Persistent inward currents in tibialis anterior motoneurons can be reliably estimated within the same session.

Ricardo N O Mesquita, Robin Souron, Thomas Lapole, Stéphane Baudry, Vianney Rozand, Eleanor K O'Brien, Callum G Brownstein

Journal: Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology 2024;78():102911

PMID: 38879997

Abstract

The response of spinal motoneurons to synaptic input greatly depends on the activation of persistent inward currents (PICs), the contribution of which can be estimated through the paired motor unit technique. Yet, the intra-session test-retest reliability of this measurement remains to be fully established. Twenty males performed isometric triangular dorsiflexion contractions to 20 and 50 % of maximal torque at baseline and after a 15-min resting period. High-density electromyographic signals (HD-EMG) of the tibialis anterior were recorded with a 64-electrode matrix. HD-EMG signals were decomposed, and motor units tracked across time points to estimate the contribution of PICs to motoneuron firing through quantification of motor unit recruitment-derecruitment hysteresis (ΔF). A good intraclass correlation coefficient (ICC = 0.75 [0.63, 0.83]) and a large repeated measures correlation coefficient (r = 0.65 [0.49, 0.77]; p < 0.001) were found between ΔF values obtained at both time points for 20 % MVC ramps. For 50 % MVC ramps, a good ICC (0.77 [0.65, 0.85]) and a very large repeated measures correlation coefficient (r = 0.73 [0.63, 0.80]; p < 0.001) were observed. Our data suggest that ΔF scores can be reliably investigated in tibialis anterior motor units during both low- and moderate-intensity contractions within a single experimental session.

Copyright © 2024 The Authors. Published by Elsevier Ltd.. All rights reserved.

Address: Laboratoire Interuniversitaire de Biologie de la Motricité, Université Jean Monnet Saint-Etienne, Lyon 1, Université Savoie Mont-Blanc, Saint-Etienne, France. Electronic address: [email protected].; Department of Electrical Engineering, Chalmers University of Technology, Gothenburg, Sweden; School of Medical and Health Sciences, Edith Cowan University, Perth, Australia; Neuroscience Research Australia, Sydney, Australia. Electronic address: [email protected].; Laboratory of Applied Biology, Research Unit in Applied Neurophysiology (LABNeuro), Faculty of Motor Sciences, Université Libre de Bruxelles (ULB), Belgium.; Nantes Université, Mouvement - Interactions - Performance, MIP, UR 4334, F-44000 Nantes, France.; School of Medical and Health Sciences, Edith Cowan University, Perth, Australia; Centre for Precision Health, Edith Cowan University, Perth, Western Australia, Australia.; Newcastle University, School of Biomedical, Nutritional and Sports Sciences, Newcastle-upon-Tyne, United Kingdom.; Laboratoire Interuniversitaire de Biologie de la Motricité, Université Jean Monnet Saint-Etienne, Lyon 1, Université Savoie Mont-Blanc, Saint-Etienne, France; INSERM UMR1093-CAPS, Université Bourgogne Franche-Comté, UFR des Sciences du Sport, F-21000 Dijon, France.

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