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Published in: European Journal of Applied Physiology 1/2013

01-01-2013 | Original Article

The influence of vibration type, frequency, body position and additional load on the neuromuscular activity during whole body vibration

Authors: Ramona Ritzmann, Albert Gollhofer, Andreas Kramer

Published in: European Journal of Applied Physiology | Issue 1/2013

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Abstract

This study aimed to assess the influence of different whole body vibration (WBV) determinants on the electromyographic (EMG) activity during WBV in order to identify those training conditions that cause highest neuromuscular responses and therefore provide optimal training conditions. In a randomized cross-over study, the EMG activity of six leg muscles was analyzed in 18 subjects with respect to the following determinants: (1) vibration type (side-alternating vibration (SV) vs. synchronous vibration (SyV), (2) frequency (5–10–15–20–25–30 Hz), (3) knee flexion angle (10°–30°–60°), (4) stance condition (forefoot vs. normal stance) and (5) load variation (no extra load vs. additional load equal to one-third of the body weight). The results are: (1) neuromuscular activity during SV was enhanced compared to SyV (P < 0.05); (2) a progressive increase in frequency caused a progressive increase in EMG activity (P < 0.05); (3) the EMG activity was highest for the knee extensors when the knee joint was 60° flexed (P < 0.05); (4) for the plantar flexors in the forefoot stance condition (P < 0.05); and (5) additional load caused an increase in neuromuscular activation (P < 0.05). In conclusion, large variations of the EMG activation could be observed across conditions. However, with an appropriate adjustment of specific WBV determinants, high EMG activations and therefore high activation intensities could be achieved in the selected muscles. The combination of high vibration frequencies with additional load on an SV platform led to highest EMG activities. Regarding the body position, a knee flexion of 60° and forefoot stance appear to be beneficial for the knee extensors and the plantar flexors, respectively.
Literature
go back to reference Abercromby AFJ, Amonette WE, Layne CS, McFarlin BK, Hinman MR, Paloski WH (2007a) Variation in neuromuscular responses during acute whole-body vibration exercise. Med Sci Sports Exerc 39:1642–1650PubMedCrossRef Abercromby AFJ, Amonette WE, Layne CS, McFarlin BK, Hinman MR, Paloski WH (2007a) Variation in neuromuscular responses during acute whole-body vibration exercise. Med Sci Sports Exerc 39:1642–1650PubMedCrossRef
go back to reference Abercromby AFJ, Amonette WE, Layne CS, McFarlin BK, Hinman MR, Paloski WH (2007b) Vibration exposure and biodynamic responses during whole-body vibration training. Med Sci Sports Exerc 39:1794–1800PubMedCrossRef Abercromby AFJ, Amonette WE, Layne CS, McFarlin BK, Hinman MR, Paloski WH (2007b) Vibration exposure and biodynamic responses during whole-body vibration training. Med Sci Sports Exerc 39:1794–1800PubMedCrossRef
go back to reference Bedingham W, Tatton WG (1984) Dependence of EMG responses evoked by imposed wrist displacements on pre-existing activity in the stretched muscles. Can J Neurol Sci 11:272–280PubMed Bedingham W, Tatton WG (1984) Dependence of EMG responses evoked by imposed wrist displacements on pre-existing activity in the stretched muscles. Can J Neurol Sci 11:272–280PubMed
go back to reference Berschin G, Sommer H-M (2004) Vibrationstraining und Gelenkstabilität: EMG-Untersuchungen zur Wirkung von Vibrationsfrequenz und Körperhaltung auf Muskelaktivierung und—koaktivierung. Deutsche Zeitschrift für Sportmedizin 55:152–156 Berschin G, Sommer H-M (2004) Vibrationstraining und Gelenkstabilität: EMG-Untersuchungen zur Wirkung von Vibrationsfrequenz und Körperhaltung auf Muskelaktivierung und—koaktivierung. Deutsche Zeitschrift für Sportmedizin 55:152–156
