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Published in: Experimental Brain Research 1/2011

01-01-2011 | Research Article

Motor unit discharge rates of the anconeus muscle during high-velocity elbow extensions

Authors: B. Harwood, A. W. Davidson, C. L. Rice

Published in: Experimental Brain Research | Issue 1/2011

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Abstract

Motor unit recruitment and motor unit discharge rate (MUDR) have been widely studied in isometric conditions but minimally during velocity-dependent contractions. For isometric contractions, surface electromyography (EMG) activity of the elbow extensors plateaus at near maximal torques (Le Bozec et al. 1980; Le Bozec and Maton 1982). One study (Maton and Bouisset 1975) recorded single motor unit (MU) activity at maximal velocities; however, only the rate of the first interspike interval (ISI) was reported and likely was not representative of the average MUDR of the MU train. The purpose was to calculate average MUDRs of the anconeus during loaded velocity-dependent contractions from zero velocity (isometric) up to maximal velocity (Vmax25) through a large range of motion. A Biodex dynamometer was used to record elbow extension torque, position, and velocity. Single MU potentials were collected from the anconeus with intramuscular EMG, and surface EMG was sampled from the lateral head of the triceps brachii during maximal voluntary isometric contractions (MVCs) and velocity-dependent contractions loaded at 25% MVC over 120° range of motion at five target velocities (0, 25, 50, 75, 100%Vmax25). Elbow extension velocities ranged from 93 to 494°/s and average MUDR ranged from 11.8 Hz at 25%MVC to 39.0 Hz at 100%Vmax25. Overall average MUDRs increased as a function of velocity, although the root mean square of triceps brachii surface EMG plateaued at 50%Vmax25. Piecewise regression analysis revealed two distinct linear ranges each described by a unique equation, suggesting that MUDRs of the anconeus enter a secondary range of firing, characterized by a steeper slope as velocity approaches maximum.
Literature
go back to reference Abellaneda S, Guissard N, Duchateau J (2009) The relative lengthening of the myotendinous structures in the medial gastrocnemius during passive stretching differs among individuals. J Appl Physiol 106:169–177PubMedCrossRef Abellaneda S, Guissard N, Duchateau J (2009) The relative lengthening of the myotendinous structures in the medial gastrocnemius during passive stretching differs among individuals. J Appl Physiol 106:169–177PubMedCrossRef
go back to reference Altenburg TM, de Haan A, Verdijk PW, van Mechelen W, de Ruiter CJ (2009) Vastus lateralis single motor unit EMG at the same absolute torque production at different knee angles. J Appl Physiol 107:80–89PubMedCrossRef Altenburg TM, de Haan A, Verdijk PW, van Mechelen W, de Ruiter CJ (2009) Vastus lateralis single motor unit EMG at the same absolute torque production at different knee angles. J Appl Physiol 107:80–89PubMedCrossRef
go back to reference Aston-Jones G, Chen S, Zhu Y, Oshinsky ML (2001) A neural circuit for circadian regulation of arousal. Nat Neurosci 4:732–738PubMedCrossRef Aston-Jones G, Chen S, Zhu Y, Oshinsky ML (2001) A neural circuit for circadian regulation of arousal. Nat Neurosci 4:732–738PubMedCrossRef
go back to reference Barry BK, Pascoe MA, Jesunathadas M, Enoka RM (2007) Rate coding is compressed but variability is unaltered for motor units in a hand muscle of old adults. J Neurophysiol 97:3206–3218PubMedCrossRef Barry BK, Pascoe MA, Jesunathadas M, Enoka RM (2007) Rate coding is compressed but variability is unaltered for motor units in a hand muscle of old adults. J Neurophysiol 97:3206–3218PubMedCrossRef
go back to reference Basmajian JV, Griffin WR (1972) Function of anconeus muscle. An electromyographic study. J Bone Joint Surg Am 54:1712–1714PubMed Basmajian JV, Griffin WR (1972) Function of anconeus muscle. An electromyographic study. J Bone Joint Surg Am 54:1712–1714PubMed
