SportLogia
Vol. 16, Issue 1, december 2020.

 

PARAMETERS OF FUNCTIONAL  ABILITIES IN RUNNING – RESEARCH REVIEW


Radosav Đukić1, Goran Bošnjak2, Vladimir Jakovljević2 &  Gorana Tešanović2
1Spartamedic, Austria
2University of Banja Luka, Faculty of physical education and sport, Bosnia and Herzegovina

 

REVIEW SCIENTIFIC PAPER
doi:10.5550/sgia.201601.en.dbjt
UDC: 796.422.012.1

 

 

Abstract

Running as an athletic discipline requires a high level of endurance and speed endurance, which is directly related to the cardiovascular and respiratory systems, ie the ability of an athlete's body to withstand loads, and the following are listed as relevant factors for running success: anaerobic strength and maximum O2 consumption, lactic acid concentration and oxygen deficiency, ability to withstand stress, high ability to concentrate and its retention over longer periods of  time. There is a lot of research that has studied the parameters of functional abilities in an attempt to find the most effective way to improve them, and since there are many similar and different data on this topic, this paper has been done to classify the available papsers by domestic and foreign authors which would lead to conclusions applicable both in practice and for further research.

For the purposes of this research, original scientific papers have been analyzed that dealt with functional abilities as success factors in short, middle and long distance running and the impact of training on functional abilities, found in electronic databases - Medline, PubMed, Researchgate, Web of Science and Google Scholar. The research used in this review monitored transversely the values ​​of submaximal and maximal oxygen consumption, energy systems, heart rate values, pulmonary ventilation, blood lactate concentration, as well as their changes after longitudinal implementation of experimental protocols and training processes. Since the collected research had too few respondents from different populations with a small number of elite runners, and they did not have enough information about many years of experience, level of sports form, race categories, and descriptions of training and methods, obtaining empirical information based on evidence was limited, as well as reaching valid conclusions. Accordingly, there is a need for a more systematic approach to research and implementation of complex studies with a sufficient number of runners of all ages, both sexes of the elite level, and cooperation of academic researchers, clubs and athletes to enable studies that would provide significant statistics, analysis and interpretation. The results identified in this review provide a starting point for future research that identifies and quantifies predictors of functional performance as factors of short, middle, and long distance running success

.


Key words: maximum oxygen consumption, lactate concentration, short distances, middle distances, long distances, training process.

FULL TEXT (.pdf)


References

Allen, W., Seals, D., Hurley, B., Ehsani, A., & Hagberg, J. (1985). Lactate threshold and distance-running performance in young and older endurance athletes. Journal of applied physiology, 58(4), 1281-1284.
https://doi.org/10.1152/jappl.1985.58.4.1281[CrossRef]
PMid:3988681

Barstow, T.J., R. Casaburi & K. Wasserman (1993). O2 uptake kinetics and the O2 deficit as related to exercise intensity and blood lactate. Journal of Applied Physiology, 75, 755-762
https://doi.org/10.1152/jappl.1993.75.2.755[CrossRef]
PMid:8226479

Berstajn, B. (1966). Modeling school structures. London, GBR.
Bilat, V., Lepetre, P., Heugas, A., Laurence, M., Salim, D., & Koralsztein, J. (2003). Training and bioenergetic characteristics in elite male and female Kenyan runners. Medicine and science in sports and exercise, 35(2), 297-304.
https://doi.org/10.1249/01.MSS.0000053556.59992.A9[CrossRef]
PMid:12569219

Boileau, R., Mayhew, J., Riner, W., & Lussier, L. (1982). Physiological characteristics of elite middle and long distance runners. Canadian journal of applied sport sciences, 7(3), 167-172.

Bolger , R., Lyons, M., Harrison, A. J., & Kenny, I.C. (2015). Sprinting performance and resistance-based training interventions: a systematic review. J Strength Cond Res. 29(4).1146-1156. https://doi.org/10.1519/JSC.0000000000000720[CrossRef]
PMid:25268287

Bompa, T. (1999). Periodization: Theory and methodology of training. Champaign, IL: Human Kinetics.

Bompa, T. O. (2006). Periodizacija - teorija i metodologija treninga. Gopal, Zagreb.

Bowerman, J., Freeman, W. i Gambetta, V. (1999). Atletika. Gopal, Zagreb.

