Autoren: |
Tiago
Buzatto de Lima
Methodist University of Piracicaba – UNIMEP, Brazil Vinícius Carvalho de Andrade Methodist University of Piracicaba – UNIMEP, Brazil Leonardo Henrique Dalcheco Messias Laboratory of Applied Sport Physiology, School of Applied Science s, University of Campinas – UNICAMP, Brazil Fúlvia de Barros Manchado-Gobatto Laboratory of Applied Sport Physiology, School of Applied Science s, University of Campinas – UNICAMP, Brazil Ramon Martins de Oliveira Methodist University of Piracicaba – UNIMEP, Brazil Ricardo Alexandre Rodrigues Santa Cruz University of Roraima KauêTomazine Rosante Methodist University of Piracicaba – UNIMEP, Brazil |
Schlüsselbegriffe: | Aerobic-anaerobic transition exercise evaluation fitness testing |
Veröffentlichungsdatum der gesamten Ausgabe: | 2015 |
Seitenanzahl: | 11 (5-15) |
1. | Araujo G.G., Papoti M., Manchado F.B., Mello M.A., Gobatto C.A. Protocols for hyperlactatemia induction in the lactate minimum test adapted to swimming rats. Comp Biochem Physiol A Mol Integr Physiol. 2007; 148 (4): 888–892. |
2. | Balciunas M., Stonkus S., Abrantes C., Sampaio J. Long term effects of different training modalities on power, speed, skill and anaerobic capacity in young male basketball players. J Sports Sci Med. 2006; 5 (1): 163–170. |
3. | Bar-Or O., Dotan R., Inbar O. A 30 sec. all-out ergometer test – its reliability and validity for anaerobic capacity. Isr J Med Sci. 1977; 13 (4): 126–130. |
4. | Barbero-Alvarez J.C., Soto V.M., Barbero-Alvarez V., Granda-Vera J. Match analysis and heart rate of futsal players during competition. J Sports Sci. 2008; 26 (1): 63–73. |
5. | Berthoin S., Baquet G., Dupont G., Van Praagh E. Critical velocity during continuous and intermittent exercises in children. Eur J Appl Physiol. 2006; 98 (2): 132–138. |
6. | Bull A.J., Housh T.J., Johnson G.O., Perry S.R. Effect of mathematical modeling on the estimation of critical power. Med Sci Sports Exerc. 2000; 32 (2): 526–530. |
7. | Carter H., Jones A.M., Doust J.H. Effect of incremental test protocol on the lactate minimum speed. Med Sci Sports Exerc. 1999; 31 (6): 837–845. |
8. | Castagna C., Barbero-Alvarez J.C. Physiological demands of an intermittent futsal-oriented high-intensity test. J Strength Cond Res. 2010; 24 (9): 2322–2329. |
9. | Castagna C., D’Ottavio S., Granda Vera J., Barbero-Alvarez J.C. Match demands of professional Futsal: a case study. J Sci Med Sport. 2009; 12 (4): 490–494. |
10. | Copp S.W., Hirai D.M., Musch T.I., Poole D.C. Critical speed in the rat: implications for hindlimb muscle blood flow distribution and fibre recruitment. Journal of Physiology. 2010; 588 (10): 5077–5087. |
11. | Dekerle J., Brickley G., Hammond A.J., Pringle J.S., Carter H. Validity of the two-parameter model in estimating the anaerobic work capacity. Eur J Appl Physiol. 2006; 96 (3): 257–264. |
12. | Deminice R., Rosa F.T., Franco G.S., Jordao A.A., de Freitas E.C. Effects of creatine supplementation on oxidative stress and inflammatory markers after repeated-sprint exercise in humans. Nutrition. 2013; 29 (9): 1127–1132. |
13. | Dogramaci S.N., Watsford M.L., Murphy A.J. Time-motion analysis of international and national level futsal. J Strength Cond Res. 2011; 25 (3): 646–651. |
14. | Engel P.C., Jones J.B. Causes and elimination of erratic blanks in enzymatic metabolite assays involving the use of NAD+ in alkaline hydrazine buffers: improved conditions for the assay of L-glutamate, L-lactate, and other metabolites. Anal Biochem. 1978; |
15. | Faude O., Kindermann W., Meyer T. Lactate threshold concepts: how valid are they? Sports Med. 2009; 39 (6): 469–490. |
16. | Fitzsimons M., Dawson B., Ware D., Wilkinson A. Cycling and running tests of repeated sprint ability. Aust J Sci Med Sport. 1993; 25 (5): 88–93. |
17. | Fukuda D.H., Smith A.E., Kendall K.L., Cramer J.T., Stout J.R. The determination of critical rest interval from the intermittent critical velocity test in club-level collegiate hockey and rugby players. J Strength Cond Res. 2011; 25 (4): 889–895. |
