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Tytuł artykułu

Changes in power output under the influence of high-intensity training

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The purpose of this research was to study the effect of high-intensity training programme carried out with a cycle ergometer and in the form of run intervals on physical fitness as measured in a running test and on power output measured in Wingate test. The study was carried out on 24 subjects divided into two groups: group GC (12 persons) did the high-intensity training on a cycle ergometer; group GR (12 persons) did the training in the form of running. The training lasted 8 weeks, 5 times a week in both groups. Running test consisted of a series of four 50 m sprints (25 m + 25 m back) at 15-second intervals. The training improved alactic anaerobic output (the phase of power increase and maintenance phase (IMP) in the Wingate test) by 20.3%- VV[IMP] and 9.1%P[AlMP] in the GC group and by 15.2% W[IMP] and 11.5% P[aIMP] in the GR group, and lactic anaerobic output (the phase of power decrease (DP)) by 9.1% W[DP] and 12.4% P[aDP] for group GC and by 12.8% W[DP] and 10.8% P[[aDP] for group GR. In both groups, a significant improvement in time required to cover the distance in the series of four runs was noted (significantly larger in the group GR than in the group GC). The changes in running times, in terms of percentages, differed significantly between the groups. However, the groups did not differ in terms of their Wingate test results.
Rocznik
Strony
89--99
Opis fizyczny
Bibliogr. 28 poz., wykr.
Twórcy
autor
  • Institute of Sports Games, Academy of Physical Education, Marymoncka 34, Warsaw
autor
  • Institute of Sports Theory, Academy of Physical Education, Marymoncka 34, Warsaw
autor
  • Department of Biomechanics, Institute of Sport in Warsaw
Bibliografia
  • [1] ABERNETHY P.J., THAYER R., TAYLOR A.W., Acute and chronic responses of skeletal muscle to endurance and sprint exercise, Sports Med., 1990, 10, 365–389.
  • [2] ALLEMEIER C.A., FRY A.C., JOHNSON P., HIKIDA R.S., HAGERMAN F.C., STARON R.S., Effects of sprint cycle training on human skeletal muscle, J. Appl. Physiol., 1994, 77(5), 2385–2390.
  • [3] BAR-OR O., The Wingate anaerobic test. An update on methodology, reliability and validity, Sports Med., 1987, 4, 381–394.
  • [4] BOGDANIS G.C., NEVILL M.E., LAKOMY H.K.A., GRAHAM C.M., LOUIS G., Effects of active recovery on power output during repeated maximal sprint cycling, Eur. J. Appl. Physiol., 1996a, 74, 461–469.
  • [5] BOGDANIS G.C., NEVILL M.E., BOOBIS L.H., LAKOMY H.K.A., Contribution of phosphocreatine and aerobic metabolism to energy supply during repeated sprint exercise, J. Appl. Physiol., 1996b, 80, 876–884.
  • [6] CADEFAU J., CASADEMONT J., GRAU J.M., FERNANDEZ J., BALAGUER A., VERNET M., CUSSO R., URBANO-MARQUEZ A., Biochemical and histochemical adaptation to sprint training in young athletes, Acta Physiol. Scand., 1990, 140, 341–351.
  • [7] CALBET J.A.L., CHAVARREN J., DORADO C., Fractional use of anaerobic capacity during a 30- and a 45-s Wingate test, Eur. J. Appl. Physiol., 1997, 76, 308–313.
  • [8] COSTILL D.L., COYLE E.F., FINK W.F., LESMES G.R., WITZMANN F.A., Adaptations in skeletal muscle following strength training, J. Appl. Physiol., 1979, 46, 96–99.
  • [9] ESBJÖRNSSON M., HELLSTEN-WESTING Y., BALSOM P.D., SJÖDIN B., JANSSON E., Muscle fibre type changes with sprint training, effect of training pattern, Acta Physiol. Scand., 1993, 149, 245–246.
  • [10] ESBJÖRNSSON LILJEDAHL M., HOLM I., SYLVÉN CH., JANSSON E., Different responses of skeletal muscle following sprint training in men and women, Eur. J. Appl. Physiol., 1996, 74, 375–383.
  • [11] HIRVONEN J., REHUNEN S., RUSKO H., HÄRKÖNEN M., Break-down of high-energy phosphate compounds and lactate accumulation during short supramaximal exercise, Eur. J. Appl. Physiol., 1987, 56(3), 253–259.
