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Effects of Consecutive whole Body Vibration Exercise using Heel Raise Posture on Neuromuscular Response during Single-leg Stance

뒤꿈치 들기 자세를 이용한 전신진동 운동이 외발서기 시 근신경 반응에 미치는 영향

  • Kim, Dae Dong (Department of Health Sciences, The Graduate School of Dong-A University) ;
  • Lee, Myeounggon (Department of Health Sciences, The Graduate School of Dong-A University) ;
  • Youm, Changhong (Department of Health Sciences, The Graduate School of Dong-A University)
  • Received : 2021.03.09
  • Accepted : 2021.04.22
  • Published : 2021.06.30

Abstract

Objective: This study aimed to analyze the effects of consecutive whole body vibration through heel raise posture on the center of pressure and electromyography of anterior tibial muscle, lateral gastrocnemius and soleus muscles during single-leg stance. Method: The subjects of this study included 30 healthy males in their 20's, with the following inclusion criteria: no history of orthopaedic medical history, no participation in regular exercises, no history of whole body vibration exercise, and right leg being the dominant leg. The experimental procedure involved pretreatment measurement of eye open single-leg stance, application of whole body vibration for 30 seconds, post-treatment measurement (3 measurements in total). Static and dynamic movements have been measured over 2 separate experiments, with 72 hours gap between the experiments. Static movement involved maintaining single-leg heel raise posture for 30 seconds while applying whole body vibration, and dynamic movement involved heel raise (15 repetitions over 30 seconds) while applying whole body vibration. The strength of applied whole body vibration was 35 Hz frequency and 2~4 mm amplitude. Results: As the single-leg posture after static heel raise posture, mediolateral velocity of the center of pressure at post 2 and post 3 were significantly reduced compared to the pre-treatment measurement. In addition, the percentage for reference voluntary contraction in anterior tibial muscle and soleus and median frequency at anterior tibial muscle and lateral gastrocnemius muscle at post 3 were significantly decreased compared to the pre-treatment value. As the single-leg posture after dynamic heel raise posture, the mediolateral 95% edge frequency of the center of pressure and median frequency at anterior tibial muscle, lateral gastrocnemius muscle, and soleus muscle at post 3 were significantly reduced compared to the pre-treatment value. Conclusion: Acute whole body vibration via static and dynamic heel raise posture have positive effect on mediolateral posture control during single-leg stance.

Keywords

Acknowledgement

The authors would like to thank the Biomechanics Laboratory staff at Dong-A University for their assistance with data collection.

