Muscle architecture, growth, and biological Remodelling in cerebral palsy: a narrative review

Geoffrey G Handsfield1, Sîan Williams2,3, Stephanie Khuu4

  • 1Auckland Bioengineering Institute, University of Auckland, Auckland CBD, Auckland, 1010, New Zealand. g.handsfield@auckland.ac.nz.

Insights

Cerebral palsy (CP) causes significant muscle impairments, including reduced size, strength, and regeneration due to cellular changes like decreased satellite cells. These muscle deficits in CP contribute to a cycle of disuse and further muscle weakening.

Area of Science:

  • Neurology
  • Muscle Physiology
  • Developmental Biology

Background:

  • Cerebral palsy (CP) results from early brain lesions, leading to movement disorders and musculoskeletal impairments like spasticity.
  • Muscle development in individuals with CP deviates significantly from typical patterns, observable even in early childhood.
  • These deviations include reduced muscle volume, altered muscle length, and changes in muscle fiber structure.

Purpose of the Study:

  • To review the multifaceted effects of cerebral palsy on skeletal muscle structure and function.
  • To explore cellular-level changes within muscles affected by CP.
  • To discuss the impact of CP on muscle growth, mechanics, and the consequences of common treatments.

Main Methods:

  • This study is a narrative review, synthesizing existing literature on cerebral palsy and skeletal muscle.
  • It examines research from whole muscle function down to cellular and molecular changes.
  • The review also considers the effects of various therapeutic interventions.

Main Results:

  • Muscles in CP exhibit reduced volume (up to 40%), altered length, and fewer sarcomeres in series.
  • Satellite cell populations are significantly decreased (40-70%), impairing muscle regeneration.
  • CP-affected muscles show extracellular matrix expansion, increased pro-inflammatory gene expression, leading to smaller, stiffer, and weaker muscles.

Conclusions:

  • Cerebral palsy profoundly impacts skeletal muscle at macro and cellular levels, resulting in impaired growth and regeneration.
  • These muscle deficits can initiate a detrimental cycle of disuse and secondary sarcopenia.
  • Further research is needed to elucidate the precise link between the initial neural insult and the observed cellular pathology in CP muscles.