Electromyography, Wavelet Analysis and Muscle Co-Activation as Comprehensive Tools of Movement Pattern Assessment for Injury Prevention in Wheelchair Fencing
Электромиография, вейвлет-анализ и коактивация мышц как комплексные инструменты оценки двигательных паттернов для профилактики травм в фехтовании на колясках
2022-02-25
SCID: 54.1/8c7pybyj
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electromyographyinjury preventionmuscle co-activation indexwavelet coherence analysiswheelchair fencing
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Abstract (AI)
The aim of the study was to determine the correct movement patterns of fencing techniques in wheelchair fencers. Through a comprehensive analysis, the key muscles in the kinematic chain exposed to potential injuries were identified. The study participants were 16 wheelchair fencers, divided into two groups representing two categories of disability: Group A (N = 7) comprising fencers with mild paraplegia, having freedom of movement of the trunk and arms; and Group B (N = 9) comprising fencers with a spinal cord injury and partial paresis of the arms. EMG and an accelerometer were used as the main research tools. The EMG electrodes were placed on the muscles of the sword arm as well as on the left and right sides of the abdomen and torso. The EMG signal was transformed using wavelet analysis, and the muscle activation time and co-activation index (CI) were determined. In Group A fencers, first the back and abdominal muscles were activated, while in Group B, it was the deltoid muscle. The wavelet coherence analysis revealed intermuscular synchronization at 8–20 Hz for Group A fencers and at 5–15 Hz for Group B fencers. In Group A fencers, the co-activation index was 50.94 for the right-side back and abdominal muscles, 50.75 for the ECR-FCR, and 47.99 for the TRI-BC pairs of upper limb muscles. In contrast, Group B fencers demonstrated higher CI values (50.54) only for the postural left-side muscle pairs. Many overload injuries of the shoulder girdle, elbow, postural muscles, spine, and neck have been found to be preventable through modification of current training programs dominated by specialist exercises. Modern wheelchair fencing training should involve neuromuscular coordination and psychomotor exercises. This will facilitate the individualization of training depending on the fencer’s degree of disability and training experience.
Key Findings
1
EMG and accelerometer-based wavelet analysis identified disability-specific movement patterns and potentially injury-prone muscles in wheelchair fencing.
2
Fencers with mild paraplegia activated back and abdominal muscles first, whereas fencers with spinal cord injury and partial arm paresis activated the deltoid first.
3
Group A showed elevated co-activation indices for right back–abdominal muscles (50.94), ECR–FCR (50.75), and TRI–BC (47.99), while Group B showed elevated co-activation primarily in left-side postural muscle pairs (50.54).
4
Intermuscular synchronization occurred at 8–20 Hz in Group A and 5–15 Hz in Group B, indicating disability-related differences in neuromuscular coordination.
5
The findings suggest that modifying training to include neuromuscular coordination and psychomotor exercises could help prevent shoulder, elbow, postural-muscle, spinal, and neck overload injuries and support individualized training.
Research Object
Movement patterns and neuromuscular activity of wheelchair fencers performing fencing techniques
Research Subject
Muscle activation timing, intermuscular synchronization, and co-activation patterns associated with injury risk across fencers with different disabilities
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2022-02-25
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