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Biseasonal Changes in Aerobic Capacity and Sports Performance in Highly Trained Mountain Bike Cyclists Applying Elements of the Polarized Training Programme Cover

Biseasonal Changes in Aerobic Capacity and Sports Performance in Highly Trained Mountain Bike Cyclists Applying Elements of the Polarized Training Programme

By: Rafał Hebisz and  Paulina Hebisz  
Open Access
|Jul 2024

References

  1. Støren Ø., Bratland-Sanda S., Haave M., Helgerud J. (2012). Improved VO2max and time trial performance with more high aerobic intensity interval training and reduced tra-ining volume: a case study on an elite national cyclist. Journal of Strength and Conditioning Research 26(10), 2705-2711. DOI: 10.1519/JSC.0b013e318241deec
  2. Warnier G., Benoit N., Naslain D., Lambrecht S., Francaux M., Deldicque L. (2020). Effects of sprint interval training at different altitudes on cycling performance at sea-level. Sports 8(11), 148. DOI: 10.3390/sports8110148
  3. Guellich A., Seiler S. (2010). Lactate profile changes in relation to training characteristics in junior elite cyclists. International Journal of Sports Physiology and Performance 5(3), 316-327. DOI: 10.1123/ijspp.5.3.316
  4. Hawley J.A., Stepto N.K. (2001). Adaptations to training in endurance cyclists: implications for performance. Sports Medicine 31(7), 511-520. DOI: 10.2165/00007256-200131070-00006
  5. Solli G.S., Tønnessen E., Sandbakk Ø. (2019). Block vs. traditional periodization of HIT: two different paths to success for the world’s best cross-country skier. Frontiers in Physiology 10, 375. DOI: 10.3389/fphys.2019.00375
  6. Stöggl T., Sperlich B. (2014). Polarized training has greater impact on key endurance variables than threshold, high intensity, or high volume training. Frontiers in Physiology 5, 33. DOI: 10.3389/fphys.2014.00033
  7. Rønnestad B.R., Hansen J., Ellefsen S. (2014). Block periodization of high-intensity aerobic intervals provides superior training effects in trained cyclists. Scandinavian Journal of Medicine & Science in Sports 24(1), 34-42. DOI: 10.1111/j.1600-0838.2012.01485.x
  8. Neal C.M., Hunter A.M., Brennan L., O’Sullivan A., Hamilton D. et al. (2013). Six weeks of a polarized training-intensity distribution leads to greater physiological and performance adaptations than a threshold model in trained cyclists. Journal of Applied Physiology 114(4), 461-471. DOI: 10.1152/japplphysiol.00652.2012
  9. Rosenblat M.A., Perrotta A.S., Vicenzino B. (2019). Polarized vs. threshold training intensity distribution on endurance sport performance: A systematic review and meta-analysis of randomized controlled trials. Journal of Strength and Conditioning Research 33(12), 3491-3500. DOI: 10.1519/JSC.0000000000002618
  10. Hebisz P., Hebisz R., Zatoń M., Ochmann B., Mielnik N. (2016). Concomitant application of sprint and high-intensity interval training on maximal oxygen uptake and work output in well-trained cyclists. European Journal of Applied Physiology 116(8), 1495-1502. DOI: 10.1007/s00421-016-3405-z
  11. Hebisz P., Hebisz R., Drelak M. (2021). Comparison of aerobic capacity changes as a result of a polarized or block training program among trained mountain bike cyclists. International Journal of Environmental Research and Public Health 18(16), 8865. DOI: 10.3390/ijerph18168865
  12. Barnes K.R., Hopkins W.G., McGuigan M.R., Northuis M.E., Kilding A.E. (2013). Effects of resistance training on running economy and cross-country performance. Medicine & Science in Sports & Exercise 45(12), 2322-2331. DOI: 10.1249/MSS.0b013e31829af603
