Evaluating stability of human spine in static tasks: a combined -computational study.

Comput Methods Biomech Biomed Engin

Division of Applied Mechanics, Department of Mechanical Engineering, Polytechnique Montréal, Canada.

Published: August 2022

Various interpretations and parameters have been proposed to assess spinal stability such as antagonist muscle coactivity, trunk stiffness and spinal buckling load; however, the correlation between these parameters remains unknown. We evaluated spinal stability during different tasks while changing the external moment and load height and investigated likely relationships between different EMG- and model-based parameters (e.g., EMG coactivity ratio, trunk stiffness, force coactivity ratio) and stability margins. EMG and kinematics of 40 young healthy subjects were recorded during various quasi-static tasks. Muscle forces, trunk stiffness and stability margins were calculated by a nonlinear subject-specific EMG-assisted-optimization musculoskeletal model of the trunk. The load elevation and external moment increased muscle activities and trunk stiffness while all stability margins (i.e., buckling loads) decreased. The force coactivity ratio was strongly correlated with the hand-load stability margin (i.e., additional weight in hands to initiate instability; = 0.54) demonstrating the stabilizing role of abdominal muscles. The total trunk stiffness (Pearson's  = 0.96) and the sum of EMGs of back muscles (Pearson's  = 0.65) contributed the most to the T1 stability margin (i.e., additional required load at T1 for instability/buckling). Force coactivity ratio and trunk stiffness can be used as alternative spinal stability metrics.

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Source
http://dx.doi.org/10.1080/10255842.2021.2004399DOI Listing

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