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Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task

BACKGROUND: The unipodal stance task is a clinical task that quantifies postural stability and alignment of the lower limb joints, while weight bearing on one leg. As persons with knee osteoarthritis (KOA) have poor postural and knee joint stability, objective assessment of this task might be useful...

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Autores principales: van der Straaten, R., Wesseling, M., Jonkers, I., Vanwanseele, B., Bruijnes, A. K. B. D., Malcorps, J., Bellemans, J., Truijen, J., De Baets, L., Timmermans, A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7224481/
https://www.ncbi.nlm.nih.gov/pubmed/32407415
http://dx.doi.org/10.1371/journal.pone.0232513
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author van der Straaten, R.
Wesseling, M.
Jonkers, I.
Vanwanseele, B.
Bruijnes, A. K. B. D.
Malcorps, J.
Bellemans, J.
Truijen, J.
De Baets, L.
Timmermans, A.
author_facet van der Straaten, R.
Wesseling, M.
Jonkers, I.
Vanwanseele, B.
Bruijnes, A. K. B. D.
Malcorps, J.
Bellemans, J.
Truijen, J.
De Baets, L.
Timmermans, A.
author_sort van der Straaten, R.
collection PubMed
description BACKGROUND: The unipodal stance task is a clinical task that quantifies postural stability and alignment of the lower limb joints, while weight bearing on one leg. As persons with knee osteoarthritis (KOA) have poor postural and knee joint stability, objective assessment of this task might be useful. OBJECTIVE: To investigate the discriminant validity of three-dimensional joint kinematics and centre of mass displacement (COM) between healthy controls and persons with knee KOA, during unipodal stance using inertial sensors. Additionally, the reliability, agreement and construct validity are assessed to determine the reproducibility and accuracy of the discriminating parameters. METHODS: Twenty healthy controls and 19 persons with unilateral severe KOA were included. Five repetitions of the unipodal stance task were simultaneously recorded by an inertial sensor system and a camera-based system (gold standard). Statistical significant differences in kinematic waveforms between healthy controls and persons with severe knee KOA were determined using one-dimensional statistical parametric mapping (SPM1D). RESULTS: Persons with severe knee KOA had more lateral trunk lean towards the contralateral leg, more hip flexion throughout the performance of the unipodal stance task, more pelvic obliquity and COM displacement towards the contralateral side. However, for the latter two parameters the minimum detectable change was greater than the difference between healthy controls and persons with severe knee KOA. The construct validity was good (coefficient of multiple correlation 0.75, 0.83 respectively) and the root mean squared error (RMSE) was low (RMSE <1.5°) for the discriminant parameters. CONCLUSION: Inertial sensor based movement analysis can discriminate between healthy controls and persons with severe knee KOA for lateral trunk lean and hip flexion, but unfortunately not for the knee angles. Further research is required to improve the reproducibility and accuracy of the inertial sensor measurements before they can be used to assess differences in tasks with a small range of motion.
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spelling pubmed-72244812020-06-01 Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task van der Straaten, R. Wesseling, M. Jonkers, I. Vanwanseele, B. Bruijnes, A. K. B. D. Malcorps, J. Bellemans, J. Truijen, J. De Baets, L. Timmermans, A. PLoS One Research Article BACKGROUND: The unipodal stance task is a clinical task that quantifies postural stability and alignment of the lower limb joints, while weight bearing on one leg. As persons with knee osteoarthritis (KOA) have poor postural and knee joint stability, objective assessment of this task might be useful. OBJECTIVE: To investigate the discriminant validity of three-dimensional joint kinematics and centre of mass displacement (COM) between healthy controls and persons with knee KOA, during unipodal stance using inertial sensors. Additionally, the reliability, agreement and construct validity are assessed to determine the reproducibility and accuracy of the discriminating parameters. METHODS: Twenty healthy controls and 19 persons with unilateral severe KOA were included. Five repetitions of the unipodal stance task were simultaneously recorded by an inertial sensor system and a camera-based system (gold standard). Statistical significant differences in kinematic waveforms between healthy controls and persons with severe knee KOA were determined using one-dimensional statistical parametric mapping (SPM1D). RESULTS: Persons with severe knee KOA had more lateral trunk lean towards the contralateral leg, more hip flexion throughout the performance of the unipodal stance task, more pelvic obliquity and COM displacement towards the contralateral side. However, for the latter two parameters the minimum detectable change was greater than the difference between healthy controls and persons with severe knee KOA. The construct validity was good (coefficient of multiple correlation 0.75, 0.83 respectively) and the root mean squared error (RMSE) was low (RMSE <1.5°) for the discriminant parameters. CONCLUSION: Inertial sensor based movement analysis can discriminate between healthy controls and persons with severe knee KOA for lateral trunk lean and hip flexion, but unfortunately not for the knee angles. Further research is required to improve the reproducibility and accuracy of the inertial sensor measurements before they can be used to assess differences in tasks with a small range of motion. Public Library of Science 2020-05-14 /pmc/articles/PMC7224481/ /pubmed/32407415 http://dx.doi.org/10.1371/journal.pone.0232513 Text en © 2020 van der Straaten et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
van der Straaten, R.
Wesseling, M.
Jonkers, I.
Vanwanseele, B.
Bruijnes, A. K. B. D.
Malcorps, J.
Bellemans, J.
Truijen, J.
De Baets, L.
Timmermans, A.
Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task
title Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task
title_full Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task
title_fullStr Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task
title_full_unstemmed Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task
title_short Discriminant validity of 3D joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task
title_sort discriminant validity of 3d joint kinematics and centre of mass displacement measured by inertial sensor technology during the unipodal stance task
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7224481/
https://www.ncbi.nlm.nih.gov/pubmed/32407415
http://dx.doi.org/10.1371/journal.pone.0232513
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