Journal of Science and Medicine in Sport
Volume 13, Issue 3 , Pages 340-347 , May 2010

Physiological attributes of triathletes

  • R. Suriano

      Affiliations

    • School of Human Movement and Exercise Science, The University of Western Australia, Australia
    • Corresponding Author InformationCorresponding author.
  • ,
  • D. Bishop

      Affiliations

    • School of Human Movement and Exercise Science, The University of Western Australia, Australia
    • Facoltà di Scienze Motorie, Università degli Studi di, Italy

Received 13 March 2007 ,Revised 26 March 2009 ,Accepted 27 March 2009.

References 

  1. Coyle EF. Integration of the physiological factors determining endurance performance ability. Exerc Sport Sci Rev. 1995;23:25–63
  2. Costill DL, Thomason H, Roberts E. Fractional utilization of the aerobic capacity during distance running. Med Sci Sports Exerc. 1973;5:248–252
  3. Coyle EF, Coggan AR, Hopper MK, Walters TJ. Determinants of endurance in well-trained cyclists. J Appl Physiol. 1988;64:2622–2630
  4. O’Toole ML, Douglas PS. Applied physiology of triathlon. Sports Med. 1995;19:251–267
  5. Sleivert GG, Rowlands DS. Physical and physiological factors associated with success in the triathlon. Sports Med. 1996;22:8–18
  6. Farrell PA, Wilmore JH, Coyle EF, Billing JE, Costill DL. Plasma lactate accumulation and distance running performance. Med Sci Sports Exerc. 1979;11:338–344
  7. Saltin B, Astrand PO. Maximal oxygen uptake in athletes. J Appl Physiol. 1967;23:353–358
  8. Tolfrey K, Barker A, Thom JM, Morse CI, Narici MV, Batterham AM. Scaling of maximal oxygen uptake by lower leg muscle volume in boys and men. J Appl Physiol. 2006;100:1851–1856
  9. Chatard JC, Collomp C, Maglischo E, Maglischo C. Swimming skill and stroking characteristics of front crawl swimmers. Int J Sports Med. 1990;11:156–161
  10. Nomura T. The influence of training and age on during swimming in Japanese elite age group and Olympic swimmers. In:  Hollander AP,  Huijing PA,  De Groot G editor. Biomechanics and medicine in swimming. Champaign, IL: Human Kinetics; 1983;p. 251–257
  11. Costill DL, Kovaleski J, Porter D, Kirwan J, Fielding R, King D. Energy expenditure during front crawl swimming. Int J Sports Med. 1985;6:266–270
  12. Ribeiro JP, Cadavid E, Baena J, Monsalvete E, Barna A, De Rose EH. Metabolic predictors of middle-distance swimming performance. Br J Sports Med. 1990;24:196–200
  13. Sleivert GG, Wenger HA. Physiological predictors of short-course triathlon performance. Med Sci Sports Exerc. 1993;25:871–876
  14. Roels B, Schmitt L, Libicz S, Bentley D, Richalet J-P, Millet G. Specificity of and the ventilatory threshold in free swimming and cycle ergometry: comparison between triathletes and swimmers. Br J Sports Med. 2003;39:965–968
  15. Millet GP, Candau RB, Barbier B, Busso T, Rouillon JD, Chatard JC. Modelling the transfers of training effects on performance in elite triathletes. Int J Sports Med. 2002;23:55–63
  16. Lucia A, Joyos H, Chicharro JL. Physiological response to professional road cycling: climbers vs. time trialists. Int J Sports Med. 2000;21:505–512
  17. Padilla S, Mujika I, Cuesta G, Goiriena JL. Level ground and uphill cycling ability in professional road cycling. Med Sci Sports Exerc. 1999;31:878–885
  18. Bentley DJ, McNaughton LR, Thompson D, Vleck VE, Batterham AM. Peak power output, the lactate threshold, and time trial performance in cyclists. Med Sci Sports Exerc. 2001;33:2077–2081