go back to reference Bressel E, Smith G, Branscomb J (2010) Transmission of whole body vibration in children while standing. Clin Biomech 25:181–186CrossRef Bressel E, Smith G, Branscomb J (2010) Transmission of whole body vibration in children while standing. Clin Biomech 25:181–186CrossRef
go back to reference Cardinale M, Lim J (2003) Electromyography activity of vastus lateralis muscle during whole-body vibrations of different frequencies. J Strength Cond Res 17:621–624PubMed Cardinale M, Lim J (2003) Electromyography activity of vastus lateralis muscle during whole-body vibrations of different frequencies. J Strength Cond Res 17:621–624PubMed
go back to reference Cochrane DJ, Sartor F, Winwood K, Stannard SR, Narici MV, Rittweger J (2008) A comparison of the physiologic effects of acute whole-body vibration exercise in young and older people. Arch Phys Med Rehabil 89:815–821PubMedCrossRef Cochrane DJ, Sartor F, Winwood K, Stannard SR, Narici MV, Rittweger J (2008) A comparison of the physiologic effects of acute whole-body vibration exercise in young and older people. Arch Phys Med Rehabil 89:815–821PubMedCrossRef
go back to reference Cochrane DJ, Loram ID, Stannard SR, Rittweger J (2009) Changes in joint angle, muscle-tendon complex length, muscle contractile tissue displacement, and modulation of EMG activity during acute whole-body vibration. Muscle Nerve 40:420–429PubMedCrossRef Cochrane DJ, Loram ID, Stannard SR, Rittweger J (2009) Changes in joint angle, muscle-tendon complex length, muscle contractile tissue displacement, and modulation of EMG activity during acute whole-body vibration. Muscle Nerve 40:420–429PubMedCrossRef
go back to reference Farina D, Merletti R, Enoka RM (2004) The extraction of neural strategies from the surface EMG. J Appl Physiol 96:1486–1495PubMedCrossRef Farina D, Merletti R, Enoka RM (2004) The extraction of neural strategies from the surface EMG. J Appl Physiol 96:1486–1495PubMedCrossRef
go back to reference Freund HJ, Büdingen HJ, Dietz V (1975) Activity of single motor units from human forearm muscles during voluntary isometric contractions. J Neurophysiol 38:933–946PubMed Freund HJ, Büdingen HJ, Dietz V (1975) Activity of single motor units from human forearm muscles during voluntary isometric contractions. J Neurophysiol 38:933–946PubMed
go back to reference Garatachea N, Jiménez A, Bresciani G, Mariño NA, González-Gallego J, de Paz JA (2007) The effects of movement velocity during squatting on energy expenditure and substrate utilization in whole-body vibration. J Strength Cond Res 21:594–598PubMed Garatachea N, Jiménez A, Bresciani G, Mariño NA, González-Gallego J, de Paz JA (2007) The effects of movement velocity during squatting on energy expenditure and substrate utilization in whole-body vibration. J Strength Cond Res 21:594–598PubMed
go back to reference Hazell TJ, Jakobi JM, Kenno KA (2007) The effects of whole-body vibration on upper- and lower-body EMG during static and dynamic contractions. Appl Physiol Nutr Metab 32:1156–1163PubMedCrossRef Hazell TJ, Jakobi JM, Kenno KA (2007) The effects of whole-body vibration on upper- and lower-body EMG during static and dynamic contractions. Appl Physiol Nutr Metab 32:1156–1163PubMedCrossRef
go back to reference Hazell TJ, Kenno KA, Jakobi JM (2010) Evaluation of muscle activity for loaded and unloaded dynamic squats during vertical whole-body vibration. J Strength Cond Res 24:1860–1865PubMedCrossRef Hazell TJ, Kenno KA, Jakobi JM (2010) Evaluation of muscle activity for loaded and unloaded dynamic squats during vertical whole-body vibration. J Strength Cond Res 24:1860–1865PubMedCrossRef