  • [12] JACOBS I., BAR-OR O., KARLSSON J., DOTAN R., TESCH P.A., KAISER P., INBAR O., Changes in muscle metabolites in female with 30-s exhaustive exercise, Med. Sci. Sports Exercise, 1982, 14(6), 457–460.
  • [13] JACOBS I., ESBJÖRNSSON M., SYLVEN C., HOLM I., JANSSON E., Sprint training effects on muscle myoglobin, enzymes, fiber types, and blood lactate, Med. Sci. Sports Exerc., 1987, 19, 368–374.
  • [14] LINOSSIER M.-T., DENIS C., DORMOIS D., GEYSSANT A., LACOUR J.R., Ergometric and metabolic adaptation to a 5-s sprint training programme, Eur. J. Appl. Physiol., 1993, 67, 408–414.
  • [15] LINOSSIER M.-T., DORMOIS D., GEYSSANT A., DENIS C., Performance and fibre characteristics of human skeletal muscle during short sprint training and detraining on a cycle ergometer, Eur. J. Appl. Physiol., 1997, 75, 491–498.
  • [16] MEDBØ J.I., TABATA I., Relative importance of aerobic and anaerobic energy release during short- lasting exhausting bicycle exercise, J. Appl. Physiol., 1989, 67(5), 1881–1886.
  • [17] NEVILL M.E., BOOBIS L.H., BROOKS S., WILLIAMS C., Effect of training on muscle metabolism during treadmill sprinting, J. Appl. Physiol., 1989, 67, 2376–2382.
  • [18] PARRA J., CADEFAU J.A., RODAS G., AMIGÓ N., CUSSÓ R., The distribution of rest periods affects performance and adaptations of energy metabolism induced by high-intensity training in human muscle, Acta Physiol. Scand., 2000, 169, 157–165.
  • [19] REHUNEN S., NÄVERI H., KUOPPASALMI K., HÄRKÖNEN M., High-energy phosphate compounds during exercise in human slow-twitch and fast-twitch muscle fibres, Scand. J. Clin. Lab. Invest., 1982, 42, 499–506.
  • [20] ROBERTS A.D., BILLETER R., HOWALD H., Anaerobic muscle enzyme changes after interval training, Int. J. Sports Med., 1982, 3, 18–21.
  • [21] RODAS G., VENTURA J.L., CADEFAU J.A., CUSSÓ R., PARRA J., A short training programme for the rapid improvement of both aerobic and anaerobic metabolism, Eur. J. Appl. Physiol., 2000, 82, 480–486.
  • [22] ROTSTEIN A., DOTAN R., BAR-OR O., TENENBAUM G., Effect of training on anaerobic threshold, maximal power and anaerobic performance of preadolescent boys, Int. J. Sports Med., 1986, 7(5), 281–286.
  • [23] SIMONEAU J.A., LORTIE G., BOULAY M.R., MARCOTTE M., THIBAULT M.C., BOUCHARD C., Inheritance of human skeletal muscle and anaerobic capacity adaptation to high-intensity intermittent training, Int. J. Sports Med., 1986, 7(3), 167–171.
  • [24] SIMONEAU J.A., LORTIE G., BOULAY M.R., MARCOTTE M., THIBAULT M.C., BOUCHARD C., Effects of two high-intensity intermittent training programs interspaced by detraining on human skeletal muscle and performance, Eur. J. Appl. Physiol., 1987, 56(5), 516–521.
  • [25] STATHIS C.G.A., FEBRAIO M.A., CAREY M.F., SNOW R.J., Influence of sprint training on human skeletal muscle purine nucleotide metabolism, J. Appl. Physiol., 1994, 76, 1802–1809.
  • [26] THORSTENSSON A., SJÖDIN B., KARLSSON J., Enzyme activities and muscle strength after “sprint training” in man, Acta Physiol. Scand., 1975, 94(3), 313–318.
  • [27] TOMLIN D.L., WENGER H.A., The relationship between aerobic fitness and recovery from high intensity intermittent exercise, Sports Med., 2001, 33(1), 1–11.
  • [28] TRUMP M.E., HEIGENHAUSER G.J.F., PUTMAN C.T., SPRIET L.L., Importance of muscle phosphocreatine during intermittent maximal cycling, J. Appl. Physiol., 1996, 80, 1574–1580.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPB1-0016-0008
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