  19. Dill DB. Oxygen used in horizontal and grade walking and running on the treadmill. J Appl Physiol. 1965;20:19–22
  20. Costill DL. The relationship between selected physiological variables and distance running performance. J Sports Med Phys Fitness. 1967;7:61–66
  21. Billat VL, Demarle A, Slawinski J, Paiva M, Koralsztein JP. Physical and training characteristics of top-class marathon runners. Med Sci Sports Exerc. 2001;33:2089–2097
  22. Noakes TD, Myburgh KH, Schall R. Peak treadmill running velocity during the VO2 max test predicts running performance. J Sports Sci. 1990;8:35–45
  23. Sjodin B, Svedenhag J. Applied physiology of marathon running. Sports Med. 1985;2:83–99
  24. Deitrick RW. Physiological responses of typical versus heavy weight triathletes to treadmill and bicycle exercise. J Sports Med Phys Fitness. 1991;31:367–375
  25. Bentley DJ, Wilson GJ, Davie AJ, Zhou S. Correlations between peak power output, muscular strength and cycle time trial performance in triathletes. J Sports Med Phys Fitness. 1998;38:201–207
  26. Bunc V, Heller J, Horcic J, Novotny J. Physiological profile of best Czech male and female young triathletes. J Sports Med Phys Fitness. 1996;36:265–270
  27. Butts NK, Henry BA, McLean D. Correlations between and performance times of recreational triathletes. J Sports Med Phys Fitness. 1991;31:339–344
  28. Dengel DR, Flynn MG, Costill DL, Kirwan JP. Determinants of success during triathlon competition. Res Q Exerc Sport. 1989;60:234–238
  29. De Vito G, Bernardi M, Sproviero E, Figura F. Decrease of endurance performance during Olympic triathlon. Int J Sports Med. 1995;16:24–28
  30. Hue O, Le Gallais D, Chollet D, Prefaut C. Ventilatory threshold and maximal oxygen uptake in present triathletes. Can J Appl Physiol. 2000;25:102–113
  31. Loftin M, Warren BL, Zingraf S, Brandon JE, Scully B. Peak physiological function and performance of recreational triathletes. J Sports Med Phys Fitness. 1988;28:330–335
  32. Millet GP, Dreano P, Bentley DJ. Physiological characteristics of elite short- and long-distance triathletes. Eur J Appl Physiol. 2003;88:427–430
  33. Millet GP, Bentley DJ. The physiological responses to running after cycling in elite junior and senior triathletes. Int J Sports Med. 2004;25:191–197
  34. Schabort EJ, Killian SC, St Clair Gibson A, Hawley JA, Noakes TD. Prediction of triathlon race time from laboratory testing in national triathletes. Med Sci Sports Exerc. 2000;32:844–849
  35. Schneider DA, Lacroix KA, Atkinson GR, Troped PJ, Pollack J. Ventilatory threshold and maximal oxygen uptake during cycling and running in triathletes. Med Sci Sports Exerc. 1990;22:257–264
  36. Basset FA, Boulay MR. Specificity of treadmill and cycle ergometer tests in triathletes, runners and cyclists. Eur J Appl Physiol. 2000;81:214–221
  37. Vleck VE, Burgi A, Bentley DJ. The consequences of swim, cycle and run performance on overall result in elite Olympic distance triathlon. Int J Sports Med. 2006;27:43–48
  38. Lucia A, Hoyos J, Perez M, Santalla A, Chicharro JL. Inverse relationship between and economy/efficiency in world-class cyclists. Med Sci Sports Exerc. 2002;2002:2079–2084
  39. Zinkgraf SA, Jones CJ, Warren B, Krebs PS. An empirical investigation of triathlon performance. J Sports Med Phys Fitness. 1986;26:350–356
  40. Laurenson NM, Fulcher KY, Korkia P. Physiological characteristics of elite and club level triathletes during running. Int J Sports Med. 1993;14:455–459