go back to reference Hogrel J-Y (2003) Use of surface EMG for studying motor unit recruitment during isometric linear force ramp. J Electromyogr Kinesiol 13:417–423PubMedCrossRef Hogrel J-Y (2003) Use of surface EMG for studying motor unit recruitment during isometric linear force ramp. J Electromyogr Kinesiol 13:417–423PubMedCrossRef
go back to reference Jacobs PL, Burns P (2009) Acute enhancement of lower-extremity dynamic strength and flexibility with whole-body vibration. J Strength Cond Res 23:51–57PubMedCrossRef Jacobs PL, Burns P (2009) Acute enhancement of lower-extremity dynamic strength and flexibility with whole-body vibration. J Strength Cond Res 23:51–57PubMedCrossRef
go back to reference Keenan KG, Farina D, Maluf KS, Merletti R, Enoka RM (2005) Influence of amplitude cancellation on the simulated surface electromyogram. J Appl Physiol 98:120–131PubMedCrossRef Keenan KG, Farina D, Maluf KS, Merletti R, Enoka RM (2005) Influence of amplitude cancellation on the simulated surface electromyogram. J Appl Physiol 98:120–131PubMedCrossRef
go back to reference Kellis E, Katis A (2008) Reliability of EMG power-spectrum and amplitude of the semitendinosus and biceps femoris muscles during ramp isometric contractions. J Electromyogr Kinesiol 18:351–358PubMedCrossRef Kellis E, Katis A (2008) Reliability of EMG power-spectrum and amplitude of the semitendinosus and biceps femoris muscles during ramp isometric contractions. J Electromyogr Kinesiol 18:351–358PubMedCrossRef
go back to reference Kooistra RD, Blaauboer ME, Born JR, de Ruiter CJ, de Haan A (2006) Knee extensor muscle oxygen consumption in relation to muscle activation. Eur J Appl Physiol 98:535–545PubMedCrossRef Kooistra RD, Blaauboer ME, Born JR, de Ruiter CJ, de Haan A (2006) Knee extensor muscle oxygen consumption in relation to muscle activation. Eur J Appl Physiol 98:535–545PubMedCrossRef
go back to reference Marín PJ, Bunker D, Rhea MR, Ayllón FN (2009) Neuromuscular activity during whole-body vibration of different amplitudes and footwear conditions: implications for prescription of vibratory stimulation. J Strength Cond Res 23:2311–2316PubMedCrossRef Marín PJ, Bunker D, Rhea MR, Ayllón FN (2009) Neuromuscular activity during whole-body vibration of different amplitudes and footwear conditions: implications for prescription of vibratory stimulation. J Strength Cond Res 23:2311–2316PubMedCrossRef
go back to reference Merriman HL, Brahler CJ, Jackson K (2011) Systematically controlling for the influence of age, sex, hertz and time post-whole-body vibration exposure on four measures of physical performance in community-dwelling older adults: a randomized cross-over study. Curr Gerontol Geriatr Res [Epub ahead of print] Merriman HL, Brahler CJ, Jackson K (2011) Systematically controlling for the influence of age, sex, hertz and time post-whole-body vibration exposure on four measures of physical performance in community-dwelling older adults: a randomized cross-over study. Curr Gerontol Geriatr Res [Epub ahead of print]
go back to reference Milner-Brown HS, Stein RB, Yemm R (1973a) Changes in firing rate of human motor units during linearly changing voluntary contractions. J Physiol 230:371–390PubMed Milner-Brown HS, Stein RB, Yemm R (1973a) Changes in firing rate of human motor units during linearly changing voluntary contractions. J Physiol 230:371–390PubMed
go back to reference Milner-Brown HS, Stein RB, Yemm R (1973b) The orderly recruitment of human motor units during voluntary isometric contractions. J Physiol 230:359–370PubMed Milner-Brown HS, Stein RB, Yemm R (1973b) The orderly recruitment of human motor units during voluntary isometric contractions. J Physiol 230:359–370PubMed
go back to reference Moritani T (2002) Motor unit and motoneurone excitability during explosive movement. In: Komi P (ed) Strength and power in sport, 2nd edn. Blackwell, Oxford, pp 27–49 Moritani T (2002) Motor unit and motoneurone excitability during explosive movement. In: Komi P (ed) Strength and power in sport, 2nd edn. Blackwell, Oxford, pp 27–49
go back to reference Moritani T, Muro M (1987) Motor unit activity and surface electromyogram power spectrum during increasing force of contraction. Eur J Appl Physiol Occup Physiol 56:260–265PubMedCrossRef Moritani T, Muro M (1987) Motor unit activity and surface electromyogram power spectrum during increasing force of contraction. Eur J Appl Physiol Occup Physiol 56:260–265PubMedCrossRef
go back to reference Nolan L, Kerrigan DC (2003) Keep on your toes: gait initiation from toe-standing. J Biomech 36:393–401PubMedCrossRef Nolan L, Kerrigan DC (2003) Keep on your toes: gait initiation from toe-standing. J Biomech 36:393–401PubMedCrossRef
go back to reference Pel JJM, Bagheri J, van Dam LM, van den Berg-Emons HJG, Horemans HLD, Stam HJ, van der Steen J (2009) Platform accelerations of three different whole-body vibration devices and the transmission of vertical vibrations to the lower limbs. Med Eng Phys 31:937–944PubMedCrossRef Pel JJM, Bagheri J, van Dam LM, van den Berg-Emons HJG, Horemans HLD, Stam HJ, van der Steen J (2009) Platform accelerations of three different whole-body vibration devices and the transmission of vertical vibrations to the lower limbs. Med Eng Phys 31:937–944PubMedCrossRef
go back to reference Pincivero DM, Salfetnikov Y, Campy RM, Coelho AJ (2004) Angle- and gender-specific quadriceps femoris muscle recruitment and knee extensor torque. J Biomech 37:1689–1697PubMedCrossRef Pincivero DM, Salfetnikov Y, Campy RM, Coelho AJ (2004) Angle- and gender-specific quadriceps femoris muscle recruitment and knee extensor torque. J Biomech 37:1689–1697PubMedCrossRef
go back to reference Pollock RD, Woledge RC, Mills KR, Martin FC, Di Newham J (2010) Muscle activity and acceleration during whole body vibration: effect of frequency and amplitude. Clin Biomech 25:840–846CrossRef Pollock RD, Woledge RC, Mills KR, Martin FC, Di Newham J (2010) Muscle activity and acceleration during whole body vibration: effect of frequency and amplitude. Clin Biomech 25:840–846CrossRef
go back to reference Rauch F, Sievanen H, Boonen S, Cardinale M, Degens H, Felsenberg D, Roth J, Schoenau E, Verschueren S, Rittweger J (2010) Reporting whole-body vibration intervention studies: recommendations of the International Society of Musculoskeletal and Neuronal Interactions. J Musculoskelet Neuronal Interact 10:193–198PubMed Rauch F, Sievanen H, Boonen S, Cardinale M, Degens H, Felsenberg D, Roth J, Schoenau E, Verschueren S, Rittweger J (2010) Reporting whole-body vibration intervention studies: recommendations of the International Society of Musculoskeletal and Neuronal Interactions. J Musculoskelet Neuronal Interact 10:193–198PubMed
go back to reference Riley ZA, Maerz AH, Litsey JC, Enoka RM (2008) Motor unit recruitment in human biceps brachii during sustained voluntary contractions. J Physiol 586:2183–2193PubMedCrossRef Riley ZA, Maerz AH, Litsey JC, Enoka RM (2008) Motor unit recruitment in human biceps brachii during sustained voluntary contractions. J Physiol 586:2183–2193PubMedCrossRef
go back to reference Rittweger J (2010) Vibration as an exercise modality: how it may work, and what its potential might be. Eur J Appl Physiol 108:877–904PubMedCrossRef Rittweger J (2010) Vibration as an exercise modality: how it may work, and what its potential might be. Eur J Appl Physiol 108:877–904PubMedCrossRef
go back to reference Rittweger J, Ehrig J, Just K, Mutschelknauss M, Kirsch KA, Felsenberg D (2003) Oxygen uptake in whole-body vibration exercise: influence of vibration frequency, amplitude, and external load. Int J Sports Med 23:428–432 Rittweger J, Ehrig J, Just K, Mutschelknauss M, Kirsch KA, Felsenberg D (2003) Oxygen uptake in whole-body vibration exercise: influence of vibration frequency, amplitude, and external load. Int J Sports Med 23:428–432
go back to reference Rittweger J, Schiessl H, Felsenberg D (2001) Oxygen uptake during whole-body vibration exercise: comparison with squatting as a slow voluntary movement. Eur J Appl Physiol 86:169–173PubMedCrossRef Rittweger J, Schiessl H, Felsenberg D (2001) Oxygen uptake during whole-body vibration exercise: comparison with squatting as a slow voluntary movement. Eur J Appl Physiol 86:169–173PubMedCrossRef
go back to reference Ritzmann R, Kramer A, Gruber M, Gollhofer A, Taube W (2010) EMG activity during whole body vibration: motion artifacts or stretch reflexes? Eur J Appl Physiol 110:143–151PubMedCrossRef Ritzmann R, Kramer A, Gruber M, Gollhofer A, Taube W (2010) EMG activity during whole body vibration: motion artifacts or stretch reflexes? Eur J Appl Physiol 110:143–151PubMedCrossRef
go back to reference Roelants M, Delecluse C, Verschueren SM (2004) Whole-body-vibration training increases knee-extension strength and speed of movement in older women. J Am Geriatr Soc 52:901–908PubMedCrossRef Roelants M, Delecluse C, Verschueren SM (2004) Whole-body-vibration training increases knee-extension strength and speed of movement in older women. J Am Geriatr Soc 52:901–908PubMedCrossRef
go back to reference Sañudo B, Feria A, Carrasco L, Hoyo MD, Santos R, Gamboa H (2011) Gender differences in knee stability in response to whole body vibration. J Strength Cond Res [Epub ahead of print] Sañudo B, Feria A, Carrasco L, Hoyo MD, Santos R, Gamboa H (2011) Gender differences in knee stability in response to whole body vibration. J Strength Cond Res [Epub ahead of print]
go back to reference Sasagawa S, Ushiyama J, Masani K, Kouzaki M, Kanehisa H (2009) Balance control under different passive contributions of the ankle extensors: quiet standing on inclined surfaces. Exp Brain Res 196:537–544PubMedCrossRef Sasagawa S, Ushiyama J, Masani K, Kouzaki M, Kanehisa H (2009) Balance control under different passive contributions of the ankle extensors: quiet standing on inclined surfaces. Exp Brain Res 196:537–544PubMedCrossRef
go back to reference Stewart JA, Cochrane DJ, Morton RH (2009) Differential effects of whole body vibration durations on knee extensor strength. J Sci Med Sport 12:50–53PubMedCrossRef Stewart JA, Cochrane DJ, Morton RH (2009) Differential effects of whole body vibration durations on knee extensor strength. J Sci Med Sport 12:50–53PubMedCrossRef
go back to reference Torvinen S, Kannus P, Sievänen H, Järvinen TA, Pasanen M, Kontulainen S, Järvinen TL, Järvinen M, Oja P, Vuori I (2002) Effect of four-month vertical whole body vibration on performance and balance. Med Sci Sports Exerc 34:1523–1528PubMedCrossRef Torvinen S, Kannus P, Sievänen H, Järvinen TA, Pasanen M, Kontulainen S, Järvinen TL, Järvinen M, Oja P, Vuori I (2002) Effect of four-month vertical whole body vibration on performance and balance. Med Sci Sports Exerc 34:1523–1528PubMedCrossRef
go back to reference Wilcock IM, Whatman C, Harris N, Keogh JWL (2009) Vibration training: could it enhance the strength, power, or speed of athletes? J Strength Cond Res 23:593–603PubMed Wilcock IM, Whatman C, Harris N, Keogh JWL (2009) Vibration training: could it enhance the strength, power, or speed of athletes? J Strength Cond Res 23:593–603PubMed
Metadata
Title
The influence of vibration type, frequency, body position and additional load on the neuromuscular activity during whole body vibration
Authors
Ramona Ritzmann
Albert Gollhofer
Andreas Kramer
Publication date
01-01-2013
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 1/2013
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-012-2402-0

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