Abstract
Complex musculoskeletal complications in children with hypermobility spectrum disorder (HSD) include pain, proprioception deficits, and joint instability, which may result in movement dysfunction during walking. However, no studies have explored the inter-joint coordination deficits in children with HSD. The purpose of this study was to determine the lower extremity inter-joint coupling angles, patterns, and variability during walking in children with HSD compared to children without HSD (non-HSD). Ankle, knee, and hip kinematics during the stance phase of walking in 18 children with HSD and 18 children without HSD were measured using three-dimensional motion analysis. Coupling angles, patterns, and variability of hip-knee, hip-ankle, and knee-ankle were quantified in the sagittal, frontal, and transverse planes using vector coding techniques. Statistical modeling of coupling angles on sine and cosine scales and bootstrapped standard errors were used to compare coupling angles between HSD and non-HSD groups. Permutational multivariate analysis of variance and statistical non-parametric mapping two-sample t-tests were used to compare the coupling patterns and variability between HSD and non-HSD groups, respectively. Our results indicated that coupling angles, patterns, and variability were not significantly different between the groups. These findings suggest that lower extremity inter-joint coordination and its variability during walking might not be a promising area for further research or intervention in children with HSD. Further research could use other biomechanical methods to investigate coordination deficits in pediatric patients with HSD, and how aging and disease progression are associated with coordination deficits in individuals with HSD.
| Original language | English |
|---|---|
| Article number | 112151 |
| Journal | Journal of Biomechanics |
| Volume | 170 |
| DOIs | |
| State | Published - Jun 2024 |
Bibliographical note
Publisher Copyright:© 2024 Elsevier Ltd
Funding
We thank Alyssa Schnorenberg, Amy Ott, Caroline Kielczewski, Jordyn Prell, Lisa Koneazny, Sabrina Edwardson, Samantha Schwartz, and Stephanie Gerber for their assistance with this study. This work was supported by the Administration for Community Living, U.S. Department of Health and Human Services, National Institute on Disability, Independent Living, and Rehabilitation Research (90ARHF0006), Ehlers-Danlos Society Microgrant, the UWM College of Health Sciences Stimulus Project to Accelerate Research Clusters (SPARC) grant, and the Children’s Specialty Group at Children’s Wisconsin. We thank Alyssa Schnorenberg, Amy Ott, Caroline Kielczewski, Jordyn Prell, Lisa Koneazny, Sabrina Edwardson, Samantha Schwartz, and Stephanie Gerber for their assistance with this study. This work was supported by the Administration for Community Living, U.S. Department of Health and Human Services, National Institute on Disability, Independent Living, and Rehabilitation Research (90ARHF0006), Ehlers-Danlos Society Microgrant, the UWM College of Health Sciences Stimulus Project to Accelerate Research Clusters (SPARC) grant, and the Children's Specialty Group at Children's Wisconsin.
| Funders | Funder number |
|---|---|
| University of Wyoming College of Health Sciences | |
| Ehlers-Danlos Society Microgrant | |
| Administration for Community Living | |
| Children's Specialty Group at Children's Wisconsin | |
| Children’s Specialty Group at Children’s Wisconsin | |
| U.S. Department of Health and Human Services | |
| National Institute of Disability, Independent Living, and Rehabilitation Research (NIDILRR) | 90ARHF0006 |
Keywords
- Coordination
- Gait
- Hypermobility
- Kinematics
- Vector coding
ASJC Scopus subject areas
- Biophysics
- Biomedical Engineering
- Orthopedics and Sports Medicine
- Rehabilitation
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