Skip to main content
Erschienen in: European Journal of Applied Physiology 2/2018

08.12.2017 | Original Article

The effects of local forearm muscle cooling on motor unit properties

verfasst von: Matthew M. Mallette, Lara A. Green, David A. Gabriel, Stephen S. Cheung

Erschienen in: European Journal of Applied Physiology | Ausgabe 2/2018

Einloggen, um Zugang zu erhalten

Abstract

Purpose

Muscle cooling impairs maximal force. Using needle electromyography (EMG) to assess motor unit properties during muscle cooling, is limited and equivocal. Therefore, we aimed to determine the impact of local muscle cooling on motor unit firing properties using surface EMG decomposition.

Methods

Twenty participants (12 M, 8 F) completed maximal, evoked, and trapezoidal contractions during thermoneutral and cold muscle conditions. Forearm muscle temperature was manipulated using 10-min neutral (~ 32 °C) or 20-min cold (~ 3 °C) water baths. Twitches and maximal voluntary contractions were performed prior to, and after, forearm immersion in neutral or cold water. Motor unit properties were assessed during trapezoidal contractions to 50% baseline force using surface EMG decomposition.

Results

Impaired contractile properties from muscle cooling were evident in the twitch amplitude, duration, and rate of force development indicating that the muscle was successfully cooled from the cold water bath (all d ≥ 0.5, P < 0.05). Surface EMG decomposition showed muscle cooling increased the number of motor units (d = 0.7, P = 0.01) and motor unit action potential (MUAP) duration (d = 0.6, P < 0.001), but decreased MUAP amplitude (d = 0.2, P = 0.012). Individually, neither motor unit firing rates (d = 0.1, P = 0.843) nor recruitment threshold (d = 0.1, P = 0.746) changed; however, the relationship between the recruitment threshold and motor unit firing rate was steeper (d = 1.0, P < 0.001) and had an increased y-intercept (d = 0.9, P = 0.007) with muscle cooling.