go back to reference Binder-Macleod S, Kesar T (2005) Catchlike property of skeletal muscle: recent findings and clinical implications. Muscle Nerve 31:681–693PubMedCrossRef Binder-Macleod S, Kesar T (2005) Catchlike property of skeletal muscle: recent findings and clinical implications. Muscle Nerve 31:681–693PubMedCrossRef
go back to reference Binder-Macleod SA, Lee SC (1996) Catchlike property of human muscle during isovelocity movements. J Appl Physiol 80:2051–2059PubMed Binder-Macleod SA, Lee SC (1996) Catchlike property of human muscle during isovelocity movements. J Appl Physiol 80:2051–2059PubMed
go back to reference Calvin WH, Schwindt (1972) Steps in production of motoneuron spikes during rhythmic firing. J Neurophysiol 35:297–310PubMed Calvin WH, Schwindt (1972) Steps in production of motoneuron spikes during rhythmic firing. J Neurophysiol 35:297–310PubMed
go back to reference Cheng AJ, Rice CL (2010) Fatigue-induced reductions of torque and shortening velocity are muscle-dependent. Med Sci Sports Exerc 42:1651–1659 Cheng AJ, Rice CL (2010) Fatigue-induced reductions of torque and shortening velocity are muscle-dependent. Med Sci Sports Exerc 42:1651–1659
go back to reference Christensen H, Søgaard K, Jensen BR, Finsen L, Sjøgaard G (1995) Intramuscular and surface EMG power spectrum from dynamic and static contractions. J Electromyo Kinesiol 5:27–36CrossRef Christensen H, Søgaard K, Jensen BR, Finsen L, Sjøgaard G (1995) Intramuscular and surface EMG power spectrum from dynamic and static contractions. J Electromyo Kinesiol 5:27–36CrossRef
go back to reference Christie A, Kamen G (2010) Short-term training adaptations in maximal motor unit firing rates and after hyperpolarization duration. Muscle Nerve 41:651–660PubMed Christie A, Kamen G (2010) Short-term training adaptations in maximal motor unit firing rates and after hyperpolarization duration. Muscle Nerve 41:651–660PubMed
go back to reference Christie A, Greig Inglis J, Kamen G, Gabriel DA (2009) Relationships between surface EMG variables and motor unit firing rates. Eur J Appl Physiol 107:177–185PubMedCrossRef Christie A, Greig Inglis J, Kamen G, Gabriel DA (2009) Relationships between surface EMG variables and motor unit firing rates. Eur J Appl Physiol 107:177–185PubMedCrossRef
go back to reference Del Valle A, Thomas CK (2005) Firing rates of motor units during strong dynamic contractions. Muscle Nerve 32:316–325PubMedCrossRef Del Valle A, Thomas CK (2005) Firing rates of motor units during strong dynamic contractions. Muscle Nerve 32:316–325PubMedCrossRef
go back to reference Desmedt JE, Godaux E (1979) Voluntary motor commands in human ballistic movements. Ann Neurol 5:415–421PubMedCrossRef Desmedt JE, Godaux E (1979) Voluntary motor commands in human ballistic movements. Ann Neurol 5:415–421PubMedCrossRef
go back to reference Duchateau J, Enoka RM (2008) Neural control of shortening and lengthening contractions: influence of task constraints. J Physiol 15:5853–5864CrossRef Duchateau J, Enoka RM (2008) Neural control of shortening and lengthening contractions: influence of task constraints. J Physiol 15:5853–5864CrossRef
go back to reference Farina D (2006) Interpretation of the surface electromyogram in dynamic contractions. Exerc Sport Sci Rev 34:121–127PubMedCrossRef Farina D (2006) Interpretation of the surface electromyogram in dynamic contractions. Exerc Sport Sci Rev 34:121–127PubMedCrossRef
go back to reference Farina D, Merletti R, Enoka RM (2004) The extraction of neural strategies from the surface EMG. J Appl Physiol 96:1486–1495PubMedCrossRef Farina D, Merletti R, Enoka RM (2004) The extraction of neural strategies from the surface EMG. J Appl Physiol 96:1486–1495PubMedCrossRef
go back to reference Fuglevand AJ, Winter DA, Patla AE (1993) Models of recruitment and rate coding organization in motor-unit pools. J Neurophysiol 70:2470–2488PubMed Fuglevand AJ, Winter DA, Patla AE (1993) Models of recruitment and rate coding organization in motor-unit pools. J Neurophysiol 70:2470–2488PubMed
go back to reference Garland SJ, Cooke JD, Miller KJ, Ohtsuki T, Ivanova T (1996) Motor unit activity during human single joint movements. J Neurophysiol 76:1982–1990PubMed Garland SJ, Cooke JD, Miller KJ, Ohtsuki T, Ivanova T (1996) Motor unit activity during human single joint movements. J Neurophysiol 76:1982–1990PubMed
