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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.
Abstract:
Cerebral palsy (CP) is caused by a static lesion to the brain occurring in utero or up to the first 2 years of life; it often manifests as musculoskeletal impairments and movement disorders including spasticity and contractures. Variable manifestation of the pathology across individuals, coupled with differing mechanics and treatments, leads to a heterogeneous collection of clinical phenotypes that affect muscles and individuals differently. Growth of muscles in CP deviates from typical development, evident as early as 15 months of age. Muscles in CP may be reduced in volume by as much as 40%, may be shorter in length, present longer tendons, and may have fewer sarcomeres in series that are overstretched compared to typical. Macroscale and functional deficits are likely mediated by dysfunction at the cellular level, which manifests as impaired growth. Within muscle fibres, satellite cells are decreased by as much as 40-70% and the regenerative capacity of remaining satellite cells appears compromised. Impaired muscle regeneration in CP is coupled with extracellular matrix expansion and increased pro-inflammatory gene expression; resultant muscles are smaller, stiffer, and weaker than typical muscle. These differences may contribute to individuals with CP participating in less physical activity, thus decreasing opportunities for mechanical loading, commencing a vicious cycle of muscle disuse and secondary sarcopenia. This narrative review describes the effects of CP on skeletal muscles encompassing substantive changes from whole muscle function to cell-level effects and the effects of common treatments. We discuss growth and mechanics of skeletal muscles in CP and propose areas where future work is needed to understand these interactions, particularly the link between neural insult and cell-level manifestation of CP.
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