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Median frequency of the myoelectric signal

Effects of muscle ischemia and cooling

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Summary

A study was performed to investigate the changes that occur in the median frequency of the myoelectric signal during local ischemia or reduction of intramuscular temperature produced by surface cooling. Data was obtained from experiments which involved the first dorsal interosseous muscle of 10 female and 16 male subjects. These subjects were asked to perform isometric constant-force abduction contractions of the index finger at 20% and 80% of maximal voluntary contraction level. The initial median frequency (IMF) of the myoelectric signal during the first 0.5 s of contraction was calculated. Results showed a significant reduction of the IMF in contractions performed under ischemic conditions; upon release, the IMF recovered quickly. At 80% maximal voluntary level of contraction, a greater decrease of the IMF was recorded. Similar results were demonstrated during reduction of intramuscular temperature with gradual recovery of the IMF after cooling. These results demonstrate that the median frequency of the myoelectric signal displays behavior similar to that reported for conduction velocity and this is consistent with the notion that accumulation of metabolic byproducts in muscle tissue causes a decrease in the conduction velocity of the muscle fibers.

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References

  • Abe E (1981) Intramuscular pressure and muscle blood flow during and after contraction. Jpn J Orthop Assoc 55: 55–66

    Google Scholar 

  • Barnes WS (1980) The relationship between maximum isometric strength and intramuscular circulation. Ergonomics 23: 351–357

    Google Scholar 

  • Broman H (1973) An investigation on the influence of a sustained contraction on the succession of action potentials from a single motor unit. Ph. D. dissertation, Chalmers University of Technology, Göteborg, Sweden

    Google Scholar 

  • Broman H, Kadefors R (1979) A spectral moment analyzer for quantification of electromyograms. The Proc 4th Cong Int Soc Electrophys Kinesiology 90–91

  • Buchthal F, Engbaek L (1963) Refractory period and conduction velocity of the striated muscle fibre. Acta Physiol Scand 59: 199–220

    Google Scholar 

  • Buchthal F, Guld C, Rosenfalck P (1955) Propagation velocity in electrically activated muscle fibers in man. Acta Physiol Scand 34: 75–89

    Google Scholar 

  • De Luca CJ (1979) Physiology and mathematics of myoelectric signals. IEEE Trans Biomed Eng 26: 313–325

    Google Scholar 

  • De Luca CJ, Van Dyk EJ (1975) Derivations of some parameters of myoelectric signals recorded during constant force isometric contraction. Biophys J 15: 1167–1180

    Google Scholar 

  • De Luca CJ, LeFever RS, Stulen FB (1979) Pasteless electrode for clinical use. Med Biol Eng Comput 17: 387–390

    Google Scholar 

  • Ericson BE, Hagberg M (1979) EMG power spectra versus muscular contraction level. Acta Physiol Scand 60: 73

    Google Scholar 

  • Gath I, Stalberg E (1975) Frequency and time domain characteristics of single muscle fibre action potentials. EEG Clin Neurophysiol 39: 371–376

    Google Scholar 

  • Hakansson CH (1956) Conduction velocity and amplitude of the action potential as related to circumference in the isolated fibre of frog muscle. Acta Physiol Scand 37: 24–34

    Google Scholar 

  • Harris RC, Hultman E, Broman H (1979) Localized muscle fatigue in shoulder muscles: A preliminary study employing the spectral moment analyzer. Proc 4th Cong of the Int Soc of Electrophysiol Kinesiology 72–73

  • Hary D, Belman MJ, Propst J, Lewis S (1982) A statistical analysis of the spectral moments used in EMG tests of endurance. J Appl Physiol 53: 779–783

    Google Scholar 

  • Hermansen L, Osnes JB (1972) Blood and muscle pH after maximal exercise in man. J Appl Physiol 32: 304–308

    Google Scholar 

  • Jarcho LW, Berman B, Dowben RM, Lilienthal JL, Jr (1954) Site of origin and velocity of conduction of fibrillary potentials in denervated and skeletal muscle. Am J Physiol 178: 129–134

    Google Scholar 

  • Jones DA, Bigland-Ritchie B, Edwards RHT (1979) Excitation frequency and muscle fatigue: mechanical responses during voluntary and stimulated contractions. Exp Neurol 64: 401–413

    Google Scholar 

  • Kaiser E, Petersen I (1965) Muscle action potentials studied by frequency analysis and duration measurements. Acta Neurol Scand 4 [Suppl] 13: 213–235

    Google Scholar 

  • Karlsson J, Funderburk C, Essen B, Lind A (1975) Constituents of human muscle in isometric fatigue. J Appl Physiol 38: 208–211

    Google Scholar 

  • Kobayashi T, Sugi H (1980) Measurement of heat production during the summation of isometric contraction in frog skeletal muscle with an infrared radiometer. Jpn J Physiol 30: 617–629

