrije Universiteit Amsterdam, Department of Rehabilitation Medicine, Amsterdam, the Netherlands,; Ghent University, Department of Rehabilitation Sciences, Gent, Belgium; Amsterdam Movement Sciences, Rehabilitation and Development, Amsterdam, the Netherlands.

Insights

Gastrocnemius medialis behavior is altered in children with spastic cerebral palsy, impacting gait. Mildly affected gait shows more muscular deviations, while equinus and crouch gaits also affect tendons.

Area of Science:

  • Biomechanics
  • Pediatric Neurology
  • Musculoskeletal Research

Background:

  • Children with spastic cerebral palsy exhibit diverse gait patterns and muscle changes.
  • Gastrocnemius medialis muscle function during walking varies in children with cerebral palsy.

Purpose of the Study:

  • To investigate gastrocnemius medialis behavior during gait in typically developing children and those with cerebral palsy.
  • To compare muscle-tendon unit, fascicle, belly, and tendon dynamics across different gait patterns in cerebral palsy.

Main Methods:

  • Dynamic ultrasound imaging assessed muscle-tendon unit mechanics in 18 children with spasticity and 16 typically developing children.
  • Statistical analysis identified differences between groups and across three distinct gait patterns in cerebral palsy.

Main Results:

  • Children with cerebral palsy had greater tendon lengthening during early stance but decreased fascicle shortening during push-off.
  • Mildly affected gait showed pathological muscle belly lengthening; equinus and crouch gaits exhibited reduced tendon lengthening.

Conclusions:

  • Gastrocnemius medialis function is compromised in children with spastic cerebral palsy.
  • Deviations in muscular and tendinous components vary with gait pattern severity.
  • Interventions for improving gait in cerebral palsy should account for these aberrant muscle-tendon dynamics.
Abstract