Brisswalter, J., & Legros, P. (1994). Daily stability in energy cost of running, respiratory parameters and stride rate among well-trained middle distance runners. International journal of sports medicine, 15(5), 238-241.
https://doi.org/10.1055/s-2007-1021053[CrossRef]
PMid:7960317

Burke, J., Thayer, R., & Belcamino, M. (1994). Comparison of effects of two interval-training programmes on lactate ande ventilatory thresholds. Br J Sports Med, (28), 18-21.
https://doi.org/10.1136/bjsm.28.1.18[CrossRef]
PMid:8044486 PMCid:PMC1332151

Carter, J. E. L., & Heath, B. H. (1990). Somatotyping -Development and application. Cambridge, United Kingdom: Cambridge University Press.

Cavanagh, P., & Williams, K. (1982). The effect of stride length variation on oxygen uptake during distance running. Medicine and science in sports and exercise, 14(1), 30-35.
https://doi.org/10.1249/00005768-198201000-00006[CrossRef]
PMid:7070254

Coetzer, P., Noakes, T., Sanders, B., Lambert, M., Bosch, A., Wiggins, T., & Dennis, S. (1993). Superior fatigue resistance of elite black South African distance runners. Journal of applied physiology, 75(4), 1822-1827.
https://doi.org/10.1152/jappl.1993.75.4.1822[CrossRef]
PMid:8282637

Conley, D., & Krahenbuhl, G. (1980). Running economy and distance running performance of highly trained athletes. Medicine and science in sports and exercise, 12(5), 357-360.
https://doi.org/10.1249/00005768-198025000-00010[CrossRef]
PMid:7453514

Cormie, P., M. R. McGuigan, et al. (2010). "Adaptations in athletic performance after ballistic power versus strength training." Med Sci Sports Exerc 42(8): 1582- 1598.
https://doi.org/10.1249/MSS.0b013e3181d2013a[CrossRef]
PMid:20139780

Costill, D.L., et al. 1985. Metabolic characteristics of skeletal muscle during detraining from competitive swimming. Medicine & Science in Sport & Exercise, 17(3),339-343.
https://doi.org/10.1249/00005768-198506000-00007[CrossRef]

Craig, I., & Morgan, D. (1998). Relationship between 800-m running performance and accumulated oxygen deficit in middle-distance runners. Medicine and science in sports and exercise, 30(11), 1631-1636.
https://doi.org/10.1097/00005768-199811000-00012[CrossRef]
PMid:9813877

Čoh, M. (1992). Atletika. Ljubljana, Fakultet za sport.
Daniels, J., & Daniels, N. (1992). Running economy of elite male and elite female runners. Medicine and science in sports and exercise, 24(4), 483-489.
https://doi.org/10.1249/00005768-199204000-00015[CrossRef]
PMid:1560747

Daniels, J., & Oldrige, N. (1971). Changes in oxygen consumption of young boys during growth and running training. Medicine and science in sports, 3(4), 161-165.
https://doi.org/10.1249/00005768-197100340-00004[CrossRef]
PMid:5173386

Daniels, J., Oldridge, N., Nagle, F., & White, B. (1978). Differences and changes in VO2 among young runners 10 to 18 years of age. Medicine and science in sports, 10(3), 200-203.

Davies, C., & Thompson, M. (1979). Aerobic performance of female marathon and male ultramarathon athletes. European journal of applied physiology and occupational physiology, 41(4), 233-245.
https://doi.org/10.1007/BF00429740[CrossRef]
PMid:499187

Duffield, R., Dawson, B., & Goodman, C. (2005). Energy system contribution to 1500- and 3000-metre track running. Journal of sports sciences, 23(10), 993-1002.
https://doi.org/10.1080/02640410400021963[CrossRef]
PMid:16194976

Farrell, P.A., Wilmore J.H., Coyle, F.F., Billing, J.E., Costill, D.L. (1979). Plasma lactate accumulation and distance running performance. Med. Sci. Sports 11: 338-344.
https://doi.org/10.1249/00005768-197901140-00005[CrossRef]

Fletcher, J., Esau, S., & Macintosh, B. (2009). Economy of running: Beyond the measurement of oxygen uptake. Journal of applied physiology, 107(6), 1918-1922. doi:10.1152/japplphysiol.00307.2009
https://doi.org/10.1152/japplphysiol.00307.2009[CrossRef]
PMid:19833811

