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A Velocity Stretch Reflex Threshold Based on Muscle-Tendon Unit Peak Acceleration to Detect Possible Occurrences of
Axel Koussou1,2, Raphaël Dumas2, Eric Desailly1
1Pôle Recherche & Innovation, Fondation Ellen Poidatz, 77310 Saint-Fargeau-Ponthierry, France.
Insights
Quantifying spasticity in children with cerebral palsy (CP) is challenging. A new method using musculotendon acceleration to determine velocity stretch reflex thresholds offers a reliable alternative to EMG-Onset methods, providing consistent physiological values during gait analysis.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Pediatric Rehabilitation
Background:
- Spasticity significantly impacts gait in children with cerebral palsy (CP).
- Accurate quantification of spasticity during locomotion is crucial for effective intervention.
- Current methods using electromyography onset (EMG-Onset) for determining stretch reflex thresholds are inconsistent and sensitive to noise.
Purpose of the Study:
- To evaluate the feasibility of determining velocity stretch reflex thresholds from maximal musculotendon acceleration.
- To compare acceleration-based thresholds with traditional EMG-Onset based thresholds.
- To assess the occurrence of spasticity during gait using the new method.
Main Methods:
- Eighteen children with CP underwent clinical gait analysis and instrumented spasticity assessment.
- Simultaneous measurement of EMG, kinematics, and forces.
- Subject-scaled musculoskeletal modeling to determine acceleration-based velocity stretch reflex thresholds.
- Comparison of acceleration-based and EMG-Onset based thresholds for consistency and physiological validity.
Main Results:
- Acceleration-based velocity stretch reflex thresholds closely approximated EMG-based thresholds.
- No statistical difference was observed in spasticity occurrence parameters between the two methods.
- The proposed acceleration-based method consistently yielded physiologically valid results with typical electromechanical delays (50-130 ms).
- Semitendinosus spasticity frequently exceeded its threshold during gait, unlike other measured muscles.
Conclusions:
- Musculotendon acceleration provides a reliable method for determining velocity stretch reflex thresholds.
- This acceleration-based approach offers a consistent and physiologically valid alternative to EMG-Onset methods for assessing spasticity in children with CP during gait.
Abstract:
Spasticity might affect gait in children with cerebral palsy. Quantifying its occurrence during locomotion is challenging. One approach is to determine kinematic stretch reflex thresholds, usually on the velocity, during passive assessment and to search for their exceedance during gait. These thresholds are determined through EMG-Onset detection algorithms, which are variable in performance and sensitive to noisy data, and can therefore lack consistency. This study aimed to evaluate the feasibility of determining the velocity stretch reflex threshold from maximal musculotendon acceleration. Eighteen children with CP were recruited and underwent clinical gait analysis and a full instrumented assessment of their soleus, gastrocnemius lateralis, semitendinosus, and rectus femoris spasticity, with EMG, kinematics, and applied forces being measured simultaneously. Using a subject-scaled musculoskeletal model, the acceleration-based stretch reflex velocity thresholds were determined and compared to those based on EMG-Onset determination. Their consistencies according to physiological criteria, i.e., if the timing of the threshold was between the beginning of the stretch and the spastic catch, were evaluated. Finally, two parameters designed to evaluate the occurrence of spasticity during gait, i.e., the proportion of the gait trial time with a gait velocity above the velocity threshold and the number of times the threshold was exceeded, were compared. The proposed method produces velocity stretch reflex thresholds close to the EMG-based ones. For all muscles, no statistical difference was found between the two parameters designed to evaluate the occurrence of spasticity during gait. Contrarily to the EMG-based methods, the proposed method always provides physiologically consistent values, with median electromechanical delays of between 50 and 130 ms. For all subjects, the semitendinosus velocity during gait usually exceeded its stretch reflex threshold, while it was less frequent for the three other muscles. We conclude that a velocity stretch reflex threshold, based on musculotendon acceleration, is a reliable substitute for EMG-based ones.
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