You are as fast as your motor neurons: speed of recruitment and maximal discharge of motor neurons determine the maximal rate of force development in humans
File(s)A_DelVecchio_et_al_RapidContractions_revision.docx (106.24 KB)
Accepted version
Author(s)
Type
Journal Article
Abstract
KEY POINTS: We propose and validate a method for accurately identifying the activity of populations of motor neurons during contractions at maximal rate of force development in humans. The behaviour of the motor neuron pool during rapid voluntary contractions in humans is presented. We show with this approach that the motor neuron recruitment speed and maximal motor unit discharge rate largely explains the individual ability in generating rapid force contractions. The results also indicate that the synaptic inputs received by the motor neurons before force is generated dictate human potential to generate force rapidly. This is the first characterization of the discharge behaviour of a representative sample of human motor neurons during rapid contractions. ABSTRACT: During rapid contractions, motor neurons are recruited in a short burst and begin to discharge at high frequencies (up to >200 Hz). In the present study, we investigated the behaviour of relatively large populations of motor neurons during rapid (explosive) contractions in humans, applying a new approach to accurately identify motor neuron activity simultaneous to measuring the rate of force development. The activity of spinal motor neurons was assessed by high-density electromyographic decomposition from the tibialis anterior muscle of 20 men during isometric explosive contractions. The speed of motor neuron recruitment and the instantaneous motor unit discharge rate were analysed as a function of the impulse (the time-force integral) and the maximal rate of force development. The peak of motor unit discharge rate occurred before force generation and discharge rates decreased thereafter. The maximal motor unit discharge rate was associated with the explosive force variables, at the whole population level (r2 = 0.71 ± 0.12; P < 0.001). Moreover, the peak motor unit discharge and maximal rate of force variables were correlated with an estimate of the supraspinal drive, which was measured as the speed of motor unit recruitment before the generation of afferent feedback (P < 0.05). We show for the first time the full association between the effective neural drive to the muscle and human maximal rate of force development. The results obtained in the present study indicate that the variability in the maximal contractile explosive force of the human tibialis anterior muscle is determined by the neural activation preceding force generation.
Date Issued
2019-05-01
Date Acceptance
2019-02-04
Citation
The Journal of Physiology, 2019, 597 (9), pp.2445-2456
ISSN
1469-7793
Publisher
Wiley
Start Page
2445
End Page
2456
Journal / Book Title
The Journal of Physiology
Volume
597
Issue
9
Copyright Statement
© 2019 The Authors. The Journal of Physiology. The Physiological Society. This is the peer reviewed version of the following article, which has been published in final form at https://physoc.onlinelibrary.wiley.com/doi/full/10.1113/JP277396.
Sponsor
Commission of the European Communities
Identifier
https://www.ncbi.nlm.nih.gov/pubmed/30768687
Grant Number
737570
Subjects
Ballistic contractions
EMG Decomposition
Motor unit
Neural Drive
Spike frequency adaptation
Publication Status
Published
Coverage Spatial
England
Date Publish Online
2019-02-15