  13. De Pauw K., Roelands B., Cheung S.S., de Geus B., Rietjens G., Meeusen R. (2013). Guidelines to classify subject groups in sport-science research. International Journal of Sports Physiology and Performance 8(2), 111-122. DOI: 10.1123/ij-spp. 8.2.111
  14. Hebisz R., Hebisz P., Danek N., Michalik K., Zatoń M. (2022). Predicting changes in maximal oxygen uptake in response to polarized training (sprint interval training, high-intensity interval training, and endurance training) in mountain bike cyclists. Journal of Strength and Conditioning Research 36(6), 1726-1730. DOI: 10.1519/JSC.0000000000003619
  15. Pallarés J.G., Morán-Navarro R., Ortega J.F., Fernández-Elías V.E., Mora-Rodriguez R. (2016). Validity and reliability of ventilatory and blood lactate thresholds in well-trained cyclists. PLoS One 11(9), e0163389. DOI: 10.1371/journal.pone.0163389
  16. de Koning J.J., Noordhof D.A., Lucia A., Foster C. (2012). Factors affecting gross efficiency in cycling. International Journal of Sports Medicine 33(11), 880-885. DOI: 10.1055/s 0032-1306285
  17. Matomäki P., Linnamo V., Kyröläinen H. (2019). A comparison of methodological approaches to measuring cycling mechanical efficiency. Sports Medicine – Open 5(1), 23. DOI: 10.1186/s40798-019-0196-x
  18. Schaun G.Z. (2017). The maximal oxygen uptake verification phase: a light at the end of the tunnel? Sports Medicine – Open 3(1), 44. DOI: 10.1186/s40798-017-0112-1
  19. Hebisz P., Hebisz R., Jastrzębska A. (2021). An attempt to predict changes in heart rate variability in the training intensification process among cyclists. International Journal of Environmental Research and Public Health 18(14), 7636. DOI: 10.3390/ijerph18147636
  20. Astorino T.A., Allen R.P., Roberson D.W., Jurancich M. (2012). Effect of high-intensity interval training on cardio-vascular function, VO2max, and muscular force. Journal of Strength and Conditioning Research 26(1), 138-145. DOI: 10.1519/JSC.0b013e318218dd77
  21. McKenna M.J., Heigenhauser G.J., McKelvie R.S., Obminski G., MacDougall D., Jones L. (1997). Enhanced pulmonary and active skeletal muscle gas exchange during intense exercise after sprint training in men. The Journal of Physiology 501(3), 703-716. DOI: 10.1111/j.1469-7793.1997.703bm.x
  22. LoMauro A., Aliverti A. (2018). Sex differences in respiratory function. Breathe 14(2), 131-140. DOI: 10.1183/20734735.000318
  23. Impellizzeri F.M., Rampinini E., Sassi A., Mognoni P., Marcora S. (2005). Physiological correlates to off-road cycling performance. Journal of Sports Sciences 23(1), 41-47. DOI: 10.1080/02640410410001730061
  24. Płoszczyca K., Foltyn J., Goliniewski J., Krężelok J., Poprzęcki S. et al. (2019). Seasonal changes in gross efficiency and aerobic capacity in well-trained road cyclists. Isokinetics and Exercise Science 27(3), 193-202. DOI: 10.3233/IES 192115
  25. Sassi A., Impellizzeri F.M., Morelli A., Menaspà P., Rampinini E. (2008). Seasonal changes in aerobic fitness indices in elite cyclists. Applied Physiology, Nutrition, and Metabolism 33(4), 735-742. DOI: 10.1139/H08-046
  26. Paton C.D., Hopkins W.G. (2005). Seasonal changes in power of competitive cyclists: implications for monitoring performance. Journal of Science and Medicine in Sport 8(4), 375-381. DOI: 10.1016/s1440-2440(05)80052-0
  27. Sial S., Coggan A.R., Hickner R.C., Klein S. (1998). Training-induced alterations in fat and carbohydrate metabolism during exercise in elderly subjects. American Journal of Physiology 274(5), 785-790. DOI: 10.1152/ajpen-do. 1998.274.5.E785
  28. Bircher S., Knechtle B. (2004). Relationship between fat oxidation and lactate threshold in athletes and obese women and men. Journal of Sports Science and Medicine 3(3), 174-181.
  29. Ramos-Jiménez A., Hernández-Torres R.P., Torres-Durán P.V., Romero-Gonzalez J., Mascher D. et al. (2008). The respiratory exchange ratio is associated with fitness indicators both in trained and untrained men: a possible application for people with reduced exercise tolerance. Clinical Medicine: Circulatory, Respiratory and Pulmonary Medicine 2, 1-9. DOI: 10.4137/ccrpm.s449
  30. Vikmoen O., Ellefsen S., Trøen Ø., Hollan I., Hanestadhaugen M. et al. (2016). Strength training improves cycling performance, fractional utilization of VO2max and cycling economy in female cyclists. Scandinavian Journal of Medicine & Science in Sports 26(4), 384-396. DOI: 10.1111/sms.12468
  31. Rabinowitz J.D., Enerbäck S. (2020). Lactate: the ugly duckling of energy metabolism. Nature Metabolism 2(7), 566-571. DOI: 10.1038/s42255-020-0243-4
  32. Evertsen F., Medbø J.I., Bonen A. (2001). Effect of training intensity on muscle lactate transporters and lactate threshold of cross-country skiers. Acta Physiologica Scandinavica 173(2), 195-205. DOI: 10.1046/j.1365-201X.2001.00871.x
  33. Juel C., Holten M.K., Dela F. (2004). Effects of strength training on muscle lactate release and MCT1 and MCT4 content in healthy and type 2 diabetic humans. The Journal of Physiology 556(1), 297-304. DOI: 10.1113/jphysiol.2003.058222
  34. Edge J., Bishop D., Goodman C. (2006). The effects of training intensity on muscle buffer capacity in females. European Journal of Applied Physiology 96(1), 97-105. DOI: 10.1007/s00421-005-0068-6
  35. Hopkins W.G., Hawley J.A., Burke L.M. (1999). Design and analysis of research on sport performance enhancement. Medicine & Science in Sports & Exercise 31(3), 472-485. DOI: 10.1097/00005768-199903000-00018
  36. Granier C., Abbiss C.R., Aubry A., Vauchez Y., Dorel S. et al. (2018). Power output and pacing during international cross-country mountain bike cycling. International Journal of Sports Physiology and Performance 13(9), 1243-1249. DOI: 10.1123/ijspp.2017-0516
  37. Arriel R.A., Souza H.L., Sasaki J.E., Marocolo M. (2022). Current perspectives of cross-country mountain biking: physiological and mechanical aspects, evolution of bikes, accidents and injuries. International Journal of Environmental Research and Public Health 19(19), 12552. DOI: 10.3390/ijerph191912552
  38. Muñoz I., Cejuela R., Seiler S., Larumbe E., Esteve-Lanao J. (2014). Training-intensity distribution during an ironman season: relationship with competition performance. International Journal of Sports Physiology and Performance 9(2), 332-339. DOI: 10.1123/ijspp.2012-0352
  39. Muñoz I., Seiler S., Bautista J., España J., Larumbe E., Esteve-Lanao J. (2014). Does polarized training improve performance in recreational runners? International Journal of Sports Physiology and Performance 9(2), 265-272. DOI: 10.1123/ijspp.2012-0350 Submitted: 13 June, 2024 Accepted: 23 July, 2024
DOI: https://doi.org/10.2478/pjst-2024-0010 | Journal eISSN: 2082-8799 | Journal ISSN: 1899-1998
Language: English
Page range: 17 - 25
Submitted on: Jun 13, 2024
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Accepted on: Jul 23, 2024
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Published on: Jul 29, 2024
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Rafał Hebisz, Paulina Hebisz, published by University of Physical Education in Warsaw
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.