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Leg and Joint Stiffness in Children with Spastic Diplegic Cerebral Palsy during Level Walking
Ting-Ming Wang1, Hsing-Po Huang2, Jia-Da Li2
1Department of Orthopaedic Surgery, School of Medicine, National Taiwan University, Taipei, Taiwan, R.O.C.
Insights
Children with cerebral palsy (CP) exhibit altered leg and joint stiffness during walking. Their gait control relies more on muscular effort, impacting posture and stability.
Area of Science:
- Biomechanics
- Neurology
- Pediatrics
Background:
- Cerebral palsy (CP) gait analysis often identifies individual joint deviations.
- Limited understanding exists on how these deviations impact overall locomotor system control during walking.
Purpose of the Study:
- To describe locomotor system control in children with diplegic CP.
- To analyze leg stiffness (skeletal and muscular components) and joint stiffness during gait.
Main Methods:
- Modeled lower limbs as non-linear springs to calculate leg stiffness.
- Decomposed leg stiffness into skeletal and muscular components.
- Modeled joints (ankle, knee, hip) as torsional springs to calculate joint stiffness.
- Collected kinematic and forceplate data from 12 children with CP and 12 controls during walking.
Main Results:
- Children with CP showed significantly decreased leg stiffness but increased joint stiffness during the stance phase.
- An exception was observed during terminal stance, where leg stiffness increased.
- The CP group demonstrated increased reliance on muscular contributions for leg stiffness, elevating demands for maintaining posture.
Conclusions:
- Leg stiffness is crucial for modulating gait kinematics and kinetics in diplegic CP.
- Altered leg and joint stiffness patterns reflect compensatory strategies in CP gait.
- Increased muscular demand highlights the challenges in maintaining postural stability for children with CP.
Abstract:
Individual joint deviations are often identified in the analysis of cerebral palsy (CP) gait. However, knowledge is limited as to how these deviations affect the control of the locomotor system as a whole when striving to meet the demands of walking. The current study aimed to bridge the gap by describing the control of the locomotor system in children with diplegic CP in terms of their leg stiffness, both skeletal and muscular components, and associated joint stiffness during gait. Twelve children with spastic diplegia CP and 12 healthy controls walked at a self-selected pace in a gait laboratory while their kinematic and forceplate data were measured and analyzed during loading response, mid-stance, terminal stance and pre-swing. For calculating the leg stiffness, each of the lower limbs was modeled as a non-linear spring, connecting the hip joint center and the corresponding center of pressure, with varying stiffness that was calculated as the slope (gradient) of the axial force vs. the deformation curve. The leg stiffness was further decomposed into skeletal and muscular components considering the alignment of the lower limb. The ankle, knee and hip of the limb were modeled as revolute joints with torsional springs whose stiffness was calculated as the slope of the moment vs. the angle curve of the joint. Independent t-tests were performed for between-group comparisons of all the variables. The CP group significantly decreased the leg stiffness but increased the joint stiffness during stance phase, except during terminal stance where the leg stiffness was increased. They appeared to rely more on muscular contributions to achieve the required leg stiffness, increasing the muscular demands in maintaining the body posture against collapse. Leg stiffness plays a critical role in modulating the kinematics and kinetics of the locomotor system during gait in the diplegic CP.
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