  41. Lucia A, Hoyos J, Perez M, Chicharro JL. Heart rate and performance parameters in elite cyclists: a longitudinal study. Med Sci Sports Exerc. 2000;32:1777–1782
  42. Kohrt WM, Morgan DW, Bates B, Skinner JS. Physiological responses of triathletes to maximal swimming, cycling, and running. Med Sci Sports Exerc. 1987;19:51–55
  43. Kohrt WM, O’Connor JS, Skinner JS. Longitudinal assessment of responses by triathletes to swimming, cycling, and running. Med Sci Sports Exerc. 1989;21:569–575
  44. Astrand PO, Saltin B. Maximal oxygen uptake and heart rate in various types of muscular activity. J Appl Physiol. 1961;16:977–981
  45. Lewis SF. Cardiovascular responses to exercise as functions of absolute and relative work load. J Appl Physiol. 1983;54:1314–1323
  46. Vercruyssen F, Brisswalter J, Hausswirth C, Bernard T, Bernard O, Vallier J-M. Influence of cycling cadence on subsequent running performance in triathletes. Med Sci Sports Exerc. 2002;34:530–536
  47. Bishop D, Jenkins DG, Mackinnon LT. The effect of stage duration on the calculation of peak VO2 during cycle ergometry. J Sci Med Sport. 1998;1:171–176
  48. McNaughton L, Roberts S, Bentley DJ. The relationship among peak power output, lactate threshold, and short-distance cycling performance: effects of incremental exercise test design. J Strength Cond Res. 2006;20:157–161
  49. Zhou S, Robson SJ, King MJ, Davie AJ. Correlations between short-course triathlon performance and physiological variables determined in laboratory cycle and treadmill tests. J Sports Med Phys Fitness. 1997;37:122–130
  50. Mujika I, Padilla S. Physiological and performance characteristics of male professional road cyclists. Sports Med. 2001;31:479–487
  51. Costill DL. Physiology of marathon running. J Am Med Assoc. 1972;221:1024–1029
  52. Brooks GA. Anaerobic threshold: review of the concept and directions for future research. Med Sci Sports Exerc. 1985;17:22–31
  53. Bishop D, Jenkins DG, Mackinnon LT. The relationship between plasma lactate parameters, Wpeak and 1-h cycling performance in women. Med Sci Sports Exerc. 1998;30:1270–1275
  54. Bishop D, Jenkins DG, McEniery M, Carey MF. Relationship between plasma lactate parameters and muscle characteristics in female cyclists. Med Sci Sports Exerc. 2000;32:1088–1093
  55. Coyle EF, Feltner ME, Kautz SA, Hamilton MT, Montain SJ, Baylor AM, et al. Physiological and biomechanical factors associated with elite endurance cycling performance. Med Sci Sports Exerc. 1991;23:93–107
  56. Davis JA, Frank MH, Whipp BJ, Wasserman K. Anaerobic threshold alterations caused by endurance training in middle-aged men. J Appl Physiol. 1979;46:1039–1046
  57. Beaver WL, Wasserman K, Whipp BJ. A new method for detecting anaerobic threshold by gas exchange. J Appl Physiol. 1986;60:2020–2027
  58. Hoogeveen AR, Schep G, Hoogsteen J. The ventilatory threshold, heart rate, and endurance performance: relationships in elite cyclists. Int J Sports Med. 1999;20:114–117
  59. Simon J, Young JL, Blood DK, Segal KR, Case RB, Gutin B. Plasma lactate and ventilation thresholds in trained and untrained cyclists. J Appl Physiol. 1986;60:777–781
  60. Laursen PB, Shing CM, Tennant SC, Prentice CM, Jenkins DG. A comparison of the cycling performance of cyclists and triathletes. J Sports Sci. 2003;21:411–418
  61. O’Toole ML, Douglas PS, Hiller WDB. Lactate, oxygen uptake, and cycling performance in triathletes. Int J Sports Med. 1989;10:413–418
  62. Hue O. Prediction of drafted-triathlon race time from submaximal laboratory testing in elite triathletes. Can J Appl Physiol. 2003;28:547–560
