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Sport-specific variability in the energy cost of constant speed running

implications for metabolic power estimations

##article.authors##

  • Jan Venzke Ruhr-University Bochum https://orcid.org/0000-0002-0746-9472
  • Robin Schäfer Department of Sports Medicine and Sports Nutrition, Ruhr University Bochum
  • Petra Platen Department of Sports Medicine and Sports Nutrition, Ruhr University Bochum

DOI:

https://doi.org/10.51224/SRXIV.531

Keywords:

Metabolic Power, Elite Athletes, Energy Cost, Running Economy

Abstract

Introduction:

Metabolic power is essential for assessing the physical demands of team sports. Accurately determining the energy cost of constant speed running (EC0), is crucial for refining these. EC0 depends on factors like running velocity and V̇O₂max and varies between athlete groups due to training adaptations and sport-specific body characteristics. To ensure accurate energy expenditure, EC0 should be individually determined based on the specific team sport, improving player monitoring, recovery, and load management.

Materials and Methods:

An experimental cohort study collected data from 339 incremental treadmill tests in elite team sports athletes: 11 male handball players, 120 male soccer players, 23 male and 185 female field hockey players. Athletes performed a treadmill protocol to exhaustion while O2-uptake, CO2-output, respiratory exchange ratio and ventilation were measured breath-by-breath. Data processing verified steady-state conditions. Net EC0 was calculated as energy expenditure above rest divided by velocity. Sport, speed, sex and V̇O2max were defined as fixed effect variables.

Results:

Our random intercept and slope model with all predictors performed best. Handball players had the highest EC0 (estimated total mean) with 4.06 J/kg/m (CI95% 3.90, 4.23), field hockey players with 3.97 J/kg/m (CI95% 3.92, 4.02) and soccer players with 3.76 J/kg/m (CI95% 3.70, 3.82). For the whole group, EC0 showed an implied curve-linear dependence on speed: increasing with speed, then slightly decreasing above 3.5 m/s. However, grouping athletes by similar treadmill performance, EC0 remained constant across speeds.

Discussion:

Our data show multiple predictors must be considered to determine an appropriate EC₀ for each athlete. Although EC₀ remains stable across velocities for individuals, it varies significantly between sports and V̇O₂max levels, highlighting the need for individualized assessment. Calculating EC₀ per athlete may improve energy cost estimations, enhance the metabolic power approach and allow for more accurate analysis of metabolic data based on positional tracking.

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References

Vanrenterghem J, Nedergaard NJ, Robinson MA, Drust B. Training load monitoring in team sports: a novel framework separating physiological and biomechanical load-adaptation pathways. Sports Med. 2017;47:2135–42.

di Prampero PE, Fusi S, Sepulcri L, Morin JB, Belli A, Antonutto G. Sprint running: a new energetic approach. J Exp Biol. 2005;208(14):2809–16.

Osgnach C, Poser S, Bernardini R, Rinaldo R, Di Prampero PE. Energy cost and metabolic power in elite soccer: a new match analysis approach. Med Sci Sports Exerc. 2010;42(1):170–8.

Polglaze T, Dawson B, Peeling P. Gold standard or fool’s gold? The efficacy of displacement variables as indicators of energy expenditure in team sports. Sports Med. 2016;46:657–70.

Polglaze T, Hoppe MW. Metabolic power: A step in the right direction for team sports. Int J Sports Physiol Perform. 2019;14(3):407–11.

Varley M, Aughey R. Acceleration Profiles in Elite Australian Soccer. Int J Sports Med. 2012;34(01):34–9.

Akenhead R, French D, Thompson KG, Hayes PR. The acceleration dependent validity and reliability of 10 Hz GPS. J Sci Med Sport. 2014;17(5):562–6.

Polglaze T, Dawson B, Buttfield A, Peeling P. Metabolic power and energy expenditure in an international men’s hockey tournament. J Sports Sci. 2018;36(2):140–8.

Venzke J, Weber H, Schlipsing M, Salmen J, Platen P. Metabolic power and energy expenditure in the German Bundesliga. Front Physiol. 2023;14:1142324.

