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Quadriceps Muscle Plasticity in Children With Cerebral Palsy

In Vivo Assessment of Quadriceps Muscle Plasticity in Children With Cerebral Palsy

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT00629070
Enrollment
16
Registered
2008-03-05
Start date
2009-01-31
Completion date
2010-12-13
Last updated
2018-05-17

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Cerebral Palsy

Keywords

cerebral palsy, muscle strength, muscle architecture, ultrasound, rehabilitation, rectus femoris, quadriceps muscle

Brief summary

Our primary aim is to determine whether and how muscle architecture of the quadriceps muscles in cerebral palsy (CP) adapts to two separate training programs: traditional strength training (ST) vs. velocity-enhanced training (VT). For the ST group, we hypothesize that muscle size will increase in conjunction with strength. For the VT group, in addition to the above, we hypothesize that fiber length will increase with measures of muscle power. We also hypothesize that walking velocity will improve in both groups but that knee motion and step length will improve only with VT.

Detailed description

Cerebral palsy (CP) is the most common physical disability originating in childhood, occurring in 2-3 per 1,000 live births. Although the primary deficit in CP is injury to the brain, secondary impairments affecting muscle function such as weakness, contractures, and spasticity are often far more debilitating and lead to worsening disability throughout the lifespan. Some have suggested that these muscle changes in CP may be irreversible; however, it is now known that muscles are one of the most 'plastic' tissues in the body. In fact, recent evidence suggests that gross muscle hypertrophy and architectural changes within muscle fibers can occur as early as 3-5 weeks after resistance training in healthy adults. It is also unknown how effectively muscles in CP can adapt to training stimuli that target specific muscle architectural parameters, such as fascicle length and cross-sectional area. These parameters have been observed to be decreased in CP, suggesting loss of sarcomeres in-series (fiber shortening) and in-parallel (muscle atrophy). We propose here that specific training-induced muscle architectural adaptations can occur in CP, leading to improved motor function.

Interventions

Performed 3 x week for 8 weeks on an isokinetic dynamometer (knee extension exercise)at 30 degrees/second; 6 sets of 5 maximum-effort concentric actions

OTHERVelocity-enhanced training

Performed 3 x week for 8 weeks on an isokinetic dynamometer (knee extension exercise). Subjects will perform 2 sets of 5 concentric exertions at 30°/second. The following 4 sets of 5 repetitions will be performed at a faster speed, starting at 60° /second. The velocity will be increased weekly in 15° /second increments up to a maximum of 120°/second.

Sponsors

Medical University of South Carolina
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
NONE

Eligibility

Sex/Gender
ALL
Age
7 Years to 17 Years
Healthy volunteers
No

Inclusion criteria

* Diagnosis of cerebral palsy * Gross motor function classification system levels I, II, or III * Ages 7 to 17

Exclusion criteria

* Orthopedic or neurosurgery within the past year * Botulinum toxin injections within the 4 months prior to the study

Design outcomes

Primary

MeasureTime frame
Muscle thicknessbefore and after intervention

Secondary

MeasureTime frame
Fascicle lengthbefore and after intervention
Muscle strength (peak torque)before and after intervention
Muscle powerbefore and after intervention

Countries

United States

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026