Foster, C., Costill, D., Daniels, J., & Fink, W. (1978). Skeletal muscle enzyme activity, fiber composition and VO2 max in relation to distance running performance. European journal of applied physiology and occupational physiology, 39(2), 73-80.
https://doi.org/10.1007/BF00421711[CrossRef]
PMid:689010

Franch, J., Madsen, K., Djurhuus, M., & Pedersen, P. (1998). Improved running economy following intensified training correlates with reduced ventilatory demands. Medicine and science in sports and exercise, 30(8), 1250-1256.
https://doi.org/10.1097/00005768-199808000-00011[CrossRef]
PMid:9710865

Fratrić, F. (2012). Osnove teorije i metodike sportskog treninga. Retrived from http://www.senta-zentasport.rs/old/reci_nauke/teorija-sportskog-treninga-fratric/osnove-teorije-i-metodike-sportskog-treninga-skripta.pdf

Gasiin, P., Costill, D., Lawson, D., Krzeminski, K., & McConell, G. (1995). Accumulated oxygen deficit during supramaximal all-out and constant intensity exercise. Medicine and science in sports and exercise, 27(2), 255-263.
https://doi.org/10.1249/00005768-199502000-00016[CrossRef]

Helgerud, J. (1994). Maximal oxygen uptake, anaerobic threshold and running economy in women and men with similar performances level in marathons. European journal of applied physiology and occupational physiology, 68(2), 155-161.
https://doi.org/10.1007/BF00244029[CrossRef]
PMid:8194545

Helgerud, J., Høydal, K., Wang, E., Karlsen, T., Berg, P., Bjerkaas, M., . . . Hoff, J. (2007). Aerobic high-intensity intervals improve VO2max more than moderate training. Medicine and science in sports and exercise, 39(4), 665-671.
https://doi.org/10.1249/mss.0b013e3180304570[CrossRef]
PMid:17414804

Hollmann, W., Hettinger, T. (2000). Sportmedizin. Grundlarge fur Arbeit, Training und Preventivmedizin. Stutgart, New York: Schattauer Verlag.

Idrizović, K. (2013). Razlike u dinamici razvoja motoričkih sposobnosti dječaka i djevojčica. In Findak, V. (Eds.). Zbornik radova 22. Ljetna škola kineziologa Republike Hrvatske, Organizacijski oblici rada u područjima edukacije, sporta, sportske rekreacije i kineziterapije, (pp. 444-449). Zagreb: Hrvatski kineziološki savez.

Jakovljević, D., & Batričević, D. (2008). Efekti modela eksplozivne snage na razvoj motoričkih i funkcionalnih sposobnosti učenika. Sport Science, 1(1). 30-33.

Krsmanović, R. (1987). Diskriminativna analiza funkcionalnih sposobnosti kardiovaskularnog sistema, motoričkih sposobnosti i rezultata trčanja na različitim dionicama. In Berković, L. (Ed.), Zbornik radova III kongresa pedagoga fizičke kulture Jugoslavije, 155-157. Novi Sad: RS.

Kurelić, N., Momirović, K., Stojanović, M., Šturm, J., Radojević, Đ., & Viskić-Štalec, N. (1975). Struktura i razvoj morfoloških i motoričkih dimenzija omladine [The structure and development of the morphological and motor dimensions of the young]. Beograd, RS: Institut za naučna istraživanja Fakulteta za fizičko vaspitanje.

Lacour, J. R.; Bouvat, E.; Barthélémy J. C. (1990). Post-competition blood lactate concentrations as indicators of anaerobic energy expenditure during 400-m and 800-m races. European Journal of Applied Physiology and Occupational Physiology, (61), 172-176
https://doi.org/10.1007/BF00357594[CrossRef]
PMid:2282899

Lourenço, T.F., Barreto Martins, L.E., Tessutti, L.S., Brenzikofer, R., & Macedo, D.V. (2011). Reproducibility of an incremental treadmill VO(2)max test with gas exchange analysis for runners. Journal of strength and conditioning research, 25(7), 1994-1999.
https://doi.org/10.1519/JSC.0b013e3181e501d6[CrossRef]
PMid:21487313

Malacko, J. i Rađo, I. (2004). Tehnologija sporta i sportskog treninga. Sarajevo.

