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Published on: April 18, 2011
Characterization of spasticity in cerebral palsy: dependence of catch angle on velocity
Yi-Ning Wu1, Yupeng Ren, Ashlee Goldsmith
1Rehabilitation Institute of Chicago, IL 60611, USA.
Insights
Children with cerebral palsy (CP) exhibit increased spasticity and stiffness, with resistance escalating with velocity. This study quantifies spasticity in CP, revealing velocity and position-dependent characteristics.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Pediatric Rehabilitation
Background:
- Cerebral palsy (CP) is a common neurodevelopmental disorder affecting motor control.
- Spasticity, a hallmark symptom of CP, significantly impacts functional abilities.
- Quantifying spasticity under controlled conditions is crucial for understanding its biomechanical underpinnings.
Purpose of the Study:
- To evaluate spasticity in children with cerebral palsy (CP) using a manual spasticity evaluator.
- To assess the relationship between spasticity, velocity, and joint biomechanics in CP.
- To differentiate spasticity characteristics between children with CP and typically developing peers.
Main Methods:
- Employed a manual spasticity evaluator with real-time audio-visual feedback to control velocities (90, 180, 270 deg/s) and torques.
- Evaluated 10 children with spastic CP and 10 typically developing children.
- Measured joint position, resistance torque, torque rate, elbow range of motion (ROM), stiffness, and energy loss.
Main Results:
- Children with CP demonstrated significantly higher reflex-mediated torque and increased torque with velocity compared to controls (p<0.001).
- Catch angle was velocity-dependent, occurring later at higher velocities in children with CP (p=0.005).
- CP group exhibited reduced ROM (p<0.05), increased stiffness (p<0.001), and greater energy loss (p=0.003).
Conclusions:
- Spasticity in children with CP is velocity-dependent and may also be position-dependent.
- Higher velocities in CP lead to a delayed catch angle, indicating increased resistance due to joint positioning in stiffer regions.
- Findings highlight the complex biomechanical nature of spasticity in CP, informing therapeutic strategies.
Aim:
To evaluate spasticity under controlled velocities and torques in children with cerebral palsy (CP) using a manual spasticity evaluator.
Method:
The study involved 10 children with spastic CP (six males, four females; mean age 10 y 1 mo, SD 2 y 9 mo, range 7-16 y; one with quadriplegia, six with right hemiplegia, three with left hemiplegia; Gross Motor Function Classification System levels I [n=2], II [n=3], III [n=2], IV [n=2], and V [n=1]; Manual Ability Classification System levels II [n=5], III [n=4], and V [n=1]) and 10 typically developing participants (four males, six females; mean age 10 y 3 mo, SD 2 y 7 mo, range 7-15 y). Spasticity and catch angle were evaluated using joint position, resistance torque, and torque rate at velocities of 90 degrees, 180 degrees, and 270 degrees per second, controlled using real-time audio-visual feedback. Biomechanically, elbow range of motion (ROM), stiffness, and energy loss were determined during slow movement (30 degrees/s) and under controlled terminal torque.
Results:
Compared with typically developing children, children with CP showed higher reflex-mediated torque (p<0.001) and the torque increased more rapidly with increasing velocity (p<0.001). Catch angle was dependent on velocity and occurred later with increasing velocity (p=0.005). Children with CP showed smaller ROM (p<0.05), greater stiffness (p<0.001), and more energy loss (p=0.003).
Interpretation:
Spasticity with velocity dependence may also be position-dependent. The delayed catch angle at higher velocities indicates that the greater resistance felt by the examiner at higher velocities was also due to position change, because the joint was moved further to a stiffer position at higher velocities.
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