Congruency of fatigue-mediated changes in shear wave velocity, upper limb force, muscle activity, and kinematics of the scapular stabilizer muscles

dc.contributor.authorRussell, Matthew S.
dc.contributor.authorDrake, Janessa D. M.
dc.contributor.authorChopp-Hurley, Jaclyn N.
dc.date.accessioned2026-09-11T18:02:13Z
dc.date.available2026-09-11T18:02:13Z
dc.date.issued2026-04-09
dc.description© 2026 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license ( http://creativecommons.org/licenses/by-nc-nd/4.0/ ).
dc.description.abstractUltrasonographic shear wave elastography is a new technique for assessing muscle stiffness in vivo. Such insights may be valuable to uncover fatigue-mediated muscle stiffness and control changes at the shoulder, for which much variability remains unexplained through EMG-based methods. This study assessed fatigue-mediated changes in shear wave velocity (SWV), EMG root-mean-squared (RMS) amplitude, EMG mean-power-frequency (MdPF), and force output from upper trapezius, middle trapezius, lower trapezius, and serratus anterior, to determine whether SWV may provide a significant predictive variance in the quantification of muscle fatigue and fatigue-mediated scapulothoracic kinematics changes. 15 males and 15 females had their scapular stabilizer muscles and scapulothoracic kinematics assessed before and after a targeted muscle fatigue protocol. Results indicate that EMG RMS amplitude and EMG MdPF were most sensitive to fatigue-mediated changes at 100% contraction intensity, while SWV appeared most sensitive at 30% and 50% contraction intensity. Scapulothoracic kinematics changes appeared most sensitive to fatigue-mediated EMG MdPF changes. These results suggest that EMG MdPF changes may be elusive in a highly redundant muscular system like the shoulder due to its association with kinematics changes altering load-sharing strategies. SWV increases at contraction intensities ≤ 50% suggest post-exercise muscle edema is a likely physiological mechanism.
dc.description.sponsorship(Canada Foundation for Innovation, Natural Sciences and Engineering Research Council, Ontario Research Fund) This project was funded by Natural Sciences and Engineering Research Councils of Canada Discovery Grants held by each Dr. Jaclyn Hurley and Dr. Janessa Drake, and an Alexander Graham Bell Post graduate Doctoral Scholarship held by Matthew S. Russell. Funding for the equipment used in this project was provided by the Canada Foundation for Innovation and the Ontario Research Fund.
dc.format.mediumPrint-Electronic
dc.identifier.issn1050-6411
dc.identifier.issn1873-5711
dc.identifier.other103157
dc.identifier.urihttps://doi.org/10.1016/j.jelekin.2026.103157
dc.identifier.urihttps://hdl.handle.net/10315/44055
dc.language.isoen
dc.publisherElsevier
dc.rightsAttribution-NonCommercial-NoDerivatives 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subjectMedical physiology
dc.subjectBiomedical and clinical sciences
dc.subjectHealth sciences
dc.subjectSports science and exercise
dc.subjectClinical research
dc.subjectRehabilitation
dc.subjectPhysical rehabilitation
dc.subjectPhysical
dc.subjectBiological and endogenous factors
dc.subjectMusculoskeletal
dc.subjectHumans
dc.subjectMuscle fatigue
dc.subjectFemale
dc.subjectMuscle, skeletal
dc.subjectMale
dc.subjectScapula
dc.subjectElasticity imaging techniques
dc.subjectMuscle contraction
dc.subjectElectromyography
dc.subjectAdult
dc.subjectUpper extremity
dc.subjectShoulder joint
dc.subjectYoung adult
dc.subjectBiomechanical phenomena
dc.subjectUltrasound
dc.subjectStiffness
dc.subjectShoulder
dc.subjectFatigue
dc.subject.meshHumans
dc.subject.meshMuscle Fatigue
dc.subject.meshFemale
dc.subject.meshMuscle, Skeletal
dc.subject.meshMale
dc.subject.meshScapula
dc.subject.meshElasticity Imaging Techniques
dc.subject.meshMuscle Contraction
dc.subject.meshElectromyography
dc.subject.meshAdult
dc.subject.meshUpper Extremity
dc.subject.meshShoulder Joint
dc.subject.meshYoung Adult
dc.subject.meshBiomechanical Phenomena
dc.subject.meshUpper Extremity
dc.subject.meshMuscle, Skeletal
dc.subject.meshScapula
dc.subject.meshShoulder Joint
dc.subject.meshHumans
dc.subject.meshElectromyography
dc.subject.meshMuscle Fatigue
dc.subject.meshMuscle Contraction
dc.subject.meshAdult
dc.subject.meshFemale
dc.subject.meshMale
dc.subject.meshElasticity Imaging Techniques
dc.subject.meshYoung Adult
dc.subject.meshBiomechanical Phenomena
dc.subject.meshHumans
dc.subject.meshMuscle Fatigue
dc.subject.meshFemale
dc.subject.meshMuscle, Skeletal
dc.subject.meshMale
dc.subject.meshScapula
dc.subject.meshElasticity Imaging Techniques
dc.subject.meshMuscle Contraction
dc.subject.meshElectromyography
dc.subject.meshAdult
dc.subject.meshUpper Extremity
dc.subject.meshShoulder Joint
dc.subject.meshYoung Adult
dc.subject.meshBiomechanical Phenomena
dc.symplectic.journalJournal of Electromyography and Kinesiology
dc.symplectic.pagination103157-
dc.symplectic.subtypeJournal article
dc.symplectic.volume88
dc.titleCongruency of fatigue-mediated changes in shear wave velocity, upper limb force, muscle activity, and kinematics of the scapular stabilizer muscles
dc.typeArticle

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