go back to reference Gossen ER, Ivanova TD, Garland SJ (2003) The time course of the motoneurone afterhyperpolarization is related to motor unit twitch speed in human skeletal muscle. J Physiol 552:657–664PubMedCrossRef Gossen ER, Ivanova TD, Garland SJ (2003) The time course of the motoneurone afterhyperpolarization is related to motor unit twitch speed in human skeletal muscle. J Physiol 552:657–664PubMedCrossRef
go back to reference Granit R, Kernell D, Smith RS (1963) Delayed depolarization and the repetitive response to intracellular stimulation of mammalian motoneurones. J Physiol 168:890–910PubMed Granit R, Kernell D, Smith RS (1963) Delayed depolarization and the repetitive response to intracellular stimulation of mammalian motoneurones. J Physiol 168:890–910PubMed
go back to reference Gydikov A, Kosarov D, Kossev A, Kostov K, Trayanova N, Radicheva N (1986) Motor unit potentials at high muscle activity recorded by selective electrodes. Biomed Biochim Acta 45:S63–S68PubMed Gydikov A, Kosarov D, Kossev A, Kostov K, Trayanova N, Radicheva N (1986) Motor unit potentials at high muscle activity recorded by selective electrodes. Biomed Biochim Acta 45:S63–S68PubMed
go back to reference Harwood B, Chleboun GS, Rice CL (2010) Effect of elbow joint angle on anconeus fascicle length and motor unit firing rates [Abstract]. Med Sci Sports Exerc 42:S412 Harwood B, Chleboun GS, Rice CL (2010) Effect of elbow joint angle on anconeus fascicle length and motor unit firing rates [Abstract]. Med Sci Sports Exerc 42:S412
go back to reference Heckman CJ (2009) Motoneuron excitability: the importance of neuromodulatory inputs. Clin Neurophysiol 120:2040–2054PubMedCrossRef Heckman CJ (2009) Motoneuron excitability: the importance of neuromodulatory inputs. Clin Neurophysiol 120:2040–2054PubMedCrossRef
go back to reference Heckman CJ, Binder MD (1991) Computer simulation of the steady-state input-output function of the cat medial gastrocnemius motoneuron pool. J Neurophysiol 65:952–967PubMed Heckman CJ, Binder MD (1991) Computer simulation of the steady-state input-output function of the cat medial gastrocnemius motoneuron pool. J Neurophysiol 65:952–967PubMed
go back to reference Heckman CJ, Binder MD (1993) Computer simulations of motoneuron firing rate modulation. J Neurophysiol 69:1005–1008PubMed Heckman CJ, Binder MD (1993) Computer simulations of motoneuron firing rate modulation. J Neurophysiol 69:1005–1008PubMed
go back to reference Heckman CJ, Gorassini MA, Bennett DJ (2005) Persistent inward currents in motoneuron dendrites: implications for motor output. Muscle Nerve 31:135–156CrossRef Heckman CJ, Gorassini MA, Bennett DJ (2005) Persistent inward currents in motoneuron dendrites: implications for motor output. Muscle Nerve 31:135–156CrossRef
go back to reference Heckman CJ, Hyngstrom AS, Johnson MD (2008) Active properties of motoneurone dendrites: diffuse descending neuromodulation, focused local inhibition. J Physiol 586:1225–1231PubMedCrossRef Heckman CJ, Hyngstrom AS, Johnson MD (2008) Active properties of motoneurone dendrites: diffuse descending neuromodulation, focused local inhibition. J Physiol 586:1225–1231PubMedCrossRef
go back to reference Hornby TG, Hornby TG, McDonagh JC, McDonagh JC, Reinking RM, Stuart DG, Stuart DG (2002) Motoneurons: a preferred firing range across vertebrate species? Muscle Nerve 25:632–648 jacobsPubMedCrossRef Hornby TG, Hornby TG, McDonagh JC, McDonagh JC, Reinking RM, Stuart DG, Stuart DG (2002) Motoneurons: a preferred firing range across vertebrate species? Muscle Nerve 25:632–648 jacobsPubMedCrossRef
go back to reference Hwang K, Han JY, Chung IH (2004) Topographical anatomy of the anconeus muscle for use as a free flap. J Reconstr Microsurg 20:631–636PubMedCrossRef Hwang K, Han JY, Chung IH (2004) Topographical anatomy of the anconeus muscle for use as a free flap. J Reconstr Microsurg 20:631–636PubMedCrossRef
