CC..png    

Legal and postal addresses of the publisher: office 1336, 17 Naberezhnaya Severnoy Dviny, Arkhangelsk, 163002, Russian Federation, Northern (Arctic) Federal University named after M.V. Lomonosov

Phone: (818-2) 21-61-21
E-mail: vestnik_med@narfu.ru
https://vestnikmed.ru/en/

ABOUT JOURNAL

Electromyographic Analysis of the Regulation of Fast Voluntary Cyclic Leg Movements During Straight-Line and Curve Sprinting. P. 5–12

Версия для печати

Section: Physiology

UDC

612.743

Authors

Ivan V. Piskunov*, Sergey A. Moiseev*, Ruslan M. Gorodnichev*
*Velikiye Luki State Academy of Physical Education and Sports (Pskovskaya obl., Velikiye Luki, Russian Federation)

Abstract

This paper studied the electromyographic (EMG) leg muscle activity during straight-line and curve running at a maximum speed. The research involved sprinters aged 20–25 years with the ranks of the Candidate for Master of Sport and First-Class Sportsman. In the first part of the study, the subjects performed maximum-speed running in a straight line; the second part involved curve running. Kinematic and EMG characteristics of the running step were recorded simultaneously using 3D video analysis system Qualisys (Sweden) and 16-channel biomonitor ME 6000 (Finland). during straight-line running in the repulsion phase the EMG parameters of the studied muscles changed significantly compared to the loading phase: the duration of their electroactivity decreased, the amplitude and frequency of their biopotentials decreased, the reciprocity coefficient decreased in antagonist muscles of the hip and, on the contrary, increased in calf muscles. During curve running, in the repulsion phase the EMG activity of biceps femoris increased: the amplitude of the biopotentials increased by 72.1 % compared to running in a straight line; the EMG amplitude of vastus lateralis, soleus, and tibialis anterior muscles also increased significantly. In the repulsion phase, the reciprocity coefficient in antagonist muscles of the hip was smaller than that during straight-line running; while in antagonist muscles of the calf it, on the contrary, increased. Thus, the change of trajectory during maximum-speed running is accompanied by substantial changes in the regulatory mechanisms, manifested in the modification of the coordination structure of major muscles, the activity of which determines the corresponding kinematic and dynamic characteristics of the running step.

Keywords

electromyography of leg muscles, running step coordinating structure, voluntary leg movement regulation, sprinting
Download (pdf, 1.4MB )

References

  1. Nicholls J.G., Martin A.R.,Wallace B.G., Fuchs P.A. From Neuron to Brain. Sunderland, 2001 (Russ. ed.: Nikolls Dzh.G., Martin R., Vallas B., Fuks P. Ot neyrona k mozgu. Moscow, 2008. 672 p.).
  2.  Gribanov A.V., Sherstennikova A.K. Fiziologicheskie mekhanizmy regulyatsii postural’nogo balansa cheloveka (obzor) [Physiological Mechanisms of Human Postural Balance Regulation (Review)]. Vestnik Severnogo (Arkticheskogo) federal’nogo universiteta. Ser.: Mediko-biologicheskie nauki, 2013, no. 4, pp. 20–29.
  3. Gurfinkel’ V.S., Levik Yu.S., Kаzennikov O.V., Selionov V.A. Sushchestvuet li generator shagatel’nykh dvizheniy u cheloveka? [Is There a Generator of Walking Movements in Humans?]. Fiziologiya cheloveka, 1998, vol. 24, no. 3, pр. 42–50.
  4. Gerasimenko Y., Gad P., Sayenko D., McKinney Z., Gorodnichev R., Puhov A., Moshonkina T., Savochin A., Selionov V., Shigueva T., Tomilovskaya E., Kozlovskaya I., Edgerton V.R. Integration of Sensory, Spinal, and Volitional Descending Inputs in Regulation of Human Locomotion. J. Neurophysiol., 2016, vol. 116, no. 1, pp. 98–105.
  5. Paradisis G., Cooke C., Bissas A. Electromyographic Activity During Sprinting on Horizontal, Uphill and Downhill Surfaces. Crossing Borders Through Sport Science: 21st Annual Congress of the European College of Sport Science. Vienna, 2016.
  6. Gorodnichev R.M., Shlyakhtov V.N. Fiziologiya sily [The Physiology of Strength]. Moscow, 2016. 232 p.
  7. Bernshteyn N.A. Fiziologiya dvizheniy i aktivnost’ [The Physiology of Movements and Activity]. Moscow, 1990. 495 p.
  8. Person R.S. Teoreticheskie osnovy traktovki elektromiogrammy [Theoretical Basis of Electromyogram Interpretation]. Fiziologiya cheloveka, 1987, vol. 13, no. 4, pp. 659–673.
  9. Bal’sevich V.K. Ontokineziologiya cheloveka [Human Ontological Kinesiology]. Moscow, 2000. 275 p.
  10. Mikhaylova E.A., Kozlov V.A., Ershov V.Yu., Gorodnichev R.M. Enhancement of Efficiency of Flapping When Running via Percutaneous Electrical Stimulation of Spinal Cord. Theory Pract. Phys. Cult., 2015, no. 6, pp. 10–15.
  11. Komantsev V.N., Zabolotnykh V.A. Metodicheskie osnovy klinicheskoy elektroneyromiografii [Methodological Basis of Clinical Eelectroneuromyography]. St. Petersburg, 2001. 350 p.
  12. Foss M.L., Keteyian S.J. Physiological Basis for Exercise and Sport. Boston, 1998. 620 p.
  13. Ozolin E.S. Sprinterskiy beg [Sprint]. Moscow, 2010. 176 p.
  14. Doronina E.A., Nemtsev O.B. Ob effektivnosti razlichnykh sposobov postanovki stopy na oporu v sprinterskom bege [On the Efficiency of Various Ways of Placing the Foot on the Block in Sprinting]. Uchenye zapiski universiteta im. P.F. Lesgafta, 2007, no. 10, pp. 60–62.



Make a Submission


INDEXED IN: 

DOAJ_logo-colour.png

Elibrary.ru

logotype.png

infobaseindex

Логотип.png




Лань

OTHER NArFU JOURNALS: 

Vestnik of NArFU.
Series "Humanitarian and Social Sciences"

Forest Journal 
Лесной журнал 

Arctic and North