Conclusions

Since muscle contractility is impaired with muscle cooling, these findings suggest a compensatory increase in the number of active motor units, and small but coupled changes in motor unit firing rates and recruitment threshold to produce the same force.
Literatur
Zurück zum Zitat Bigland-Ritchie B, Thomas CK, Rice CL et al (1992) Muscle temperature, contractile speed, and motoneuron firing rates during human voluntary contractions. J Appl Physiol 73:2457–2461CrossRefPubMed Bigland-Ritchie B, Thomas CK, Rice CL et al (1992) Muscle temperature, contractile speed, and motoneuron firing rates during human voluntary contractions. J Appl Physiol 73:2457–2461CrossRefPubMed
Zurück zum Zitat Borg GA (1982) Psychophysical bases of perceived exertion. Med Sci Sports Exerc 14:377–381PubMed Borg GA (1982) Psychophysical bases of perceived exertion. Med Sci Sports Exerc 14:377–381PubMed
Zurück zum Zitat Buchthal F, Pinelli P (1951) Action potential analysis in normal muscle. Acta Physiol Scand 25:13–14 Buchthal F, Pinelli P (1951) Action potential analysis in normal muscle. Acta Physiol Scand 25:13–14
Zurück zum Zitat Calancie B, Bawa P (1985) Firing patterns of human flexor carpi radialis motor units during the stretch reflex. J Neurophysiol 53:1179–1193CrossRefPubMed Calancie B, Bawa P (1985) Firing patterns of human flexor carpi radialis motor units during the stretch reflex. J Neurophysiol 53:1179–1193CrossRefPubMed
Zurück zum Zitat Cheung SS, Montie DL, White MD, Behm D (2003) Changes in manual dexterity following short-term hand and forearm immersion in 10 C water. Aviat Space Environ Med 74:990–993PubMed Cheung SS, Montie DL, White MD, Behm D (2003) Changes in manual dexterity following short-term hand and forearm immersion in 10 C water. Aviat Space Environ Med 74:990–993PubMed
Zurück zum Zitat Cohen J (1988) Statistical power analysis for the behavioral sciences, 2nd edn. Lawrence Earlbaum Associates, Hillsdale, NJ Cohen J (1988) Statistical power analysis for the behavioral sciences, 2nd edn. Lawrence Earlbaum Associates, Hillsdale, NJ
Zurück zum Zitat Cornwall MW (1994) Effect of temperature on muscle force and rate of muscle force production in men and women. J Orthop Sports Phys Ther 20:74–80CrossRefPubMed Cornwall MW (1994) Effect of temperature on muscle force and rate of muscle force production in men and women. J Orthop Sports Phys Ther 20:74–80CrossRefPubMed
Zurück zum Zitat de Jong RH, Hershey WN, Wagman IH (1966) Nerve conduction velocity during hypothermia in man. Anesthesiology 27:805–810CrossRefPubMed de Jong RH, Hershey WN, Wagman IH (1966) Nerve conduction velocity during hypothermia in man. Anesthesiology 27:805–810CrossRefPubMed
Zurück zum Zitat De Luca CJ, Adam A, Wotiz R et al (2006) Decomposition of surface EMG signals. J Neurophysiol 96:1646–1657CrossRefPubMed De Luca CJ, Adam A, Wotiz R et al (2006) Decomposition of surface EMG signals. J Neurophysiol 96:1646–1657CrossRefPubMed
Zurück zum Zitat Defreitas JM, Beck TW, Ye X, Stock MS (2014) Synchronization of low- and high-threshold motor units. Muscle Nerve 49:575–583CrossRefPubMed Defreitas JM, Beck TW, Ye X, Stock MS (2014) Synchronization of low- and high-threshold motor units. Muscle Nerve 49:575–583CrossRefPubMed
Zurück zum Zitat Eldred E, Lindsley DF, Buchwald JS (1960) The effect of cooling on mammalian muscle spindles. Exp Neurol 2:144–157CrossRefPubMed Eldred E, Lindsley DF, Buchwald JS (1960) The effect of cooling on mammalian muscle spindles. Exp Neurol 2:144–157CrossRefPubMed
Zurück zum Zitat Falck B, Lang H (1986) Effects of temperature on motor unit potentials [abstract]. Muscle & Nerve 9:573–574 Falck B, Lang H (1986) Effects of temperature on motor unit potentials [abstract]. Muscle & Nerve 9:573–574
Zurück zum Zitat Farina D, Negro F, Gazzoni M, Enoka RM (2008) Detecting the unique representation of motor-unit action potentials in the surface electromyogram. J Neurophysiol 100:1223–1233CrossRefPubMedPubMedCentral Farina D, Negro F, Gazzoni M, Enoka RM (2008) Detecting the unique representation of motor-unit action potentials in the surface electromyogram. J Neurophysiol 100:1223–1233CrossRefPubMedPubMedCentral
Zurück zum Zitat Faulkner JA, Zerba E, Brooks SV (1990) Muscle temperature of mammals: cooling impairs most functional properties. Am J Physiol-Regul Integr Comp Physiol 259:R259–R265CrossRef Faulkner JA, Zerba E, Brooks SV (1990) Muscle temperature of mammals: cooling impairs most functional properties. Am J Physiol-Regul Integr Comp Physiol 259:R259–R265CrossRef
Zurück zum Zitat Giesbrecht GG, Wu MP, White MD et al (1995) Isolated effects of peripheral arm and central body cooling on arm performance. Aviat Space Environ Med 66:968–975PubMed Giesbrecht GG, Wu MP, White MD et al (1995) Isolated effects of peripheral arm and central body cooling on arm performance. Aviat Space Environ Med 66:968–975PubMed
Zurück zum Zitat Hopkins JT, Stencil R (2002) Ankle cryotherapy facilitates soleus function. J Orthop Sports Phys Ther 32:622–627CrossRefPubMed Hopkins JT, Stencil R (2002) Ankle cryotherapy facilitates soleus function. J Orthop Sports Phys Ther 32:622–627CrossRefPubMed
Zurück zum Zitat Houtman CJ, Stegeman DF, Van Dijk JP, Zwarts MJ (2003) Changes in muscle fiber conduction velocity indicate recruitment of distinct motor unit populations. J Appl Physiol 95:1045–1054CrossRefPubMed Houtman CJ, Stegeman DF, Van Dijk JP, Zwarts MJ (2003) Changes in muscle fiber conduction velocity indicate recruitment of distinct motor unit populations. J Appl Physiol 95:1045–1054CrossRefPubMed
Zurück zum Zitat Kossler F, Kuchler G (1987) Contractile properties of fast and slow twitch muscles of the rat at temperatures between 6 and 42 C. Biomed Biochim Acta 46:815–822PubMed Kossler F, Kuchler G (1987) Contractile properties of fast and slow twitch muscles of the rat at temperatures between 6 and 42 C. Biomed Biochim Acta 46:815–822PubMed
Zurück zum Zitat Lippold OCJ, Nicholls JG, Redfearn JWT (1960) A study of the afferent discharge produced by cooling a mammalian muscle spindle. J Physiol 153:218–231CrossRefPubMedPubMedCentral Lippold OCJ, Nicholls JG, Redfearn JWT (1960) A study of the afferent discharge produced by cooling a mammalian muscle spindle. J Physiol 153:218–231CrossRefPubMedPubMedCentral
Zurück zum Zitat Marsden CD, Meadows JC, Merton PA (1983) “Muscular wisdom” that minimizes fatigue during prolonged effort in man: peak rates of motoneuron discharge and slowing of discharge during fatigue. Adv Neurol 39:169–211PubMed Marsden CD, Meadows JC, Merton PA (1983) “Muscular wisdom” that minimizes fatigue during prolonged effort in man: peak rates of motoneuron discharge and slowing of discharge during fatigue. Adv Neurol 39:169–211PubMed
Zurück zum Zitat Mense S (1978) Effects of temperature on the discharges of muscle spindles and tendon organs. Pflüg Arch Eur J Physiol 374:159–166CrossRef Mense S (1978) Effects of temperature on the discharges of muscle spindles and tendon organs. Pflüg Arch Eur J Physiol 374:159–166CrossRef
Zurück zum Zitat Oksa J, Rintamaki H, Rissanen S et al (2000) Stretch- and H-reflexes of the lower leg during whole body cooling and local warming. Aviat Space Environ Med 71:156–161PubMed Oksa J, Rintamaki H, Rissanen S et al (2000) Stretch- and H-reflexes of the lower leg during whole body cooling and local warming. Aviat Space Environ Med 71:156–161PubMed
Zurück zum Zitat Stålberg E, Nandedkar SD, Sanders DB, Falck B (1996) Quantitative motor unit potential analysis. J Clin Neurophysiol 13:401–422CrossRefPubMed Stålberg E, Nandedkar SD, Sanders DB, Falck B (1996) Quantitative motor unit potential analysis. J Clin Neurophysiol 13:401–422CrossRefPubMed
Metadaten
Titel
The effects of local forearm muscle cooling on motor unit properties
verfasst von
Matthew M. Mallette
Lara A. Green
David A. Gabriel
Stephen S. Cheung
Publikationsdatum
08.12.2017
Verlag
Springer Berlin Heidelberg
Erschienen in
European Journal of Applied Physiology / Ausgabe 2/2018
Print ISSN: 1439-6319
Elektronische ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-017-3782-y

Weitere Artikel der Ausgabe 2/2018

European Journal of Applied Physiology 2/2018 Zur Ausgabe