Force-Frequency and Fatigue Properties of Motor Units in Muscles That Control Digits of the Human Hand
- 1 April 1999
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 81 (4) , 1718-1729
- https://doi.org/10.1152/jn.1999.81.4.1718
Abstract
Force-frequency and fatigue properties of motor units in muscles that control digits of the human hand. Modulation of motor unit activation rate is a fundamental process by which the mammalian nervous system encodes muscle force. To identify how rate coding of force may change as a consequence of fatigue, intraneural microstimulation of motor axons was used to elicit twitch and force-frequency responses before and after 2 min of intermittent stimulation (40-Hz train for 330 ms, 1 train/s) in single motor units of human long finger flexor muscles and intrinsic hand muscles. Before fatigue, two groups of units could be distinguished based on the stimulus frequency needed to elicit half-maximal force; group 1 (n = 8) required 9.1 ± 0.5 Hz (means ± SD), and group 2 (n = 5) required 15.5 ± 1.1 Hz. Twitch contraction times were significantly different between these two groups (group 1 = 66. 5 ms; group 2 = 45.9 ms). Overall 18% of the units were fatigue resistant [fatigue index (FI) > 0.75], 64% had intermediate fatigue sensitivity (0.25 ≤ FI ≤ 0.75), and 18% were fatigable (FI < 0.25). However, fatigability and tetanic force were not significantly different among groups. Therefore unlike findings in some other mammals, fast-contracting motor units were neither stronger nor more susceptible to fatigue than slowly contracting units. Fatigue, however, was found to be greatest in those units that initially exerted the largest forces. Despite significant slowing of contractile responses, fatigue caused the force-frequency relation to become displaced toward higher frequencies (44 ± 41% increase in frequency for half-maximal force). Moreover, the greatest shift in the force-frequency relation occurred among those units exhibiting the largest force loss. A selective deficit in force at low frequencies of stimulation persisted for several minutes after the fatigue task. Overall, these findings suggest that with fatigue higher activation rates must be delivered to motor units to maintain the same relative level of force. Questions regarding classification of motor units and possible mechanisms by which fatigue-related slowing might coexist with a shift in the force-frequency curve toward higher frequencies are discussed.Keywords
This publication has 74 references indexed in Scilit:
- Defective Excitation-Contraction Coupling in Experimental Cardiac Hypertrophy and Heart FailureScience, 1997
- Neural Aspects of FatigueThe Neuroscientist, 1996
- Slow recovery of force in single skeletal muscle fibresActa Physiologica Scandinavica, 1996
- Morphological Features and Activation Patterns of Motor UnitsJournal Of Clinical Neurophysiology, 1995
- Parameters of human motor unit twitches obtained by intramuscular microstimulationNeuromuscular Disorders, 1992
- Structural changes in single muscle fibers after stimulation at a low frequency.The Journal of general physiology, 1979
- The fast twitch motor units of cat ankle flexors. 1. Tripartite classification on basis of fatigabilityBrain Research, 1977
- The mechanical properties of human motor units with special reference to their fatiguability and recruitment thresholdBrain Research, 1977
- Fast and slow twitch units in a human muscleJournal of Neurology, Neurosurgery & Psychiatry, 1971
- A functional and histochemical characterization of motor units in a heterogeneous muscle (flexor digitorum longus) of the catJournal of Comparative Neurology, 1966