18. | Gobatto C.A., Scariot P.P.M., Ribeiro L.F.P., Manchado-Gobatto F.B. Critical load estimation in young swimming rats using hyperbolic and linear models. Comparative Exercise Physiology. 2013; 9 (6): 85–91. |
19. | Housh D.J., Housh T.J., Bauge S.M. A methodological consideration for the determination of critical power and anaerobic work capacity. Res Q Exerc Sport. 1990; 61 (4): 406–409. |
20. | Housh T.J., Cramer J.T., Bull A.J., Johnson G.O., Housh D.J. The effect of mathematical modeling on critical velocity. Eur J Appl Physiol. 2001; 84 (5): 469–475. |
21. | Hughson R.L., Orok C.J., Staudt L.E. A high velocity treadmill running test to assess endurance running potential. Int J Sports Med. 1984; 5 (1): 23–25. |
22. | Jones A.M., Doust J.H. The validity of the lactate minimum test for determination of the maximal lactate steady state. Med Sci Sports Exerc. 1998; 30 (8): 1304–1313. |
23. | Jones A.M., Vanhatalo A., Burnley M., Morton R.H., Poole D.C. Critical power: implications for determination of VO2max and exercise tolerance. Med Sci Sports Exerc. 2010; 42 (10): 1876–1890. |
24. | Kindermann W., Simon G., Keul J. The significance of the aerobic-anaerobic transition for the determination of work load intensities during endurance training. European Journal of Applied Physiological Occupational Physiology. 1979; 42: 25–34. |
25. | Knoepfli-Lenzin C., Boutellier U. Lactate minimum is valid to estimate maximal lactate steady state in moderately and highly trained subjects. J Strength Cond Res. 2011; 25 (5): 1355–1359. |
26. | Lloyd B.B. The energetics of running: an analysis of world records. Adv Sci. 1966; 22 (15): 515–530. |
27. | MacIntosh B.R., Esau S., Svedahl K. The lactate minimum test for cycling: estimation of the maximal lactate steady state. Can J Appl Physiol. 2002; 27 (3): 232–249. |
28. | Monod H., Scherrer J. The work capacity of a synergic muscular group. Ergonomics. 1965; 8 (10): 328–338. |
29. | Rebelo A.N., Ascensao A.A., Magalhaes J.F., Bischoff R., Bendiksen M., Krustrup P. Elite futsal refereeing: activity profile and physiological demands. J Strength Cond Res. 2011; 25 (4): 980–987. |
30. | Ribeiro L., Balikian P., Malachias P., Baldissera V. Stage length, spline function and lactate minimum swimming speed. J Sports Med Phys Fitness. 2003; 43 (3): 312–318. |
31. | Rodrigues V.M., Ramos G.P., Mendes T.T., Cabido C.E., Melo E.S., Condessa L.A., Garcia E.S. Intensity of official Futsal matches. J Strength Cond Res. 2011; 25 (9): 2482–2487. |
32. | Roseguini A.Z., Silva A.S.R., Gobatto C.A. Determinations and relationships of the RAST anaerobic parameters, anaerobic threshold and lactacidemia response obtained at the beginning, interval and the end of an official handball match. Revista Brasileira d |
33. | Tegtbur U., Busse M.W., Braumann K.M. Estimation of an individual equilibrium between lactate production and catabolism during exercise. Med Sci Sports Exerc. 1993; 25 (5): 620–627. |
34. | Toubekis A.G., Vasilaki A., Douda H., Gourgoulis V., Tokmakidis S. Physiological responses during interval training at relative to critical velocity intensity in young swimmers. J Sci Med Sport. 2011; 14 (4): 363–368. |
35. | Wakayoshi K., Ikuta K., Yoshida T., Udo M., Moritani T., Mutoh Y., Miyashita M. Determination and validity of critical velocity as an index of swimming performance in the competitive swimmer. Eur J Appl Physiol Occup Physiol. 1992; 64 (2): 153–157. |
36. | Zacharogiannis E., Paradisis G., Tziortzis S. An evaluation of tests of anaerobic power and capacity. Medicine and Science Sports Exercise. 2004; 36. |
37. | Zagatto A.M., Beck W.R., Gobatto C.A. Validity of the running anaerobic sprint test for assessing anaerobic power and predicting shortdistance performances. J Strength Cond Res. 2009; 23 (6): 1820–1827. |
38. | Zagatto A.M., Gobatto C.A. Relationship between anaerobic parameters provided from MAOD and critical power model in specific table tennis test. Int J Sports Med. 2012; 33 (8): 613–620. |
39. | Zagatto A.M., Papoti M., Gobatto C.A. Anaerobic capacity may not be determined by critical power model in elite table tennis players. J Sports Sci Med. 2008; 7 (1): 54–59. |