Malousaris, G. G., Bergeles, N. K., Barzouka, K. G., Bayios, I. A., Nassis, G. P., & Koskolou, M. D. (2008). Somatotype, size and body composition of competitive female volleyball players. Journal of Science and Medicine in Sport, 11, 337-344.
https://doi.org/10.1016/j.jsams.2006.11.008[CrossRef]
PMid:17697797

Mayhew, J. (1977). Oxygen cost and energy expenditure of running in trained runners. British journal of sports medicine, 11(3), 116-121.
https://doi.org/10.1136/bjsm.11.3.116[CrossRef]
PMid:922272 PMCid:PMC1859586

McArdle, W. D., & Katch, V. I. (1991). Exercise physiology: Energy, nutrition, and human performance. 2nd ed. Philadelphia, PA: Lea & Febiger.
https://doi.org/10.1249/00005768-199112000-00013[CrossRef]

McConnell, T., & Clark, B. (1988). Treadmill protocols for determination of maximum oxygen uptake in runners. British journal of sports medicine, 22(1), 3-5.
https://doi.org/10.1136/bjsm.22.1.3[CrossRef]
PMid:3370399 PMCid:PMC1478508

Morgan, D.W., Baldini, F.D., Martin, P.E. in Kohrt, W.M. (1989). Ten kilometer performance and predicted velocity at VO2max among well-trained male runners. Medicine and Scence in Sports and Exercise, 21(1), 78-83.
https://doi.org/10.1249/00005768-198902000-00014[CrossRef]
PMid:2927305

Mueller, E. (1999). Science and Elite Sport. London: E&FN Spon.
https://doi.org/10.4324/9780203984956[CrossRef]

Nagasawa, T. (2013). Slower recovery rate of muscle oxygenation after sprint exercise in long-distance runners compared with that in sprinters and healthy controls. Journal of strength and conditioning research, 27(12), 3360-3366.
https://doi.org/10.1519/JSC.0b013e3182908fcc[CrossRef]
PMid:23604001

Nummela, A., & Rusko, H. (1995). Time course of anaerobic and aerobic energy expenditure during short-term exhaustive running in athletes. International journal of sports medicine, 16(8), 522-527.
https://doi.org/10.1055/s-2007-973048[CrossRef]
PMid:8776206

Ohkuwa, T.,Kato, Y., Katsumata, K.,Nakao, T.& Miyamura, M. (1984). Blood lactate and glycerol after 400-m and 3,000-m runs in sprint and long distance runners. European Journal of Applied Physiology and Occupational Physiology, (53), 213-218
https://doi.org/10.1007/BF00776592[CrossRef]
PMid:6542855

Pate, R., Macera, C., Bailey, S., Bartoli, W., & Powell, K. (1992). Physiological, anthropometric, and training correlates of running economy. Medicine and science in sports and exercise, 24(10), 1128-1133.
https://doi.org/10.1249/00005768-199210000-00010[CrossRef]
PMid:1435160

Peronnet, F., Thibault, G., Rhodes, E.C., McKenzie D.C. (1987). Correlation between ventilatory threshold and endurance capability in marathon runners. Med. Sci. Sports Exerc. 19: 610-615.
https://doi.org/10.1249/00005768-198712000-00012[CrossRef]

Petrović, B., & Kukrić, A. (2006). Uticaj izabranog trenažnog modela na poboljšanje maksimalne brzine trčanja. Glasnik Fakulteta fizičkog vaspitanja, Univerzitet u Banjoj Luci, (2). 77-83.

Powers, N., & Corry, I. (1982). Maximal aerobic power measurement in runners and swimmers. British journal of sports medicine, 16(3), 154-160.
https://doi.org/10.1136/bjsm.16.3.154[CrossRef]
PMid:7139226 PMCid:PMC1858953

Powers, S.K., Dodd, S., Deason, R., Byrd, R. in McKnight, T. (1983). Ventilatory threshold, running economy and distance running performance of trained athletes. Research Quarterly for Exercise and Sport, 54(2),179-182.
https://doi.org/10.1080/02701367.1983.10605291[CrossRef]

Reilly, T. (2007) The Science of Training - Soccer : A Scientific Approach to Developing Strength, Speed and Endurance. Routledge.
https://doi.org/10.4324/9780203966662[CrossRef]

Rhodes, E.C., D.C. McKenzie. (1984). Predicting marathon times from an aerobic threshold measurements. Phys. Sportsmed. 12: 95-99.
https://doi.org/10.1080/00913847.1984.11701745[CrossRef]