go back to reference Jacobs BL, Martin-Cora FJ, Fornal CA (2002) Activity of medullary serotonergic neurons in freely moving animals. Brain Res Rev 40:45–52PubMedCrossRef Jacobs BL, Martin-Cora FJ, Fornal CA (2002) Activity of medullary serotonergic neurons in freely moving animals. Brain Res Rev 40:45–52PubMedCrossRef
go back to reference Kanosue K, Yoshida M, Akazawa K, Fujii K (1979) The number of active motor units and their firing rates in voluntary contraction of human brachialis muscle. Jpn J Physiol 29:427–443PubMed Kanosue K, Yoshida M, Akazawa K, Fujii K (1979) The number of active motor units and their firing rates in voluntary contraction of human brachialis muscle. Jpn J Physiol 29:427–443PubMed
go back to reference Kato M, Murakami S, Yasuda K (1985) Behavior of single motor units of human tibialis anterior muscle during voluntary shortening contraction under constant load torque. Exp Neurol 90:238–253PubMedCrossRef Kato M, Murakami S, Yasuda K (1985) Behavior of single motor units of human tibialis anterior muscle during voluntary shortening contraction under constant load torque. Exp Neurol 90:238–253PubMedCrossRef
go back to reference Keenan KG, Farina D, Maluf KS, Merletti R, Enoka RM (2005) Influence of amplitude cancellation on the simulated surface electromyogram. J Appl Physiol 98:120–131PubMedCrossRef Keenan KG, Farina D, Maluf KS, Merletti R, Enoka RM (2005) Influence of amplitude cancellation on the simulated surface electromyogram. J Appl Physiol 98:120–131PubMedCrossRef
go back to reference Kernell D (1965) High-frequency repetitive firing of cat lumbrosacral motoneurones stimulated by long-lasting injected currents. Acta Physiol Scand 65:74–86CrossRef Kernell D (1965) High-frequency repetitive firing of cat lumbrosacral motoneurones stimulated by long-lasting injected currents. Acta Physiol Scand 65:74–86CrossRef
go back to reference Kernell D (1979) Rhythmic properties of motoneurones innervating muscle fibres of different speed in m. gastrocnemius medialis of the cat. Brain Res 160:159–162PubMedCrossRef Kernell D (1979) Rhythmic properties of motoneurones innervating muscle fibres of different speed in m. gastrocnemius medialis of the cat. Brain Res 160:159–162PubMedCrossRef
go back to reference Kiehn O, Eken T (1997) Prolonged firing in motor units: evidence of plateau potentials in human motoneurons? J Neurophysiol 78:3061–3068PubMed Kiehn O, Eken T (1997) Prolonged firing in motor units: evidence of plateau potentials in human motoneurons? J Neurophysiol 78:3061–3068PubMed
go back to reference Klass M, Baudry S, Duchateau J (2008) Age-related decline in rate of torque development is accompanied by lower maximal motor unit discharge frequency during fast contractions. J Appl Physiol 104:739–746PubMedCrossRef Klass M, Baudry S, Duchateau J (2008) Age-related decline in rate of torque development is accompanied by lower maximal motor unit discharge frequency during fast contractions. J Appl Physiol 104:739–746PubMedCrossRef
go back to reference Le Bozec S, Maton B (1982) The activity of anconeus during voluntary elbow extension: the effect of lidocaine blocking of the muscle. Electromyogr Clin Neurophysiol 22:265–275PubMed Le Bozec S, Maton B (1982) The activity of anconeus during voluntary elbow extension: the effect of lidocaine blocking of the muscle. Electromyogr Clin Neurophysiol 22:265–275PubMed
go back to reference Le Bozec S, Maton B (1987) Differences between motor unit firing rate, twitch characteristics and fibre type composition in an agonistic muscle group in man. Eur J Appl Physiol Occup Physiol 56:350–355PubMedCrossRef Le Bozec S, Maton B (1987) Differences between motor unit firing rate, twitch characteristics and fibre type composition in an agonistic muscle group in man. Eur J Appl Physiol Occup Physiol 56:350–355PubMedCrossRef
go back to reference Le Bozec S, Maton B, Cnockaert JC (1980) The synergy of elbow extensor muscles during dynamic work in man. I. Elbow extension. Eur J Appl Physiol Occup Physiol 44:255–269PubMedCrossRef Le Bozec S, Maton B, Cnockaert JC (1980) The synergy of elbow extensor muscles during dynamic work in man. I. Elbow extension. Eur J Appl Physiol Occup Physiol 44:255–269PubMedCrossRef
