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Published in: European Journal of Applied Physiology 4/2007

01-11-2007 | Original Article

Strength training reduces freely chosen pedal rate during submaximal cycling

Authors: Ernst Albin Hansen, Truls Raastad, Jostein Hallén

Published in: European Journal of Applied Physiology | Issue 4/2007

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Abstract

The freely chosen pedal rate is relatively high and energetically inefficient during submaximal cycling, which is a paradox since the rate of energy expenditure is considered important for voluntary motor behavior in other cyclical activities as, e.g., running. For example, it has been suggested that subjects pedal fast to reduce the perception of force. In this study, we investigated the hypothesis that strength training would cause subjects to pedal at a slower rate during low to moderate submaximal cycling. Fourteen healthy subjects performed supervised heavy (2–12 RM) strength training 4 days/week for 12 weeks, including 2 days/week with leg-extensor and knee-flexor exercises. Seven healthy subjects formed the control group. The training group increased strength (one repetition maximum, 1 RM) in both squat [20%(3), mean (SEM)] and leg curl [12%(1)] exercises from the beginning to the end of the study period (p < 0.01). At the same time, freely chosen pedal rate was reduced by 8 (2) and 10 (2) rpm, respectively, during cycling at 37 and 57% of maximal power output (W max) (p < 0.01). In addition, rate of energy expenditure is 3% (2) lower at 37% of W max (p < 0.05) and tended to be lower at 57% W max (p = 0.07) at the end of the study. Values for strength, freely chosen pedal rate, and rate of energy expenditure, were unchanged for the control group from the beginning to the end of the study. In conclusion, strength training caused subjects to choose a ∼9 rpm lower pedal rate during submaximal cycling. This was accompanied by a ∼3% lower rate of energy expenditure.
Literature
go back to reference Aagaard P, Simonsen EB, Andersen JL, Magnusson SP, Halkjær-Kristensen J, Dyhre-Poulsen P (2000) Neural inhibition during maximal eccentric and concentric quadriceps contraction: effects of resistance training. J Appl Physiol 89:2249–2257PubMed Aagaard P, Simonsen EB, Andersen JL, Magnusson SP, Halkjær-Kristensen J, Dyhre-Poulsen P (2000) Neural inhibition during maximal eccentric and concentric quadriceps contraction: effects of resistance training. J Appl Physiol 89:2249–2257PubMed
go back to reference Almåsbakk B, Whiting HTA, van den Tillaar R (2000) Optimisation in the learning of cyclical actions. In: Sparrow WA (ed) Energetics of human activity. Human Kinetics, Leeds, pp 228–254 Almåsbakk B, Whiting HTA, van den Tillaar R (2000) Optimisation in the learning of cyclical actions. In: Sparrow WA (ed) Energetics of human activity. Human Kinetics, Leeds, pp 228–254
go back to reference Bawa P (2002) Neural control of motor output: can training change it? Exerc Sport Sci Rev 30:59–63PubMedCrossRef Bawa P (2002) Neural control of motor output: can training change it? Exerc Sport Sci Rev 30:59–63PubMedCrossRef
go back to reference Böning D, Gönen Y, Maassen N (1984) Relationship between work load, pedal frequency, and physical fitness. Int J Sports Med 5:92–97PubMed Böning D, Gönen Y, Maassen N (1984) Relationship between work load, pedal frequency, and physical fitness. Int J Sports Med 5:92–97PubMed
go back to reference Borg G (1970) Perceived exertion as an indicator of somatic stress. Scand J Rehabil Med 2:92–98PubMed Borg G (1970) Perceived exertion as an indicator of somatic stress. Scand J Rehabil Med 2:92–98PubMed
go back to reference Carroll TJ, Riek S, Carson RG (2001) Neural adaptations to resistance training: implications for movement control. Sports Med 31:829–840PubMedCrossRef Carroll TJ, Riek S, Carson RG (2001) Neural adaptations to resistance training: implications for movement control. Sports Med 31:829–840PubMedCrossRef
go back to reference Coyle EF, Sidossis LS, Horowitz JF, Beltz JD (1992) Cycling efficiency is related to the percentage of type I muscle fibers. Med Sci Sports Exerc 24:782–788PubMed Coyle EF, Sidossis LS, Horowitz JF, Beltz JD (1992) Cycling efficiency is related to the percentage of type I muscle fibers. Med Sci Sports Exerc 24:782–788PubMed
go back to reference Fleck SJ, Kraemer WJ (2004) Designing resistance training programs. Human Kinetics, Campaign, pp 13–51 Fleck SJ, Kraemer WJ (2004) Designing resistance training programs. Human Kinetics, Campaign, pp 13–51
go back to reference Foss Ø, Hallén J (2004) The most economical cadence increases with increasing workload. Eur J Appl Physiol 92:443–451PubMedCrossRef Foss Ø, Hallén J (2004) The most economical cadence increases with increasing workload. Eur J Appl Physiol 92:443–451PubMedCrossRef
go back to reference Foss Ø, Hallén J (2005) Cadence and performance in elite cyclists. Eur J Appl Physiol 93:453–462PubMedCrossRef Foss Ø, Hallén J (2005) Cadence and performance in elite cyclists. Eur J Appl Physiol 93:453–462PubMedCrossRef
go back to reference Gabriel DA, Kamen G, Frost G (2006) Neural adaptations to resistive exercise: mechanisms and recommendations for training practices. Sports Med 36:133–149PubMedCrossRef Gabriel DA, Kamen G, Frost G (2006) Neural adaptations to resistive exercise: mechanisms and recommendations for training practices. Sports Med 36:133–149PubMedCrossRef
go back to reference Hadders-Algra M, Brogren E, Forssberg H (1996) Training affects the development of postural adjustments in sitting infants. J Physiol 493:289–298PubMed Hadders-Algra M, Brogren E, Forssberg H (1996) Training affects the development of postural adjustments in sitting infants. J Physiol 493:289–298PubMed
go back to reference Hansen EA, Andersen JL, Nielsen JS, Sjøgaard G (2002) Muscle fibre type, efficiency, and mechanical optima affect freely chosen pedal rate during cycling. Acta Physiol Scand 176:185–194PubMedCrossRef Hansen EA, Andersen JL, Nielsen JS, Sjøgaard G (2002) Muscle fibre type, efficiency, and mechanical optima affect freely chosen pedal rate during cycling. Acta Physiol Scand 176:185–194PubMedCrossRef
go back to reference Hansen EA, Jensen K, Pedersen PK (2006) Performance following prolonged sub-maximal cycling at optimal versus freely chosen pedal rate. Eur J Appl Physiol 98:227–233PubMedCrossRef Hansen EA, Jensen K, Pedersen PK (2006) Performance following prolonged sub-maximal cycling at optimal versus freely chosen pedal rate. Eur J Appl Physiol 98:227–233PubMedCrossRef
go back to reference Klausen K, Rasmussen B, Glensgaard LK, Jensen OV (1985) Work efficiency of children during submaximal bicycle exercise. In: Binkhorst RA et al. (ed) Children and exercise XI. Human Kinetics, Campaign, pp 210–217 Klausen K, Rasmussen B, Glensgaard LK, Jensen OV (1985) Work efficiency of children during submaximal bicycle exercise. In: Binkhorst RA et al. (ed) Children and exercise XI. Human Kinetics, Campaign, pp 210–217
go back to reference Kohler G, Boutellier U (2005) The generalized force–velocity relationship explains why the preferred pedaling rate of cyclists exceeds the most efficient one. Eur J Appl Physiol 94:188–195PubMedCrossRef Kohler G, Boutellier U (2005) The generalized force–velocity relationship explains why the preferred pedaling rate of cyclists exceeds the most efficient one. Eur J Appl Physiol 94:188–195PubMedCrossRef
go back to reference Kubo K, Kanehisa H, Fukunaga T (2002) Effects of resistance and stretching training programmes on the viscoelastic properties of human tendon structures in vivo. J Physiol 538:219–226PubMedCrossRef Kubo K, Kanehisa H, Fukunaga T (2002) Effects of resistance and stretching training programmes on the viscoelastic properties of human tendon structures in vivo. J Physiol 538:219–226PubMedCrossRef
go back to reference Löllgen H, Graham T, Sjogaard G (1980) Muscle metabolites, force, and perceived exertion bicycling at varying pedal rates. Med Sci Sports Exerc 12:345–351PubMedCrossRef Löllgen H, Graham T, Sjogaard G (1980) Muscle metabolites, force, and perceived exertion bicycling at varying pedal rates. Med Sci Sports Exerc 12:345–351PubMedCrossRef
go back to reference Loveless DJ, Weber CL, Haseler LJ, Schneider DA (2005) Maximal leg-strength training improves cycling economy in previously untrained men. Med Sci Sports Exerc 37:1231–1236PubMedCrossRef Loveless DJ, Weber CL, Haseler LJ, Schneider DA (2005) Maximal leg-strength training improves cycling economy in previously untrained men. Med Sci Sports Exerc 37:1231–1236PubMedCrossRef