Rotstein, A., Dofan, R., Bar-Or, O., and Tenenbaum, G. (1986). Effect of training on anaerobic threshold, maximal aerobic power and anaerobic performance of preadolescent boys. Int. J. Sports Med., 7 286.
https://doi.org/10.1055/s-2008-1025775[CrossRef]
PMid:3793338

Saltin, B., Larsen, H., Terrados, N., Bangsbo, J., Bak, T., Kim, C., . . . Rolf, C. (1995). Aerobic exercise capacity at sea level and at altitude in Kenyan boys, junior and senior runners compared with Scandinavian runners. Scandinavian journal of medicine & science in sports, 5(4), 209-221.
https://doi.org/10.1111/j.1600-0838.1995.tb00037.x[CrossRef]
PMid:7552766

Spencer, M., & Gastin, P. (2001). Energy system contribution during 200- to 1500-m running in highly trained athletes. Medicine and science in sports and exercise, 33(1), 157-162.
https://doi.org/10.1097/00005768-200101000-00024[CrossRef]
PMid:11194103

Spencer, M., Gastin, P., & Payne, W. (1996). Energy system contribution. New studies in athletic, 11(4), 59-65.
Svedenhag, J., & Sjödin, B. (1984). Maximal and Submaximal Oxygen Uptakes and Blood Lactate Levels in Elite Male Middle- and Long-Distance Runners. International journal of sports medicine, 5(5), 255-261
https://doi.org/10.1055/s-2008-1025916[CrossRef]
PMid:6500792

Stoiljković, S., Ilić, N., Stefanović, Đ., Mitić, D., Mitrović, D., Popović, D., Nešić, D. & Mazić, D. (2004). Oxygen uptake at ventilatory threshold and VO2max, before and after eight weeks of endurance training. Godišnjak Fakulteta sporta i fizičkog vaspitanja, (12). 83-98

Stoiljković, S., Branković, N., Stoiljković, D., & Joksimović, A. (2005). Valorizacija "kružnog" oblika rada za razvoj dinamičke snage u nastavi fizičkog vaspitanja. Sport Mont, 6-7(III). 273-282.

Škof, B., Kropej, V.L., in Milić, R. (2002). Povezanost dimenzij sestave telesa in aerobne učinkovitosti pri otrocih med 10 in 14 let [The correlation between body composition dimensions and aerobic ability of children aged 10 to 14 years]. In R. Pišot, V. Štemberger, F. Krpač, & T. Filipčič (Eds.), Otrok v gibanju: zbornik prispevkov: proceedings (pp. 372-378). Ljubljana: Pedagoška fakulteta.

Tanaka, K. (1983). Relationship of anaerobic threshold and onset of blood lactate accumulation with endurance performance. European Journal of Applied Physiologie, 52: 51-56.
https://doi.org/10.1007/BF00429025[CrossRef]
PMid:6686129

Taunton, J., Maron, H., & Wilkinson, J. (1981). Anaerobic performance in middle and long distance runners. Canadian journal of applied sport sciences, 6(3), 109-113.

Tončev, I. (1988). Uticaj programiranog modela trčanja na ventilacijske funkcije, motoričke sposobnosti, kognitivne i konativne osobine omladinaca. In Berković, L. (Ed.), Zbornik radova nastavnika i saradnika fakulteta Fizičke kulture u Novom Sadu, (133-144). Novi Sad: RS.

Viru, A. (1995). Adaptation in sport training. Boca Raton, FL: CRC Press Inc.

Vučetić, V., Šentija, D. (2005). Doziranje i distribucija intenziteta u trenažnom procesu - zone trenažnog intenziteta. Kondicijski trening. UKTH, Zagreb 2(3) 2005. (36-42).

Vuksanović, M. (1999.) Utvrđivanje efikasnosti nastave fizičkog vaspitanja u odnosu na postignute rezultate u atletici. Doktorska disertacija. Fakultet sporta i fzičkog vaspitanja, Univerzitet Novi Sad.

Weineck, J. (2007). Optimales Training. Berlin, GER: Spitta Verlag.

To cite this article:
Đukić, R., Bošnjak, G., Jakovljević, V., & Tešanović, G. (2020) Parameters of functional abilities in running – research review. Sportlogia, 16 (1), 1-30.
https://doi.org/10.5550/sgia.201601.en.dbjt

 

Received: 26.05.2020.
Approved: 23.11.2020.

 

Correspondence:
Radosav Đukić, PhD
Spartamedic, Vienna, Austria
Tel.: +43 664 1330916
E-mail: rade.djukic@chello.at