go back to reference Lee RH, Heckman CJ (2000) Adjustable amplification of synaptic input in the dendrites of spinal motoneurons in vivo. J Neurosci 20:6734–6740PubMed Lee RH, Heckman CJ (2000) Adjustable amplification of synaptic input in the dendrites of spinal motoneurons in vivo. J Neurosci 20:6734–6740PubMed
go back to reference Linnamo V, Moritani T, Nicol C, Komi PV (2003) Motor unit activation patterns during isometric, concentric and eccentric actions at different force levels. J Electromyogr Kinesiol 13:93–101PubMedCrossRef Linnamo V, Moritani T, Nicol C, Komi PV (2003) Motor unit activation patterns during isometric, concentric and eccentric actions at different force levels. J Electromyogr Kinesiol 13:93–101PubMedCrossRef
go back to reference MacDonell CW, Ivanova TD, Garland SJ (2008) Afterhyperpolarization time-course and minimal discharge rate in low threshold motor units in humans. Exp Brain Res 189:23–33PubMedCrossRef MacDonell CW, Ivanova TD, Garland SJ (2008) Afterhyperpolarization time-course and minimal discharge rate in low threshold motor units in humans. Exp Brain Res 189:23–33PubMedCrossRef
go back to reference Masakado Y, Akaboshi K, Nagata KimuraA, Chino N (1995) Motor unit firing behavior in slow and fast contractions of the first dorsal interosseous muscle of healthy men. Electroencephalogr Clin Neurophysiol 97:290–295PubMedCrossRef Masakado Y, Akaboshi K, Nagata KimuraA, Chino N (1995) Motor unit firing behavior in slow and fast contractions of the first dorsal interosseous muscle of healthy men. Electroencephalogr Clin Neurophysiol 97:290–295PubMedCrossRef
go back to reference Maton B, Bouisset S (1975) Motor unit activity and preprogramming of movement in man. Electroencephalogr Clin Neurophysiol 38:658–660PubMedCrossRef Maton B, Bouisset S (1975) Motor unit activity and preprogramming of movement in man. Electroencephalogr Clin Neurophysiol 38:658–660PubMedCrossRef
go back to reference Monster AW, Chan H (1977) Isometric force production by motor units of extensor digitorum communis muscle in man. J Neurophysiol 40:1432–1443PubMed Monster AW, Chan H (1977) Isometric force production by motor units of extensor digitorum communis muscle in man. J Neurophysiol 40:1432–1443PubMed
go back to reference Moritz CT, Barry BK, Pascoe MA, Enoka RM (2005) Discharge rate variability influences the variation in force fluctuations across the working range of a hand muscle. J Neurophysiol 93:2449–2459PubMedCrossRef Moritz CT, Barry BK, Pascoe MA, Enoka RM (2005) Discharge rate variability influences the variation in force fluctuations across the working range of a hand muscle. J Neurophysiol 93:2449–2459PubMedCrossRef
go back to reference Murray WM, Buchanan TS, Delp SL (2000) The isometric functional capacity of muscles that cross the elbow. J Biomech 33:943–952PubMedCrossRef Murray WM, Buchanan TS, Delp SL (2000) The isometric functional capacity of muscles that cross the elbow. J Biomech 33:943–952PubMedCrossRef
go back to reference Nussbaumer RM, Ruegg DG, Studer LM, Gabriel JP (2002) Computer simulation of the motoneuron pool–muscle complex. I. Input system and motoneuron pool. Biol Cybern 86:317–333PubMedCrossRef Nussbaumer RM, Ruegg DG, Studer LM, Gabriel JP (2002) Computer simulation of the motoneuron pool–muscle complex. I. Input system and motoneuron pool. Biol Cybern 86:317–333PubMedCrossRef
go back to reference Pasquet B, Carpentier A, Duchateau J (2006) Specific modulation of motor unit discharge for a similar change in fascicle length during shortening and lengthening contractions in humans. J Physiol 577:753–765PubMedCrossRef Pasquet B, Carpentier A, Duchateau J (2006) Specific modulation of motor unit discharge for a similar change in fascicle length during shortening and lengthening contractions in humans. J Physiol 577:753–765PubMedCrossRef
go back to reference Søgaard K, Christensen H, Jensen BR, Finsen L, Sjøgaard G (1996) Motor control and kinetics during low level concentric and eccentric contractions in man. Electroencephalogr Clin Neurophysiol 101:453–460PubMed Søgaard K, Christensen H, Jensen BR, Finsen L, Sjøgaard G (1996) Motor control and kinetics during low level concentric and eccentric contractions in man. Electroencephalogr Clin Neurophysiol 101:453–460PubMed
go back to reference Søgaard K, Christensen H, Fallentin N, Mizuno M, Quistorff Sjøgaard G (1998) Motor unit activation patterns during concentric wrist flexion in humans with different muscle fibre composition. Eur J Appl Physiol Occup Physiol 78:411–416PubMedCrossRef Søgaard K, Christensen H, Fallentin N, Mizuno M, Quistorff Sjøgaard G (1998) Motor unit activation patterns during concentric wrist flexion in humans with different muscle fibre composition. Eur J Appl Physiol Occup Physiol 78:411–416PubMedCrossRef
go back to reference Studer LM, Ruegg DG, Gabriel JP (1999) A model for steady isometric muscle activation. Biol Cybern 80:339–355PubMedCrossRef Studer LM, Ruegg DG, Gabriel JP (1999) A model for steady isometric muscle activation. Biol Cybern 80:339–355PubMedCrossRef
go back to reference Theeuwen M, Gielen CC, Miller LE (1994) The relative activation of muscles during isometric contractions and low-velocity movements against a load. Exp Brain Res 101:493–505PubMedCrossRef Theeuwen M, Gielen CC, Miller LE (1994) The relative activation of muscles during isometric contractions and low-velocity movements against a load. Exp Brain Res 101:493–505PubMedCrossRef
go back to reference Thomas CK, Ross BH, Calancie B (1987) Human motor-unit recruitment during isometric contractions and repeated dynamic movements. J Neurophysiol 57:311–324PubMed Thomas CK, Ross BH, Calancie B (1987) Human motor-unit recruitment during isometric contractions and repeated dynamic movements. J Neurophysiol 57:311–324PubMed
go back to reference Travill AA (1962) Electromyographic study of the extensor apparatus of the forearm. Anat Rec 144:373–376PubMedCrossRef Travill AA (1962) Electromyographic study of the extensor apparatus of the forearm. Anat Rec 144:373–376PubMedCrossRef
go back to reference van Bolhuis BM, Medendorp WP, Gielen CC (1997) Motor unit firing behavior in human arm flexor muscles during sinusoidal isometric contractions and movements. Exp Brain Res 117:120–130PubMedCrossRef van Bolhuis BM, Medendorp WP, Gielen CC (1997) Motor unit firing behavior in human arm flexor muscles during sinusoidal isometric contractions and movements. Exp Brain Res 117:120–130PubMedCrossRef
go back to reference Van Cutsem M, Duchateau J (2005) Preceding muscle activity influences motor unit discharge and rate of torque development during ballistic contractions in humans. J Physiol 562:635–644 Van Cutsem M, Duchateau J (2005) Preceding muscle activity influences motor unit discharge and rate of torque development during ballistic contractions in humans. J Physiol 562:635–644
go back to reference Van Cutsem M, Duchateau J, Hainaut K (1998) Changes in single motor unit behaviour contribute to the increase in contraction speed after dynamic training in humans. J Physiol 513:295–305PubMedCrossRef Van Cutsem M, Duchateau J, Hainaut K (1998) Changes in single motor unit behaviour contribute to the increase in contraction speed after dynamic training in humans. J Physiol 513:295–305PubMedCrossRef
go back to reference Webber SC, Porter MM, Gardiner PF (2009) Modeling age-related neuromuscular changes in humans. Appl Physiol Nutr Metab 34:732–744PubMedCrossRef Webber SC, Porter MM, Gardiner PF (2009) Modeling age-related neuromuscular changes in humans. Appl Physiol Nutr Metab 34:732–744PubMedCrossRef
go back to reference Zhang LQ, Nuber GW (2000) Moment distribution among human elbow extensor muscles during isometric and submaximal extension. J Biomech 33:145–154PubMedCrossRef Zhang LQ, Nuber GW (2000) Moment distribution among human elbow extensor muscles during isometric and submaximal extension. J Biomech 33:145–154PubMedCrossRef
Metadata
Title
Motor unit discharge rates of the anconeus muscle during high-velocity elbow extensions
Authors
B. Harwood
A. W. Davidson
C. L. Rice
Publication date
01-01-2011
Publisher
Springer-Verlag
Published in
Experimental Brain Research / Issue 1/2011
Print ISSN: 0014-4819
Electronic ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-010-2463-4

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