A Comparative Study on the Performance Profile of Under-17 and Under-19 Handball Players Trained in the Sports School System
Language English Country Switzerland Media electronic
Document type Comparative Study, Journal Article, Research Support, Non-U.S. Gov't
PubMed
33143006
PubMed Central
PMC7662379
DOI
10.3390/ijerph17217979
PII: ijerph17217979
Knihovny.cz E-resources
- Keywords
- aerobic threshold, anaerobic threshold, jump tests, peak blood lactate, power output,
- MeSH
- Anaerobic Threshold MeSH
- Basketball physiology MeSH
- Running physiology MeSH
- Physical Endurance physiology MeSH
- Lactic Acid blood MeSH
- Humans MeSH
- Adolescent MeSH
- Movement MeSH
- Schools MeSH
- Athletic Performance physiology MeSH
- Check Tag
- Humans MeSH
- Adolescent MeSH
- Male MeSH
- Female MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Comparative Study MeSH
- Names of Substances
- Lactic Acid MeSH
This study evaluates the anatomical profiles, jump, sprint, power outputs, endurance, and peak blood lactate levels ([LA]peak) of handball players of two age groups-U17 (n = 77) and U19 (n = 46)-and analyses the role of training in their physical abilities. Vertical jump performance was determined by counter movement jump (CMJ) and counter movement jump with free arms (CMJFA) tests. A running-based anaerobic sprint test (RAST) determined the relative power output (watts/kg body weight) and absolute power output (watts) of the players. Sprint performance over 5 m, 10 m, and 30 m distances was evaluated. An incremental shuttle run test (40 m) was designed to determine aerobic threshold (AeT), anaerobic threshold (AnT), and [LA]peak. All parameters were measured for pivots, wingers, backs, and goalkeepers of each group. The U19 players were significantly heavier than the U17 group, but both the groups were nearly equal in height. The U19 group jumped higher than the U17 members, although the only significant difference (p = 0.032) was observed between the wingers of the groups in CMJ. Sprint performance varied marginally between the groups and only U19 pivots were found to be significantly (for distances of 5, 10, and 30 m: p = 0.047, p = 0.018, and p = 0.021, respectively) faster than U17 pivots. No difference in relative power output between the groups was noted, although the U19 players recorded higher absolute power outputs. Maximal velocity and velocities at the AeT and AnT were almost similar in the groups. Distance covered by the groups at the intensities of AeT and AnT varied only little. Higher [LA]peak was observed in the U19 players. U19 players failed to convert their superior power into speed and jump. The training pattern of the handball players needs to be revised so that U19 players may develop faster and be more enduring than the U17 group.
Faculty of Medical Sciences University of West Indies 11000 Cave Hill Barbados
Polish Handball Federation Puławska 300 A 02 819 Warszawa Poland
See more in PubMed
Fraser-Thomas J.L., Côté J., Deakin J. Youth sport programs: An avenue to foster positive youth development. Phys. Educ. Sport Pedagog. 2005;10:19–40. doi: 10.1080/1740898042000334890. DOI
Nideffer R.M., Sagal M.S., Lowry M., Bond J. Identifying and developing world-class performers. In: Tenenbaum G., Morgantown W., editors. The Practiceof Sport Psychology. Fitness Information Technology; Morgantown, WV, USA: 2001. pp. 129–144.
Abbott A., Button C., Pepping G.J., Collins D. Unnatural selection: Talent identification and development in sport. Nonlinear Dyn. Psychol. Life Sci. 2005;9:61–88. PubMed
Michalsik L.B., Aagaard P., Madsen K. Locomotion characteristics and match-induced impairments in physical performance in male elite team handball players. Int. J. Sports Med. 2013;34:590–599. doi: 10.1055/s-0032-1329989. PubMed DOI
Pearson D.T., Naughton G.A., Torode M. Predictability of physiological testing and the role of maturation in talent identification for adolescent team sports. J. Sci. Med. Sport. 2006;9:277–287. doi: 10.1016/j.jsams.2006.05.020. PubMed DOI
Vaeyens R., Lenoir M., Williams A.M., Philippaerts R.M. Talent identification and development programmes in sport: Current models and future directions. Sports Med. 2008;38:703–714. doi: 10.2165/00007256-200838090-00001. PubMed DOI
Marques M.C., van den Tilaar R., Vescovi J.D., Gonzalez-Badillo J.J. Relationship between throwing velocity, muscle power, and bar velocity during bench press in elite handball players. Int. J. Sports Physiol. Perform. 2007;2:414–422. doi: 10.1123/ijspp.2.4.414. PubMed DOI
Pori P., Kovačič S., Bon M., Dolenec M., Šibila M. Various age category—Related differences in the volume and intensity of the large-scale cyclic movements of male players in team handball. Acta Univ. Palacki. Olomuc. Gymnica. 2005;35:119–125.