  63. Boussana A, Matecki S, Galy O, Hue O, Ramonatxo M, Le Gallais D. The effect of exercise modality on respiratory muscle performance in triathletes. Med Sci Sports Exerc. 2001;33:2036–2043
  64. Withers RT, Sherman WM, Miller JM, Costill DL. Specificity of the anaerobic threshold in endurance trained cyclists and runners. Eur J Appl Physiol Occup Physiol. 1981;47:93–104
  65. Kreider RB, Cundiff DE, Hammett JB, Cortes CW, Williams KW. Cardiovascular and thermal responses of triathlon performance. Med Sci Sports Exerc. 1988;20:385–390
  66. Albrecht TJ, Foster VL, Dickinson AL, De Bever JM. Triathletes: exercise parameters measured during bicycle, swim bench and treadmill testing. Med Sci Sports Exerc. 1989;18:S86
  67. Danner T, Plowman SA. Running economy following an intense cycling bout in female duathletes and triathletes. Women Sport Phys Act J. 1995;4:29–39
  68. Miura H, Kitagawa K, Ishiko T. Economy during a simulated laboratory test triathlon is highly related to Olympic distance triathlon. Int J Sports Med. 1997;18:276–280
  69. Rowbottom DG, Keast D, Garcia-Webb P, Morton A. Training adaptation and biological changes among well-trained triathletes. Med Sci Sports Exerc. 1997;29:1233–1239
  70. Hue O, Le Gallais D, Boussana A. Catecholamine, blood lactate and ventilatory responses to multi-cycle-run blocks. Med Sci Sports Exerc. 2000;32:1582–1586
  71. Bentley DJ, McNaughton LR, Lamyman R, Roberts SP. The effects of prior incremental cycle exercise on the physiological responses during incremental running to exhaustion: relevance for sprint triathlon performance. J Sports Sci. 2003;21:29–38
  72. Peeling PD, Bishop DJ, Landers GJ. The effect of swimming intensity on subsequent cycling and overall triathlon performance. Br J Sports Med. 2005;39:960–964
  73. Tew GA. The effect of cycling cadence on subsequent 10km running performance in well-trained triathletes. J Sports Sci Med. 2005;4:342–353
  74. Van Schuylenbergh R, Eynde BV, Hespel P. Prediction of sprint triathlon performance from laboratory tests. Eur J Appl Physiol. 2004;91:94–99
  75. Vercruyssen F, Suriano R, Bishop D, Brisswalter J. Cadence selection affects metabolic responses during cycling and subsequent running time to fatigue. Br J Sports Med. 2005;39:267–272
  76. Brisswalter J, Hausswirth C, Smith D, Vercruyssen F, Vallier JM. Energetically optimal cadence vs. freely-chosen cadence during cycling: effect of exercise duration. Int J Sports Med. 2000;21:60–64
  77. Hausswirth C, Vallier JM, Lehenaff D, Brisswalter J, Smith D, Millet G, et al. Effect of two drafting modalities in cycling on running performance. Med Sci Sports Exerc. 2001;33:485–492
  78. Bernard T, Vercruyssen F, Grego F, Hausswirth C, Lepers R, Vallier JM, et al. Effect of cycling cadence on subsequent 3-km running performance in well trained triathletes. Br J Sports Med. 2003;37:154–158
  79. Bentley DJ, Libicz S, Jougla A, Coste O, Manetta J, Chamari K, et al. The effects of exercise intensity or drafting during swimming on subsequent cycling performance in triathletes. J Sci Med Sport. 2007;10:234–243
  80. Whyte G, Lumley S, George K, Gates P, Sharma S, Prasad K, et al. Physiological profile and predictors of cycling performance in ultra-endurance triathletes. J Sports Med Phys Fitness. 2000;40(June (2)):103–109

PII: S1440-2440(09)00097-8

doi: 10.1016/j.jsams.2009.03.008

Journal of Science and Medicine in Sport
Volume 13, Issue 3 , Pages 340-347 , May 2010