    Google Scholar 

  • LeFever RS, De Luca CJ (1976) The contribution of individual motor units to the EMG power spectrum. The Proc 29th Ann Conf on Engrg Med Biol 56

  • Lindstrom L (1970) On the frequency spectrum of EMG signals. Ph. D. Thesis, Research Laboratory of Medical Electronics, Chalmers University of Technology, Göteborg, Sweden

    Google Scholar 

  • Lindstrom L, Petersen I (1981) Power spectra of myoelectric signals: motor unit activity and muscle fatigue. In: Stalberg E, Young R (eds) Clinical neurophysiology. Butterworth, London, pp 66–87

    Google Scholar 

  • Lindstrom L, Kadefors R, Petersen I (1977) An electromyographic index for lacalized muscle fatigue. J Appl Physiol 43: 750–754

    Google Scholar 

  • Morimoto S, Umazume Y, Masuda M (1980) Properties of spike potentials detected by a surface electrode in intact human muscle. J Physiol 30: 71–80

    Google Scholar 

  • Mortimer JT, Magnusson P, Petersen I (1970) Conduction velocity in ischemic muscle: effect on EMG frequency spectrum. Am J Physiol 219: 1324–1329

    Google Scholar 

  • Naeije M, Zorn H (1982) Relation between EMG power spectrum shifts and muscle fiber action potential conduction velocity changes during local muscular fatigue in man. Eur J Appl Physiol 50: 23–33

    Google Scholar 

  • Polgar J, Johnson MA, Weightman D, Appleton D (1973) Data on fiber size in thirty-six human muscles: an autopsy study. J Neurological Sci 19: 307–318

    Google Scholar 

  • Petrofsky JS, Lind AR (1980a) Frequency analysis of the surface electromyogram during sustained isometric contractions. Eur J Appl Physiol 43: 173–182

    Google Scholar 

  • Petrofsky JS, Lind AR (1980b) The influence of temperature on the amplitude and frequency components of the EMG during brief and sustained isometric contractions. Eur J Appl Physiol 44: 189–300

    Google Scholar 

  • Petrofsky JS, Lind AR (1981) The influence of temperature on the isometric characteristics of fast and slow muscle in the cat. Pflügers Arch 389: 149–154

    Google Scholar 

  • Petrofsky JS, Phillips CA (1981) The influence of temperature, initial length and electrical activity on the force-velocity relationship of the medial gastrocnemius muscle of the cat. J Biomech 14: 297–306

    Google Scholar 

  • Sabbahi MA, Powers WR, De Luca CJ, Stulen FB (1979) Intramuscular conduction velocity during ischemia and cooling. Physical Ther 59: 579

    Google Scholar 

  • Sabbahi MA, Merletti R, De Luca CJ, Rosenthal RG (1981) How handeness, sex, and force level affect the median frequency of the myoelectric signal. Proc Fourth Annual Conf Rehab Engrg 232–234

  • Stalberg E (1966) Propagation velocity in human muscle fibers in situ. Acta Physiol Scand 70 [Suppl] 287: 1–112

    Google Scholar 

  • Stulen FB (1980) A technique to monitor localized muscular fatigue using frequency domain analysis of the myoelectric signal. Ph. D. Thesis, Massachusetts Institute of Technology, Cambridge, Massachusetts USA

    Google Scholar 

  • Stulen FB, De Luca CJ (1979) Median frequency of the myoelectric signal as a measure of localized muscular fatigue. The Proc. 4th Cong Int Soc Electrophysiol Kinesiol 92–93

  • Stulen FB, De Luca CJ (1981) Frequency parameters of the myoelectric signal as a measure of muscle conduction velocity. IEEE Trans Biomed Eng 28: 515–523

    Google Scholar 

  • Stulen FB, De Luca CJ (1982) Muscle fatigue monitor: A non-invasive device for observing localized muscular fatigue. IEEE Trans Biomed Eng 29: 760–768

    Google Scholar 

  • Tesch P, Karlsson J (1977) Lactate in fast and slow twitch skeletal muscle fibres of man during isometric contractions. Acta Physiol Scand 99: 230–236

    Google Scholar 

  • Wilska A, Varjoranta K (1940) über die TemperaturabhÄngigkeit der Leitungsgeschwindigkeit des Aktionspotentials einer Muskelfaser. Acta Physiol 83: 88–93

    Google Scholar 

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Dr. R. Merletti was on a leave of absence from the Institute of Electrical Engineering, Politecnico di Torino, Italy

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Merletti, R., Sabbahi, M.A. & De Luca, C.J. Median frequency of the myoelectric signal. Europ. J. Appl. Physiol. 52, 258–265 (1984). https://doi.org/10.1007/BF01015206

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  • DOI: https://doi.org/10.1007/BF01015206

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