go back to reference Lucia A, Hoyos J, Perez M, Santalla A, Earnest CP, Chicharro JL (2004) Which laboratory variable is related with time trial performance time in the Tour de France? Br J Sports Med 38:636–640PubMedCrossRef Lucia A, Hoyos J, Perez M, Santalla A, Earnest CP, Chicharro JL (2004) Which laboratory variable is related with time trial performance time in the Tour de France? Br J Sports Med 38:636–640PubMedCrossRef
go back to reference Lusk G (1976) The elements of the science of nutrition. Johnson Reprint Corporation, New York, p 65 Lusk G (1976) The elements of the science of nutrition. Johnson Reprint Corporation, New York, p 65
go back to reference Marsh AP, Martin PE (1997) Effect of cycling experience, aerobic power, and power output on preferred and most economical cycling cadences. Med Sci Sports Exerc 29:1225–1232PubMed Marsh AP, Martin PE (1997) Effect of cycling experience, aerobic power, and power output on preferred and most economical cycling cadences. Med Sci Sports Exerc 29:1225–1232PubMed
go back to reference Martin PE, Sanderson DJ, Umberger BR (2000) Factors affecting preferred rates of movement in cyclic activities. In: Zatsiorsky VM (ed) Biomechanics in sport. Performance enhancement and injury prevention. Blackwell Science, London, pp 143–160 Martin PE, Sanderson DJ, Umberger BR (2000) Factors affecting preferred rates of movement in cyclic activities. In: Zatsiorsky VM (ed) Biomechanics in sport. Performance enhancement and injury prevention. Blackwell Science, London, pp 143–160
go back to reference Mihevic PM (1981) Sensory cues for perceived exertion: a review. Med Sci Sports Exerc 13:150–163PubMed Mihevic PM (1981) Sensory cues for perceived exertion: a review. Med Sci Sports Exerc 13:150–163PubMed
go back to reference Mogensen M, Bagger M, Pedersen PK, Fernström M, Sahlin K (2006) Cycling efficiency in humans is related to low UCP3 content and to type I fibres but not to mitochondrial efficiency. J Physiol 571:669–681PubMedCrossRef Mogensen M, Bagger M, Pedersen PK, Fernström M, Sahlin K (2006) Cycling efficiency in humans is related to low UCP3 content and to type I fibres but not to mitochondrial efficiency. J Physiol 571:669–681PubMedCrossRef
go back to reference Nielsen JS, Hansen EA, Sjøgaard G (2004) Pedalling rate affects endurance performance during high-intensity cycling. Eur J Appl Physiol 92:114–120PubMedCrossRef Nielsen JS, Hansen EA, Sjøgaard G (2004) Pedalling rate affects endurance performance during high-intensity cycling. Eur J Appl Physiol 92:114–120PubMedCrossRef
go back to reference Sparrow WA, Newell KM (1998) Metabolic energy expenditure and the regulation of movement economy. Psychon Bull Rev 5:173–196 Sparrow WA, Newell KM (1998) Metabolic energy expenditure and the regulation of movement economy. Psychon Bull Rev 5:173–196
go back to reference Stegemann J, Ulmer H-V, Heinrich KW (1968) Relation between force and force perception as basis for the selection of energetically unfavorable pedaling frequencies in cycling. Int Z Angew Physiol 25:224–234PubMed Stegemann J, Ulmer H-V, Heinrich KW (1968) Relation between force and force perception as basis for the selection of energetically unfavorable pedaling frequencies in cycling. Int Z Angew Physiol 25:224–234PubMed
go back to reference Takaishi T, Yamamoto T, Ono T, Ito T, Moritani T (1998) Neuromuscular, metabolic, and kinetic adaptations for skilled pedaling performance in cyclists. Med Sci Sports Exerc 30:442–449PubMed Takaishi T, Yamamoto T, Ono T, Ito T, Moritani T (1998) Neuromuscular, metabolic, and kinetic adaptations for skilled pedaling performance in cyclists. Med Sci Sports Exerc 30:442–449PubMed
go back to reference Zehr EP (2005) Neural control of rhythmic human movement: The common core hypothesis. Exerc Sport Sci Rev 33:54–60PubMed Zehr EP (2005) Neural control of rhythmic human movement: The common core hypothesis. Exerc Sport Sci Rev 33:54–60PubMed
Metadata
Title
Strength training reduces freely chosen pedal rate during submaximal cycling
Authors
Ernst Albin Hansen
Truls Raastad
Jostein Hallén
Publication date
01-11-2007
Publisher
Springer-Verlag
Published in
European Journal of Applied Physiology / Issue 4/2007
Print ISSN: 1439-6319
Electronic ISSN: 1439-6327
DOI
https://doi.org/10.1007/s00421-007-0515-7

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