Skip to main content
Log in

Model of the slow components of skeletal muscle potentials

  • Communication
  • Published:
Medical and Biological Engineering and Computing Aims and scope Submit manuscript

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

References

  • Brody, L. R., Pollock, M. T., Roy, S. H., De Luca, C. J., andCelli, B. (1991): ‘pH-induced effects on median frequency and conduction velocity of the myoelectric signal,’J. Appl. Physiol.,71, pp. 1878–1885.

    Google Scholar 

  • Buchthal, F., andSten-Knudsen, O. (1959): ‘Impulse propagation in striated muscle fibers and the role of the internal currents in activation,’Ann. Acad. Sci. New York,81, pp. 422–444

    Google Scholar 

  • Cobb, S., andForbes, A. (1923): ‘Electromyographic studies of muscle fatigue in man,’Amer. J. Physiol.,65, pp. 234–251

    Google Scholar 

  • Colomo, E., andRocchi, P. (1965): ‘Staircase effect and post-tetanic potentiation in frog nerve-single muscle fiber preparations,’Arch. Fisiol.,64, pp. 189–266

    Google Scholar 

  • Craib, W. H. (1928): ‘A study of the electric field surrounding skeletal muscle,’J. Physiol. (London),66, 49–73

    Google Scholar 

  • Dimitrov, G. V. (1987). ‘Changes in the extracellular potentials produced by unmyelinated nerve fibre resulting from alterations in the propagation velocity or the duration of the action potential,’Electromyogr. Clin. Neurophysiol. 27, pp. 243–249

    Google Scholar 

  • Dimitrov, G. V., andDimitrova, N. A. (1977): ‘Bipolar recording of potentials generated by excitable fibres in a volume conductor,’Agressologie,18, pp. 235–252

    Google Scholar 

  • Dimitrov, G. V., andDimitrova, N. A. (1979): ‘Influence of the after-potentials on the shape and magnitude of the extracellular potentials generated under activation of excitable fibres,’Electromyogr. Clin. Neurophysiol.,19, pp. 249–267

    Google Scholar 

  • Dimitrov G. V., andDimitrova, N. A. (1989): ‘Extracellular potentials produced by a transition between an inactive and active regions of an excitable fibre,’Electromyogr. Clin. Neurophysiol.,29, pp. 265–271

    Google Scholar 

  • Dimitrov, G. V., Dimitrova, N. A., andLateva, Z. C. (1989): ‘Integral characteristics of extracellular single fibre action potentials,’Electromyogr. Clin. Neurophysiol.,29, pp. 195–201

    Google Scholar 

  • Dimitrova, N. A. (1974): ‘Model of the extracellular potential field of a single striated muscle fibre,’Electromyogr. Clin. Neurophysiol.,14, pp. 53–66

    Google Scholar 

  • Dimitrova, N. A., Dimitrov, G. V., andLateva, Z. C. (1991): ‘Influence of the fibre length on the power spectrum of a single muscle fibre extracellular potentials,’Electromyogr. Clin. Neurophysiol.,31, pp. 387–398

    Google Scholar 

  • Håkansson, C. H. (1957): ‘Action potentials recorded intra-and extracellularly from the isolated frog muscle fiber in Ringer's solution and in air,’Acta Physiol. Scand.,39, pp. 291–312

    Google Scholar 

  • Hanson, J., andPersson, A. (1971): ‘Changes in the action potential and contraction of isolated, frog muscle after repetitive stimulation,’Acta Physiol. Scand.,81, pp. 340–348

    Google Scholar 

  • Katz, B., andMiledi, R. (1965): ‘Propagation of electric activity in motor nerve terminals,’Proc. Roy. Soc., B,161, pp. 453–482

    Article  Google Scholar 

  • Lang, A. H. (1975): Muscle D.C. potentials following the isometric muscle contraction: a macroelectrode study in man.’ V Int. Congress of Biomechanics, Juvsåkylå, Finland, 29 June–3 July, p. 98

  • Ludin, H. P. (1973): ‘Action potentials of normal and dystrophic human muscle fibers’in Desmedt, J. E. (Ed.) New developments in electromyography and clinical neurophysiology’ (Karger, Basel) Vol. 1, pp. 400–406

    Google Scholar 

  • Lüttgau, H. C. (1965): ‘The effect of metabolic inhibitors on the fatigue of the action potential in single muscle fibers,’J. Physiol. (London),178, pp. 45–67

    Google Scholar 

  • Persson, A. (1963): ‘The negative after-potential of frog skeletal muscle fibers,’Acta Physiol. Scand.,58,Suppl., p. 205

    Google Scholar 

  • Plonsey, R. (1965): ‘An extension of the solid angle potential formulation for an active cell,’Biophys. J.,5, pp. 663–667

    Google Scholar 

  • Plonsey, R. (1974): ‘The active fiber in a volume conductor,’IEEE Trans.,BME-21, pp. 371–381

    Google Scholar 

  • Stefani, E., andSchmidt, H. (1972): ‘A convenient method for repeated intracellular recording of action potentials from the same muscle fiber without damage,’Pflügers Arch.,334 pp. 276–278

    Article  Google Scholar 

  • Torbergsen, T., Stålberg, E., Aasly, J., andLindal, S. (1991): ‘Myopathy in Marinesco-Sjögren syndrome—an electrophysiological study,’Acta. Neurol. Scand.,84, pp. 132–138.

    Article  Google Scholar 

  • Wilson F. N., Macleod, A. G., andBarker, P. S. (1933): ‘The distribution of the currents of action and of injury displayed by heart muscle and other excitable tissues’ (University of Michigan Press, Ann Arbor) pp. 1–60

    Google Scholar 

  • Woodbury, J. W. (1965): ‘Potentials in a volume conductor’in (Ruch, T., andPatton, H. (Eds.) ‘Physiology and biophysics’ (Saunders Company, Philadelphia) pp. 83–91

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Dimitrov, G.V., Lateva, Z.C. & Dimitrova, N.A. Model of the slow components of skeletal muscle potentials. Med. Biol. Eng. Comput. 32, 432–436 (1994). https://doi.org/10.1007/BF02524697

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF02524697

Keywords

Navigation