References

  1. Adams, J. B., Edwards, D., Serviette, D., Bedient, A. M., Huntsman, E., Jacobs, K. A. ... & Signorile, J. F. (2009). Optimal frequency, displacement, duration, and recovery patterns to maximize power output following acute whole-body vibration. The Journal of Strength & Conditioning Research, 23(1), 237-245. https://doi.org/10.1519/jsc.0b013e3181876830
  2. Abercromby, A. F., Amonette, W. E., Layne, C. S., Mcfarlin, B. K., Hinman, M. R. & Paloski, W. H. (2007). Variation in neuromuscular responses during acute whole-body vibration exercise. Medicine & Science in Sports & Exercise, 39(9), 1642-1650. https://doi.org/10.1249/mss.0b013e318093f551
  3. Adlerton, A. K. & Moritz, U. (1996). Does calf-muscle fatigue affect standing balance?. Scandinavian Journal of Medicine & Science in Sports, 6(4), 211-215. https://doi.org/10.1111/j.1600-0838.1996.tb00093.x
  4. Bush, J. A., Blog, G. L., Kang, J., Faigenbaum, A. D. & Ratamess, N. A. (2015). Effects of quadriceps strength after static and dynamic whole-body vibration exercise. The Journal of Strength & Conditioning Research, 29(5), 1367-1377. https://doi.org/10.1519/jsc.0000000000000709
  5. Cardinale, M. & Lim, J. (2003). Electromyography activity of vastus lateralis muscle during whole-body vibrations of different frequencies. The Journal of Strength & Conditioning Research, 17(3), 621-624. https://doi.org/10.1519/1533-4287(2003)017<0621:EAOVLM>2.0.CO;2
  6. Cardinale, M. A. J. W. & Wakeling, J. (2005). Whole body vibration exercise: are vibrations good for you?. British Journal of Sports Medicine, 39(9), 585-589. https://doi.org/10.1136/bjsm.2005.016857
  7. Cardinale, M. & Bosco, C. (2003). The use of vibration as an exercise intervention. Exercise and Sport Sciences Reviews, 31(1), 3-7. https://doi.org/10.1097/00003677-200301000-00002
  8. Cloak, R., Nevill, A. M., Clarke, F., Day, S. & Wyon, M. A. (2010). Vibration training improves balance in unstable ankles. International Journal of Sports Medicine, 31(12), 894. https://doi.org/10.1055/s-0030-1265151
  9. Cormie, P., Deane, R. S., Triplett, N. T. & McBride, J. M. (2006). Acute effects of whole-body vibration on muscle activity, strength, and power. The Journal of Strength & Conditioning Research, 20(2), 257-261. https://doi.org/10.1519/R-17835.1
  10. Delecluse, C., Roelants, M. & Verschueren, S. (2003). Strength increase after whole-body vibration compared with resistance training. Medicine & Science in Sports & Exercise, 35(6), 1033-1041. https://doi.org/10.1249/01.MSS.0000069752.96438.B0
  11. Dickin, D. C. & Heath, J. E. (2014). Additive effect of repeated bouts of individualized frequency whole body vibration on postural stability in young adults. Journal of Applied Biomechanics, 30(4), 529-533. https://doi.org/10.1123/jab.2013-0215
  12. Diener, W. W., Dichgans, J., Bacher, M. & Gompf, B. (1984). Quantification of postural sway in normals and patients with cerebellar diseases. Electroencephalogr Clinic Neurophysiol, 57, 134-142. https://doi.org/10.1016/0013-4694(84)90172-X
  13. Duchateau, J. & Enoka, R. M. (2002). Neural adaptations with chronic activity patterns in able-bodied humans. American Journal of Physical Medicine & Rehabilitation, 81(11), S17-S27.
  14. Easton, R. D., Greene, A. J., DiZio, P. & Lackner, J. R. (1998). Auditory cues for orientation and postural control in sighted and congenitally blind people. Experimental Brain Research, 118(4), 541-550. https://doi.org/10.1007/s002210050310
  15. Ferdjallah, M., Harris, G. F., Smith, P. & Wertsch, J. J. (2002). Analysis of postural control synergies during quiet standing in healthy children and children with cerebral palsy. Clinical Biomechanics, 17, 203-210. https://doi.org/10.1016/S0268-0033(01)00121-8
  16. Fort, A., Romero, D., Bagur, C. & Guerra, M. (2012). Effects of whole-body vibration training on explosive strength and postural control in young female athletes. The Journal of Strength & Conditioning Research, 26(4), 926-936. https://doi.org/10.1519/jsc.0b013e31822e02a5
  17. Gribble, P. A. & Hertel, J. (2004). Effect of hip and ankle muscle fatigue on unipedal postural control. Journal of Electromyography and Kinesiology, 14(6), 641-646. https://doi.org/10.1016/j.jelekin.2004.05.001
  18. Harkins, K. M., Mattacola, C. G., Uhl, T. L., Malone, T. R. & McCrory, J. L. (2005). Effects of 2 ankle fatigue models on the duration of postural stability dysfunction. Journal of Athletic Training, 40(3), 191.
  19. Howard, M. E., Cawley, P. W. & Losse, G. M. (1998). Effect of lower extremity muscular fatigue on motor control performance. Medicine and Science in Sports and Exercise, 30(12), 1703-1707. https://doi.org/10.1097/00005768-199812000-00008
  20. Horak, F. B. (1997). Clinical assessment of balance disorders. Gait & Posture, 6, 76-84. https://doi.org/10.1016/S0966-6362(97)00018-0
  21. Jordan, M. J., Norris, S. R. & Herzog, W. (2005). Vibration training: An overview of the area, Training consequences. Journal of Strength and Conditioning Research, 19(2), 459-466. https://doi.org/10.1519/13293.1
  22. Kavounoudias, A., Roll, R. & Roll, J. P. (1998). The plantar sole is a 'dynamometric map' for human balance control. Neuroreport, 9(14), 3247-3252. https://doi.org/10.1097/00001756-199810050-00021