Kempton T, Sirotic AC, Rampinini E, Coutts AJ. Metabolic power demands of rugby league match play. Int J Sports Physiol Perform. 2015;10(1):23–8.

Coutts AJ, Kempton T, Sullivan C, Bilsborough J, Cordy J, Rampinini E. Metabolic power and energetic costs of professional Australian Football match-play. J Sci Med Sport. 2015;18(2):219–24.

Minetti AE, Moia C, Roi GS, Susta D, Ferretti G. Energy cost of walking and running at extreme uphill and downhill slopes. J Appl Physiol. 2002;93(3):1039–46.

Di Prampero PE, Botter A, Osgnach C. The energy cost of sprint running and the role of metabolic power in setting top performances. Eur J Appl Physiol. 2015;115:451–69.

Di Prampero PE, Salvadego D, Fusi S, Grassi B. A simple method for assessing the energy cost of running during incremental tests. J Appl Physiol. 2009;107(4):1068–75.

Di Prampero PE, Capelli C, Pagliaro P, Antonutto G, Girardis M, Zamparo P, u. a. Energetics of best performances in middle-distance running. J Appl Physiol. 1993;74(5):2318–24.

Harris C, Debeliso M, Adams KJ. THE EFFECTS OF RUNNING SPEED ON THE METABOLIC AND MECHANICAL ENERGY COSTS OF RUNNING. J Exerc Physiol Online. 2003;6(3).

Padulo J, Buglione A, Larion A, Esposito F, Doria C, Čular D, u. a. Energy cost differences between marathon runners and soccer players: Constant versus shuttle running. Front Physiol. 2023;14:1159228.

Saunders PU, Pyne DB, Telford RD, Hawley JA. Factors affecting running economy in trained distance runners. Sports Med. 2004;34:465–85.

Barnes KR, Kilding AE. Running economy: measurement, norms, and determining factors. Sports Med - Open. 2015;1(1):8.

Michele RD, Merni F. The concurrent effects of strike pattern and ground-contact time on running economy. J Sci Med Sport. 2014;17(4):414–8.

Moore IS. Is There an Economical Running Technique? A Review of Modifiable Biomechanical Factors Affecting Running Economy. Sports Med. 2016;46(6):793–807.

Jones AM, Doust JH. A 1% treadmill grade most accurately reflects the energetic cost of outdoor running. J Sports Sci. 1996;14(4):321–7.

Vogler AJ, Rice AJ, Gore CJ. Validity and reliability of the Cortex MetaMax3B portable metabolic system. J Sports Sci. 2010;28(7):733–42.

Van Hooren B, Souren T, Bongers BC. Accuracy of respiratory gas variables, substrate, and energy use from 15 CPET systems during simulated and human exercise. Scand J Med Sci Sports. 2024;34(1):e14490.

McArdle WD, Katch FI, Katch VL. Exercise physiology: nutrition, energy, and human performance. Lippincott Williams & Wilkins; 2010.

Buglione A, Di Prampero PE. The energy cost of shuttle running. Eur J Appl Physiol. 2013;113:1535–43.

Stevens TGA, De Ruiter CJ, Van Maurik D, Van Lierop CJW, Savelsbergh GJP, Beek PJ. Measured and Estimated Energy Cost of Constant and Shuttle Running in Soccer Players. Med Sci Sports Exerc. 2015;47(6):1219–24.

Savoia C, Padulo J, Colli R, Marra E, McRobert A, Chester N, u. a. The validity of an updated metabolic power algorithm based upon di Prampero’s theoretical model in elite soccer players. Int J Environ Res Public Health. 2020;17(24):9554.

Piras A, Raffi M, Atmatzidis C, Merni F, Di Michele R. The Energy Cost of Running with the Ball in Soccer. Int J Sports Med. 2017;38(12):877–822.

Beneke R, Hütler M. The effect of training on running economy and performance in recreational athletes. Med Sci Sports Exerc. 2005;37(10):1794–9.

Iaia FM, Ermanno R, Bangsbo J. High-intensity training in football. Int J Sports Physiol Perform. 2009;4(3):291–306.

Sassi A, Stefanescu A, Bosio A, Riggio M, Rampinini E. The cost of running on natural grass and artificial turf surfaces. J Strength Cond Res. 2011;25(3):606–11.

