ADVERTISEMENT

If you are seeing this message, you may be experiencing temporary network problems. Please wait a few minutes and refresh the page. If the problem persists, you may wish to report it to your local Network Manager.

It is also possible that your web browser is not configured or not able to display style sheets. In this case, although the visual presentation will be degraded, the site should continue to be functional. We recommend using the latest version of Microsoft or Mozilla web browser to help minimise these problems.

Wiley InterScience

The Journal of Physiology

The Journal of Physiology

See Also:

Volume 573 Issue 1, Pages 161 - 171

Published Online: 9 May 2006

Journal compilation © 2010 The Physiological Society



< Previous Abstract  |  Next Abstract >

Save Article to My Profile      Download Citation      Request Permissions

Abstract |  References  |  Full Text: HTML, PDF (Size: 492K)  | Related Articles | Citation Tracking

Fatigue properties of human thenar motor units paralysed by chronic spinal cord injury
C. S. Klein 1 , C. K. Häger-Ross 1,2 and C. K. Thomas 1,3
  1 The Miami Project to Cure Paralysis, Department of Neurological Surgery and   3 Department of Physiology and Biophysics, University of Miami Miller School of Medicine, Miami, FL 33136, USA   2 Department of Community Medicine and Rehabilitation, Umeå University, 901 87 Umeå, Sweden
  Corresponding author C. K. Thomas: The Miami Project to Cure Paralysis, University of Miami Miller School of Medicine, 1095 NW 14 Terrace, R48, Miami, FL 33136-2104, USA. Email: cthomas@miami.edu
Copyright 2006 The Authors. Journal compilation © 2006 The Physiological Society

ABSTRACT

Human muscles paralysed chronically by spinal cord injury (SCI) fatigue excessively. Whether these reductions in force reflect a decrease in the fatigue resistance of the motor units is unknown. Our aim was to determine the fatigability of thenar motor units paralysed chronically (10 ± 2 years) by cervical SCI. Surface electromyographic activity (EMG) and force were recorded from 17 paralysed motor units (n= 7 subjects) in response to intraneural motor axon stimulation (13 pulses at 40 Hz, 1 s−1 for 2 min). Unit force decreased progressively, reaching 8–60% of initial after 2 min, whereas both the amplitude and area of the first EMG potentials in the trains increased significantly (both P < 0.05). Thus, transmission of neural signals to the sarcolemma was effective and the reduction in force must reflect impaired processes in the muscle fibres. The median fatigue index for paralysed units (0.31), the ratio of the force at 2 min compared to the initial force, was significantly lower than that for units from control subjects (0.85, P < 0.05), but the distribution of fatigue indices for each population had a similar shape (ranges: 0.08–0.60 and 0.41–0.95, respectively). Hence, chronic paralysis did not limit the range of fatigability typically found for thenar units, only its magnitude. These findings suggest that all paralysed units underwent similar reductions in fatigue resistance. After fatigue, paralysed unit forces were reduced at all frequencies (1–100 Hz, P < 0.05). Twitch contraction and half-relaxation times were increased, as was the frequency needed to produce half maximal force (P < 0.05). Thus, stimulation protocols used to produce functional movements in paralysed muscles need to accommodate the significant and rapid fatigue of the motor units.


(Received 5 December 2005; accepted after revision 26 February 2006; first published online 2 March 2006)

DIGITAL OBJECT IDENTIFIER (DOI)
10.1113/jphysiol.2005.103044 About DOI

Related Articles

  • Find other articles like this in Wiley InterScience
  • Find articles in Wiley InterScience written by any of the authors

Wiley InterScience is a member of CrossRef.

Cross Ref Member


Sign up here
Click here to read the latest papers in this series
Click here to view forthcoming symposia
Editor's Choice
Sign up for Content Alerts