  23. Lundin, T. M., Feuerbach, J. W. & Grabiner, M. D. (1993). Effect of plantar flexor and dorsiflexor fatigue on unilateral postural control. Journal of Applied Biomechanics, 9(3), 191-201. https://doi.org/10.1123/jab.9.3.191
  24. Neumann, D. A. (2013). Kinesiology of the musculoskeletal system-e-book: foundations for rehabilitation. Elsevier Health Sciences.
  25. Peterson, M. L., Christou, E. & Rosengren, K. S. (2006). Children achieve adult-like sensory integration during stance at 12-years-old. Gait & Posture, 23, 455-463. https://doi.org/10.1016/j.gaitpost.2005.05.003
  26. Reimer III, R. C. & Wikstrom, E. A. (2010). Functional fatigue of the hip and ankle musculature cause similar alterations in single leg stance postural control. Journal of Science and Medicine in Sport, 13(1), 161-166. https://doi.org/10.1016/j.jsams.2009.01.001
  27. Rees, S. S., Murphy, A. J. & Watsford, M. L. (2009). Effects of whole body vibration on postural steadiness in an older population. Journal of Science and Medicine in Sport, 12(4), 440-444. https://doi.org/10.1016/j.jsams.2008.02.002
  28. Rendos, N. K., Jun, H. P., Pickett, N. M., Lew Feirman, K., Harriell, K., Lee, S. Y. & Signorile, J. F. (2017). Acute effects of whole body vibration on balance in persons with and without chronic ankle instability. Research in Sports Medicine, 25(4), 391-407. https://doi.org/10.1080/15438627.2017.1365299
  29. Rheem, Y. T. (2014). Study on the research trend of whole body vibration. Journal of Leisure & Wellness, 5(1), 57-65.
  30. Rittweger, J., Mutschelknauss, M. & Felsenberg, D. (2003). Acute changes in neuromuscular excitability after exhaustive whole body vibration exercise as compared to exhaustion by squatting exercise. Clinical Physiology and Functional Imaging, 23(2), 81-86. https://doi.org/10.1046/j.1475-097X.2003.00473.x
  31. Ritzmann, R., Gollhofer, A. & Kramer, A. (2013). The influence of vibration type, frequency, body position and additional load on the neuromuscular activity during whole body vibration. European Journal of Applied Physiology, 113(1), 1-11. https://doi.org/10.1007/s00421-012-2402-0
  32. Ritzmann, R., Kramer, A., Bernhardt, S. & Gollhofer, A. (2014). Whole body vibration training-improving balance control and muscle endurance. PloS One, 9(2), e89905. https://doi.org/10.1371/journal.pone.0089905
  33. Salavati, M., Moghadam, M., Ebrahimi, I. & Arab, A. M. (2007). Changes in postural stability with fatigue of lower extremity frontal and sagittal plane movers. Gait & Posture, 26(2), 214-218. https://doi.org/10.1016/j.gaitpost.2006.09.001
  34. Schlee, G., Reckmann, D. & Milani, T. L. (2012). Whole body vibration training reduces plantar foot sensitivity but improves balance control of healthy subjects. Neuroscience Letters, 506(1), 70-73. https://doi.org/10.1016/j.neulet.2011.10.051
  35. Shumway-Cook, A. & Woollacott, M. H. (2007). Motor control: translating research into clinical practice. Lippincott Williams & Wilkins.
  36. Springer, B. K. & Pincivero, D. M. (2009). The effects of localized muscle and whole-body fatigue on single-leg balance between healthy men and women. Gait & Posture, 30(1), 50-54. https://doi.org/10.1016/j.gaitpost.2009.02.014
  37. Torvinen, S., Sievanen, H., Jarvinen, T. A. H., Pasanen, M., Kontulainen, S. & Kannus, P. (2002). Effect of 4-min vertical whole body vibration on muscle performance and body balance: a randomized crossover study. International Journal of Sports Medicine, 23(05), 374-379. https://doi.org/10.1055/s-2002-33148
  38. Turner, A. P., Sanderson, M. F. & Attwood, L. A. (2011). The acute effect of different frequencies of whole-body vibration on countermovement jump performance. The Journal of Strength & Conditioning Research, 25(6), 1592-1597. https://doi.org/10.1519/JSC.0b013e3181df7fac
  39. Vella, C. A. (2005). whole-body vibration training. DEA Fitness Journal 2005.
  40. Wierzbicka, M. M., Gilhodes, J. C. & Roll, J. P. (1998). Vibration-induced postural post effects. Journal of Neurophysiology, 79(1), 143-150. https://doi.org/10.1152/jn.1998.79.1.143
  41. Winter, D. A. (1995). Human balance and posture control during standing and walking. Gait & Posture, 3(4), 193-214. https://doi.org/10.1016/0966-6362(96)82849-9
  42. Yaggie, J. A. & McGregor, S. J. (2002). Effects of isokinetic ankle fatigue on the maintenance of balance and postural limits. Archives of Physical Medicine and Rehabilitation, 83(2), 224-228. https://doi.org/10.1053/apmr.2002.28032
  43. Youm, C. H., Park, Y. H. & Seo, K. W. (2008). Assessment of single-leg stance balance using COP 95% confidence ellipse area. Korean Journal of Sport Biomechanics, 18(2), 19-27. https://doi.org/10.5103/KJSB.2008.18.2.019
  44. Youm, C. H. & Kim, T. H. (2012). Effects of the Muscular Fatigue of Lower Extremities and the Blocked Vision on Postural Control During Bipedal Stance. The Korean Journal of Physical Education, 51(2), 399-409.
  45. Zumbrunn, T., MacWilliams, B. A. & Johnson, B. A. (2011). Evaluation of a single leg stance balance test in children. Gait & Posture, 34, 174-177. https://doi.org/10.1016/j.gaitpost.2011.04.005