Deutsch M.U., Maw G.J., Jenkins D., Reaburn P. Heart rate, blood lactate and kinematic data of elite colts (under-19) rugby union players during competition. J. Sports Sci. 1998;16:561–570. doi: 10.1080/026404198366524. PubMed DOI
Krustrup P., Mohr M., Bangsbo J. Activity profile and physiological demands of top-class soccer assistant refereeing in relation to training status. J. Sports Sci. 2002;20:861–871. doi: 10.1080/026404102320761778. PubMed DOI
Reilly T. Assessment of sports performance with particular reference to field games. Eur. J. Sport Sci. 2001;1:1–12. doi: 10.1080/17461390100071306. DOI
Wagner H., Orwat M., Hinz M., Pfusterschmied J., Bacharach D.W., Von Duvillard S.P., Müller E. Testing game-based performance in team-handball. J. Strength Cond. Res. 2016;30:2794–2801. doi: 10.1519/JSC.0000000000000580. PubMed DOI
Buchheit M., Lepretre P.M., Behaegel A.L., Millet G.P., Cuvelier G., Ahmaidi S. Cardiorespiratory responses during running and sport-specific exercises in handball players. J. Sci. Med. Sport. 2009;12:399–405. doi: 10.1016/j.jsams.2007.11.007. PubMed DOI
Wagner H., Fuchs P.X., Von Duvillard S.P. Specific physiological and biomechanical performance in elite, sub-elite and in non-elite male team handball players. J. Sports Med. Phys. Fit. 2018;58:73–81. doi: 10.23736/S0022-4707.16.0675S-X. PubMed DOI
Ziv G., Lidor R. Physical characteristics, physiological attributes, and on-court performances of handball players: A review. Eur. J. Sport Sci. 2009;9:375–386. doi: 10.1080/17461390903038470. DOI
Chelly M.S., Hermassi S., Shephard R.J. Relationships between power and strength of the upper and lower limb muscles and throwing velocity in male handball players. J. Strength Cond. Res. 2010;24:1480–1487. doi: 10.1519/JSC.0b013e3181d32fbf. PubMed DOI
Zapartidis I., Vareltzis I., Gouvali M., Kororos P. Physical Fitness and Anthropometric Characteristics in Different Levels of Young Team Handball Players. Open Sports Sci. J. 2009;2:22–28. doi: 10.2174/1875399X00902010022. DOI
Karcher C., Buchheit M. On-Court demands of elite handball, with special reference to playing positions. Sport. Med. 2014;44:797–814. doi: 10.1007/s40279-014-0164-z. PubMed DOI
Krüger K., Pilat C., Ückert K., Frech T., Mooren F.C. Physical performance profile of handball players is related to playing position and playing class. J. Strength Cond. Res. 2014;28:117–125. doi: 10.1519/JSC.0b013e318291b713. PubMed DOI
Delamarche P., Gratas A., Beillot J., Dassonville J., Rochcongar P., Lessard Y. Extent of lactic anaerobic metabolism in handballers. Int. J. Sports Med. 1987;8:55–59. doi: 10.1055/s-2008-1025641. PubMed DOI
Michalsik L.B., Madsen K., Aagaard P. Physiological capacity and physical testing in male elite team handball. J. Sports Med. Phys. Fit. 2015;55:415–429. PubMed
Gorostiaga E.M., Granados C., Ibáñez J., González-Badillo J.J., Izquierdo M. Effects of an entire season on physical fitness changes in elite male handball players. Med. Sci. Sports Exerc. 2006;38:357–366. doi: 10.1249/01.mss.0000184586.74398.03. PubMed DOI
Póvoas S.C.A., Seabra A.F.T., Ascensão A.A.M.R., Magalhães J., Soares J.M.C., Rebelo A.N.C. Physical and physiological demands of elite team handball. J. Strength Cond. Res. 2012;26:3365–3375. doi: 10.1519/JSC.0b013e318248aeee. PubMed DOI
Tanaka M., Michalsik L., Bangsbo J. Activity profiles during an official league game of Danish elite team handball players. Jpn. J. Phys. Fit. Sport Med. 2002;15:61–73.
Sporiš G., Vuleta D., Milanović D. Fitness profiling in handball: Physical and physiological characteristics of elite players. Coll. Antropol. 2010;34:1009–1014. PubMed
Haugen T.A., Tønnessen E., Seiler S. Speed and countermovement-jump characteristics of elite female soccer players, 1995–2010. Int. J. Sports Physiol. Perform. 2012;7:340–349. doi: 10.1123/ijspp.7.4.340. PubMed DOI
Manchado C., Tortosa-Martínez J., Vila H., Ferragut C., Platen P. Performance factors in women’s team handball: Physical and physiological aspects-a review. J. Strength Cond. Res. 2013;27:1708–1719. doi: 10.1519/JSC.0b013e3182891535. PubMed DOI
Kvorning T., Hansen M.R.B., Jensen K. Strength and Conditioning Training by the Danish National Handball Team before an Olympic Tournament. J. Strength Cond. Res. 2017;31:1759–1765. doi: 10.1519/JSC.0000000000001927. PubMed DOI
Ingebrigtsen J., Jeffreys I., Rodahl S. Physical characteristics and abilities of junior elite male and female handball players. J. Strength Cond. Res. 2013;27:302–309. doi: 10.1519/JSC.0b013e318254899f. PubMed DOI
Molina-López J., Zarzuela I.B., Sáez-Padilla J., Tornero-Quiñones I., Planells E. Mediation effect of age category on the relationship between body composition and the physical fitness profile in youth handball players. Int. J. Environ. Res. Public Health. 2020;17:2350. doi: 10.3390/ijerph17072350. PubMed DOI PMC
Roseguini A.Z., Da 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. Rev. Bras. Med. Esporte. 2008;14:46–50. doi: 10.1590/S1517-86922008000100009. DOI
Hermassi S., Laudner K., Schwesig R. Playing level and position differences in body characteristics and physical fitness performance among male team handball players. Front. Bioeng. Biotechnol. 2019;7:149. doi: 10.3389/fbioe.2019.00149. PubMed DOI PMC
Burr J.F., Jamnik V.K., Dogra S., Gledhill N. Evaluation of jump protocols to assess leg power and predict hockey playing potential. J. Strength Cond. Res. 2007;21:1139–1145. doi: 10.1519/R-21496.1. PubMed DOI
Petrigna L., Karsten B., Marcolin G., Paoli A., D’Antona G., Palma A., Bianco A. A Review of Countermovement and Squat Jump Testing Methods in the Context of Public Health Examination in Adolescence: Reliability and Feasibility of Current Testing Procedures. Front. Physiol. 2019;10:1384. doi: 10.3389/fphys.2019.01384. PubMed DOI PMC
Bosco C., Luhtanen P., Komi P.V. A simple method for measurement of mechanical power in jumping. Eur. J. Appl. Physiol. Occup. Physiol. 1983;50:273–282. doi: 10.1007/BF00422166. PubMed DOI
Baron J., Bieniec A., Swinarew A.S., Gabryś T., Stanula A. Effect of 12-week functional training intervention on the speed of young footballers. Int. J. Environ. Res. Public Health. 2020;17:160. doi: 10.3390/ijerph17010160. PubMed DOI PMC
Zacharogiannis E., Paradisis G., Tziortzis S. An evaluation of tests of anaerobic power and capacity. Med. Sci. Sport Exerc. 2004;36:116.
Balěiunas 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. Sport Sci. Med. 2006;5:163–170. PubMed PMC
Beltz N.M., Gibson A.L., Janot J.M., Kravitz L., Mermier C.M., Dalleck L.C. Graded Exercise Testing Protocols for the Determination of VO2max: Historical Perspectives, Progress, and Future Considerations. J. Sports Med. 2016;2016:1–12. doi: 10.1155/2016/3968393. PubMed DOI PMC
Castagna C., Impellizzeri F.M., Belardinelli R., Abt G., Coutts A., Chamari K., D’Ottavio S. Cardiorespiratory responses to Yo-yo Intermittent Endurance Test in nonelite youth soccer players. J. Strength Cond. Res. 2006;20:326–330. doi: 10.1519/R-17144.1. PubMed DOI
Hughson R.L., Green H.J. Blood acid-base and lactate relationships studied by ramp work tests. Med. Sci. Sports Exerc. 1982;14:297–302. doi: 10.1249/00005768-198204000-00008. PubMed DOI
Mader A., Liesen H., Heck H., Philippi H., Rost R., Schuerch P., Hollmann W. Zur Beurteilung der sportartspezifischen Ausdauerleistungsfähigkeit im Labor. Sportarzt Sportmed. 1976;27:109–112.
Hopkins W.G., Marshall S.W., Batterham A.M., Hanin J. Progressive statistics for studies in sports medicine and exercise science. Med. Sci. Sports Exerc. 2009;41:3–13. doi: 10.1249/MSS.0b013e31818cb278. PubMed DOI
Gümüş M., Eler S. Evaluation of Physical and Physiological Characteristics of the Olympic Champion Turkish Deaf Men’s National Handball Team. J. Educ. Train. Stud. 2018;6:207. doi: 10.11114/jets.v6i11.3658. DOI
Schwesig R., Hermassi S., Fieseler G., Irlenbusch L., Noack F., Delank K.S., Shephard R.J., Chelly M.S. Anthropometric and physical performance characteristics of professional handball players: Influence of playing position. J. Sports Med. Phys. Fit. 2017;57:1471–1478. doi: 10.23736/S0022-4707.16.06413-6. PubMed DOI
Rannou F., Prioux J., Zouhal H., Gratas-Delamarche A., Delamarche P. Physiological profile of handball players. J. Sports Med. Phys. Fit. 2001;41:349–353. PubMed
Massuca L., Branco B., Miarka B., Fragoso I. Physical fitness attributes of team-handball players are related to playing position and performance level. Asian J. Sports Med. 2015;6:e24712. doi: 10.5812/asjsm.24712. PubMed DOI PMC
Zakas A., Mandroukas K., Karamouzis G., Panagiotopoulou G. Physical training, growth hormone and testosterone levels and blood pressure in prepubertal, pubertal and adolescent boys. Scand. J. Med. Sci. Sports. 1994;4:113–118. doi: 10.1111/j.1600-0838.1994.tb00412.x. DOI
Malina R.M., Bouchard C., Bar-Or O. Growth, Maturation, and Physical Activity. 2nd ed. Human Kinetics; Champaign, IL, USA: 2004.
Gorostiaga E.M., Izquierdo M., Iturralde P., Ruesta M., Ibáñez J. Effects of heavy resistance training on maximal and explosive force production, endurance and serum hormones in adolescent handball players. Eur. J. Appl. Physiol. Occup. Physiol. 1999;80:485–493. doi: 10.1007/s004210050622. PubMed DOI
Michalsik L.B. Handball Sports Medicine. Springer; Berlin/Heidelberg, Germany: 2018. On-Court Physical Demands and Physiological Aspects in Elite Team Handball; pp. 15–33.
Reverter-Masía J., Legaz-Arrese A., Munguía-Izquierdo D., Barbany J.R., Serrano-Ostáriz E. A profile of the resistance training practices of elite Spanish club teams. J. Strength Cond. Res. 2009;23:1537–1547. PubMed
Cardinale M., Whiteley R., Hosny A.A., Popovic N. Activity profiles and positional differences of handball players during the world championships in Qatar 2015. Int. J. Sports Physiol. Perform. 2017;12:908–915. doi: 10.1123/ijspp.2016-0314. PubMed DOI
Buchheit M., Mendez-Villanueva A., Quod M., Quesnel T., Ahmaidi S. Improving acceleration and repeated sprint ability in well-trained adolescent handball players: Speed versus sprint interval training. Int. J. Sports Physiol. Perform. 2010;5:152–164. doi: 10.1123/ijspp.5.2.152. PubMed DOI
Spencer M., Bishop D., