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Published in: European Journal of Applied Physiology 12/2011

01-12-2011 | Original Article

Effect of power output on muscle coordination during rowing

Authors: Nicolas A. Turpin, Arnaud Guével, Sylvain Durand, François Hug

Published in: European Journal of Applied Physiology | Issue 12/2011

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Abstract

The present study was designed to quantify the effect of power output on muscle coordination during rowing. Surface electromyographic (EMG) activity of 23 muscles and mechanical variables were recorded in eight untrained subjects and seven experienced rowers. Each subject was asked to perform three 2-min constant-load exercises performed at 60, 90 and 120% of the mean power output over a maximal 2,000-m event (denoted as P60, P90, and P120, respectively). A decomposition algorithm (nonnegative matrix factorization) was used to extract the muscle synergies that represent the global temporal and spatial organization of the motor output. The results showed a main effect of power output for 22 of 23 muscles (p values ranged from <0.0001 to 0.004) indicating a significant increase in EMG activity level with power output for both untrained and experienced subjects. However, for the two populations, no dramatic modification in the shape of individual EMG patterns (mean r max value = 0.93 ± 0.09) or in their timing of activation (maximum lag time = −4.3 ± 3.8% of the rowing cycle) was found. The results also showed a large consistency of the three extracted muscle synergies, for both synergy activation coefficients (mean r max values range from 0.87 to 0.97) and muscle synergy vectors (mean r values range from 0.70 to 0.76) across the three power outputs. In conclusion, despite significant changes in the level of muscle activity, the global temporal and spatial organization of the motor output is very little affected by power output on a rowing ergometer.
Literature
go back to reference Boyas S, Nordez A, Cornu C, Guevel A (2006) Power responses of a rowing ergometer: mechanical sensors vs. Concept2 measurement system. Int J Sports Med 27:830–833PubMedCrossRef Boyas S, Nordez A, Cornu C, Guevel A (2006) Power responses of a rowing ergometer: mechanical sensors vs. Concept2 measurement system. Int J Sports Med 27:830–833PubMedCrossRef
go back to reference Burden A, Bartlett R (1999) Normalisation of EMG amplitude: an evaluation and comparison of old and new methods. Med Eng Phys 21:247–257PubMedCrossRef Burden A, Bartlett R (1999) Normalisation of EMG amplitude: an evaluation and comparison of old and new methods. Med Eng Phys 21:247–257PubMedCrossRef
go back to reference Cappellini G, Ivanenko YP, Poppele RE, Lacquaniti F (2006) Motor patterns in human walking and running. J Neurophysiol 95:3426–3437PubMedCrossRef Cappellini G, Ivanenko YP, Poppele RE, Lacquaniti F (2006) Motor patterns in human walking and running. J Neurophysiol 95:3426–3437PubMedCrossRef
go back to reference Cavanagh PR, Komi PV (1979) Electromechanical delay in human skeletal muscle under concentric and eccentric contractions. Eur J Appl Physiol Occup Physiol 42:159–163PubMedCrossRef Cavanagh PR, Komi PV (1979) Electromechanical delay in human skeletal muscle under concentric and eccentric contractions. Eur J Appl Physiol Occup Physiol 42:159–163PubMedCrossRef
go back to reference Colloud F, Bahuaud P, Doriot N, Champely S, Cheze L (2006) Fixed versus free-floating stretcher mechanism in rowing ergometers: mechanical aspects. J Sports Sci 24:479–493PubMedCrossRef Colloud F, Bahuaud P, Doriot N, Champely S, Cheze L (2006) Fixed versus free-floating stretcher mechanism in rowing ergometers: mechanical aspects. J Sports Sci 24:479–493PubMedCrossRef
go back to reference de Sèze M, Cazalets J-R (2008) Anatomical optimization of skin electrode placement to record electromyographic activity of erector spinae muscles. Surg Radiol Anat 30:137–143PubMedCrossRef de Sèze M, Cazalets J-R (2008) Anatomical optimization of skin electrode placement to record electromyographic activity of erector spinae muscles. Surg Radiol Anat 30:137–143PubMedCrossRef
go back to reference Ericson M (1986) On the biomechanics of cycling. A study of joint and muscle load during exercise on the bicycle ergometer. Scand J Rehabil Med Suppl 16:1–43PubMed Ericson M (1986) On the biomechanics of cycling. A study of joint and muscle load during exercise on the bicycle ergometer. Scand J Rehabil Med Suppl 16:1–43PubMed
go back to reference Gordon S (2003) A mathematical model for power output in rowing on an ergometer. Sports Eng 6:221–234CrossRef Gordon S (2003) A mathematical model for power output in rowing on an ergometer. Sports Eng 6:221–234CrossRef
go back to reference Guével A, Boyas S, Guihard V, Cornu C, Hug F, Nordez A (2011) Thigh muscle activities during codified training sequences of on-water rowing. Int J Sports Med 32(2):109–116PubMedCrossRef Guével A, Boyas S, Guihard V, Cornu C, Hug F, Nordez A (2011) Thigh muscle activities during codified training sequences of on-water rowing. Int J Sports Med 32(2):109–116PubMedCrossRef
go back to reference Hermens HJ, Freriks B, Disselhorst-Klug C, Rau G (2000) Development of recommendations for SEMG sensors and sensor placement procedures. J Electromyogr Kinesiol 10:361–374PubMedCrossRef Hermens HJ, Freriks B, Disselhorst-Klug C, Rau G (2000) Development of recommendations for SEMG sensors and sensor placement procedures. J Electromyogr Kinesiol 10:361–374PubMedCrossRef
go back to reference Hug F (2011) Can muscle coordination be precisely studied by surface electromyography? J Electromyogr Kinesiol 21(1):1–12PubMedCrossRef Hug F (2011) Can muscle coordination be precisely studied by surface electromyography? J Electromyogr Kinesiol 21(1):1–12PubMedCrossRef
go back to reference Hug F, Dorel S (2009) Electromyographic analysis of pedaling: A review. J Electromyogr Kinesiol 19(2):182–198PubMedCrossRef Hug F, Dorel S (2009) Electromyographic analysis of pedaling: A review. J Electromyogr Kinesiol 19(2):182–198PubMedCrossRef
go back to reference Hug F, Turpin NA, Guevel A, Dorel S (2010) Is interindividual variability of EMG patterns in trained cyclists related to different muscle synergies? J Appl Physiol 108:1727–1736PubMedCrossRef Hug F, Turpin NA, Guevel A, Dorel S (2010) Is interindividual variability of EMG patterns in trained cyclists related to different muscle synergies? J Appl Physiol 108:1727–1736PubMedCrossRef
go back to reference Ivanenko YP, Poppele RE, Lacquaniti F (2004) Five basic muscle activation patterns account for muscle activity during human locomotion. J Physiol 556:267–282PubMedCrossRef Ivanenko YP, Poppele RE, Lacquaniti F (2004) Five basic muscle activation patterns account for muscle activity during human locomotion. J Physiol 556:267–282PubMedCrossRef
go back to reference Ivanenko YP, Poppele RE, Lacquaniti F (2006) Motor control programs and walking. Neuroscientist 12:339–348PubMedCrossRef Ivanenko YP, Poppele RE, Lacquaniti F (2006) Motor control programs and walking. Neuroscientist 12:339–348PubMedCrossRef
go back to reference Janshen L, Mattes K, Tidow G (2009) Muscular coordination of the lower extremities of oarsmen during ergometer rowing. J Appl Biomech 25:156–164PubMed Janshen L, Mattes K, Tidow G (2009) Muscular coordination of the lower extremities of oarsmen during ergometer rowing. J Appl Biomech 25:156–164PubMed
go back to reference Jorge M, Hull ML (1986) Analysis of EMG measurements during bicycle pedalling. J Biomech 19:683–694PubMedCrossRef Jorge M, Hull ML (1986) Analysis of EMG measurements during bicycle pedalling. J Biomech 19:683–694PubMedCrossRef
go back to reference Klarner T, Chan HK, Wakeling JM, Lam T (2010) Patterns of muscle coordination vary with stride frequency during weight assisted treadmill walking. Gait Posture 31:360–365PubMedCrossRef Klarner T, Chan HK, Wakeling JM, Lam T (2010) Patterns of muscle coordination vary with stride frequency during weight assisted treadmill walking. Gait Posture 31:360–365PubMedCrossRef
go back to reference Lay BS, Sparrow WA, Hughes KM, Dwyer NJ (2002) Practice effects on coordination and control, metabolic energy expenditure, and muscle activation. Hum Mov Sci 21:807–830PubMedCrossRef Lay BS, Sparrow WA, Hughes KM, Dwyer NJ (2002) Practice effects on coordination and control, metabolic energy expenditure, and muscle activation. Hum Mov Sci 21:807–830PubMedCrossRef
go back to reference Lee DD, Seung HS (2001) Algorithms for non-negative matrix factorization. In: Advances in neural information processing systems, MIT Press, Cambridge, pp 556–562 Lee DD, Seung HS (2001) Algorithms for non-negative matrix factorization. In: Advances in neural information processing systems, MIT Press, Cambridge, pp 556–562
go back to reference Li ZM (2006) Functional degree of freedom. Mot Control 10:301–310 Li ZM (2006) Functional degree of freedom. Mot Control 10:301–310
go back to reference Li L, Baum BS (2004) Electromechanical delay estimated by using electromyography during cycling at different pedaling frequencies. J Electromyogr Kinesiol 14:647–652PubMedCrossRef Li L, Baum BS (2004) Electromechanical delay estimated by using electromyography during cycling at different pedaling frequencies. J Electromyogr Kinesiol 14:647–652PubMedCrossRef
go back to reference McGregor AH, Bull AM, Byng-Maddick R (2004) A comparison of rowing technique at different stroke rates: a description of sequencing, force production and kinematics. Int J Sports Med 25:465–470PubMedCrossRef McGregor AH, Bull AM, Byng-Maddick R (2004) A comparison of rowing technique at different stroke rates: a description of sequencing, force production and kinematics. Int J Sports Med 25:465–470PubMedCrossRef
go back to reference McGregor AH, Patankar ZS, Bull AM (2005) Spinal kinematics in elite oarswomen during a routine physiological “step test”. Med Sci Sports Exerc 37:1014–1020PubMedCrossRef McGregor AH, Patankar ZS, Bull AM (2005) Spinal kinematics in elite oarswomen during a routine physiological “step test”. Med Sci Sports Exerc 37:1014–1020PubMedCrossRef
go back to reference Muceli S, Boye AT, d’Avella A, Farina D (2010) Identifying representative synergy matrices for describing muscular activation patterns during multidirectional reaching in the horizontal plane. J Neurophysiol 103:1532–1542PubMedCrossRef Muceli S, Boye AT, d’Avella A, Farina D (2010) Identifying representative synergy matrices for describing muscular activation patterns during multidirectional reaching in the horizontal plane. J Neurophysiol 103:1532–1542PubMedCrossRef
go back to reference Pollock CL, Jenkyn TR, Jones IC, Ivanova TD, Garland SJ (2009) Electromyography and kinematics of the trunk during rowing in elite female rowers. Med Sci Sports Exerc 41:628–636PubMedCrossRef Pollock CL, Jenkyn TR, Jones IC, Ivanova TD, Garland SJ (2009) Electromyography and kinematics of the trunk during rowing in elite female rowers. Med Sci Sports Exerc 41:628–636PubMedCrossRef
go back to reference Prilutsky BI (2000) Coordination of two- and one-joint muscles: functional consequences and implications for motor control. Mot Control 4:1–44 Prilutsky BI (2000) Coordination of two- and one-joint muscles: functional consequences and implications for motor control. Mot Control 4:1–44
go back to reference Raasch CC, Zajac FE (1999) Locomotor strategy for pedaling: muscle groups and biomechanical functions. J Neurophysiol 82:515–525PubMed Raasch CC, Zajac FE (1999) Locomotor strategy for pedaling: muscle groups and biomechanical functions. J Neurophysiol 82:515–525PubMed
go back to reference Rodriguez RJ, Rogriguez RP, Cook SD, Sandborn PM (1990) Electromyographic analysis of rowing stroke biomechanics. J Sports Med Phys Fitness 30:103–108PubMed Rodriguez RJ, Rogriguez RP, Cook SD, Sandborn PM (1990) Electromyographic analysis of rowing stroke biomechanics. J Sports Med Phys Fitness 30:103–108PubMed
go back to reference Shiavi R, Frigo C, Pedotti A (1998) Electromyographic signals during gait: criteria for envelope filtering and number of strides. Med Biol Eng Comput 36:171–178PubMedCrossRef Shiavi R, Frigo C, Pedotti A (1998) Electromyographic signals during gait: criteria for envelope filtering and number of strides. Med Biol Eng Comput 36:171–178PubMedCrossRef
go back to reference Slawinski J, Dorel S, Hug F, Couturier A, Fournel V, Morin JB, Hanon C (2008) Elite long sprint running: a comparison between incline and level training sessions. Med Sci Sports Exerc 40:1155–1162PubMedCrossRef Slawinski J, Dorel S, Hug F, Couturier A, Fournel V, Morin JB, Hanon C (2008) Elite long sprint running: a comparison between incline and level training sessions. Med Sci Sports Exerc 40:1155–1162PubMedCrossRef
go back to reference Soper C, Hume PA (2004) Towards an ideal rowing technique for performance: the contributions from biomechanics. Sports Med 34:825–848PubMedCrossRef Soper C, Hume PA (2004) Towards an ideal rowing technique for performance: the contributions from biomechanics. Sports Med 34:825–848PubMedCrossRef
go back to reference Ting LH, Chvatal SA (2010) Decomposing muscle activity in motor tasks: methods and interpretation. In: Danion F, Latash M (eds) Motor control: theories, experiments, and applications, Oxford University Press, New York, pp 102–138 Ting LH, Chvatal SA (2010) Decomposing muscle activity in motor tasks: methods and interpretation. In: Danion F, Latash M (eds) Motor control: theories, experiments, and applications, Oxford University Press, New York, pp 102–138
go back to reference Ting LH, McKay JL (2007) Neuromechanics of muscle synergies for posture and movement. Curr Opin Neurobiol 17:622–628PubMedCrossRef Ting LH, McKay JL (2007) Neuromechanics of muscle synergies for posture and movement. Curr Opin Neurobiol 17:622–628PubMedCrossRef
go back to reference Torres-Oviedo G, Macpherson JM, Ting LH (2006) Muscle synergy organization is robust across a variety of postural perturbations. J Neurophysiol 96:1530–1546PubMedCrossRef Torres-Oviedo G, Macpherson JM, Ting LH (2006) Muscle synergy organization is robust across a variety of postural perturbations. J Neurophysiol 96:1530–1546PubMedCrossRef
go back to reference Tresch MC, Saltiel P, Bizzi E (1999) The construction of movement by the spinal cord. Nat Neurosci 2:162–167PubMedCrossRef Tresch MC, Saltiel P, Bizzi E (1999) The construction of movement by the spinal cord. Nat Neurosci 2:162–167PubMedCrossRef
go back to reference Volianitis S, Secher NH (2009) Rowing, the ultimate challenge to the human body—implications for physiological variables. Clin Physiol Funct Imaging 29:241–244PubMedCrossRef Volianitis S, Secher NH (2009) Rowing, the ultimate challenge to the human body—implications for physiological variables. Clin Physiol Funct Imaging 29:241–244PubMedCrossRef
go back to reference Wakeling JM, Horn T (2009) Neuromechanics of muscle synergies during cycling. J Neurophysiol 101:843PubMedCrossRef Wakeling JM, Horn T (2009) Neuromechanics of muscle synergies during cycling. J Neurophysiol 101:843PubMedCrossRef
go back to reference Wakeling JM, Blake OM, Chan HK (2010) Muscle coordination is key to the power output and mechanical efficiency of limb movements. J Exp Biol 213:487–492PubMedCrossRef Wakeling JM, Blake OM, Chan HK (2010) Muscle coordination is key to the power output and mechanical efficiency of limb movements. J Exp Biol 213:487–492PubMedCrossRef
go back to reference Wilson JMJ, Robertson DG, Stothart JP (1988) Analysis of lower limb muscle function in ergometer rowing. Int J Sport Biomech 4:315–325 Wilson JMJ, Robertson DG, Stothart JP (1988) Analysis of lower limb muscle function in ergometer rowing. Int J Sport Biomech 4:315–325
go back to reference Zipp P (1982) Recommendations for the standardization of lead positions in surface electromyography. Eur J Appl Physiol Occup Physiol 50:41–54CrossRef Zipp P (1982) Recommendations for the standardization of lead positions in surface electromyography. Eur J Appl Physiol Occup Physiol 50:41–54CrossRef
Metadata
Title
Effect of power output on muscle coordination during rowing
Authors
Nicolas A. Turpin
Arnaud Guével
Sylvain Durand
François Hug
Publication date
01-12-2011
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 12/2011
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-011-1928-x

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