Kerdok AE, Biewener AA, McMahon TA, Weyand PG, Herr HM. Energetics and mechanics of human running on surfaces of different stiffnesses. J Appl Physiol. 2002;92(2):469–78.

Hoogkamer W, Kipp S, Frank JH, Farina EM, Luo G, Kram R. A Comparison of the Energetic Cost of Running in Marathon Racing Shoes. Sports Med. 2018;48(4):1009–19.

Worobets J, Wannop JW, Tomaras E, Stefanyshyn D. Softer and more resilient running shoe cushioning properties enhance running economy. Footwear Sci. 2014;6(3):147–53.

Sinclair J, Mcgrath R, Brook O, Taylor PJ, Dillon S. Influence of footwear designed to boost energy return on running economy in comparison to a conventional running shoe. J Sports Sci. 2016;34(11):1094–8.

Frishberg BA. An analysis of overground and treadmill sprinting. Med Sci Sports Exerc. 1983;15(6):478–85.

Pugh LGCE. The influence of wind resistance in running and walking and the mechanical efficiency of work against horizontal or vertical forces. J Physiol. 1971;213(2):255–76.

González-Alonso J, Teller C, Andersen SL, Jensen FB, Hyldig T, Nielsen B. Influence of body temperature on the development of fatigue during prolonged exercise in the heat. J Appl Physiol. 1999;86(3):1032–9.

Kunz P, Engel FA, Holmberg HC, Sperlich B. A Meta-Comparison of the Effects of High-Intensity Interval Training to Those of Small-Sided Games and Other Training Protocols on Parameters Related to the Physiology and Performance of Youth Soccer Players. Sports Med - Open. 2019;5(1):7.

Teunissen LP, Grabowski A, Kram R. Effects of independently altering body weight and body mass on the metabolic cost of running. J Exp Biol. 2007;210(24):4418–27.

Lake MJ, Cavanagh PR. Six weeks of training does not change running mechanics or improve running economy. Med Sci Sports Exerc. 1996;28(7):860–9.

Pate RR, Macera CA, Bailey SP, Bartoli WP, Powell KE. Physiological, anthropometric, and training correlates of running economy. Med Sci Sports Exerc. 1992;24(10):1128–33.

Lucia A, Hoyos J, Pérez M, Santalla A, Chicharro JL. Inverse relationship between VO2max and economy/efficiency in world-class cyclists. Med Sci Sports Exerc. 2002;34(12):2079–84.

Costill DL, Fink WJ, Getchell LH, Ivy JL, Witzmann FA. Lipid metabolism in skeletal muscle of endurance-trained males and females. J Appl Physiol. 1979;47(4):787–91.

Helgerud J, Ingjer F, Strømme SB. Sex differences in performance-matched marathon runners. Eur J Appl Physiol. 1990;61(5):433–9.

Daniels J, Daniels N. Running economy of elite male and elite female runners. Med Sci Sports Exerc. 1992;24(4):483–9.

Black MI, Handsaker JC, Allen SJ, Forrester SE, Folland JP. Is There an Optimal Speed for Economical Running? Int J Sports Physiol Perform. 2018;13(1):75–81.

Margaria R, Cerretelli P, Aghemo P, Sassi G. Energy cost of running. J Appl Physiol. 1963;18(2):367–70.

di Prampero PE, Atchou G, Brückner JC, Moia C. The energetics of endurance running. Eur J Appl Physiol. 1986;55(3):259–66.

Helgerud J. Maximal oxygen uptake, anaerobic threshold and running economy in women and men with similar performances level in marathons. Eur J Appl Physiol. 1994;68:155–61.

Helgerud J, Støren Ø, Hoff J. Are there differences in running economy at different velocities for well-trained distance runners? Eur J Appl Physiol. 2010;108:1099–105.

Bassek M, Raabe D, Memmert D, Rein R. Analysis of motion characteristics and metabolic power in elite male handball players. J Sports Sci Med. 2023;22(2):310.

Venzke J, Schäfer R, Niederer D, Manchado C, Platen P. Metabolic power in the men’s European handball championship 2020. J Sports Sci. 2023;41(5):470–80.

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Posted

2025-03-24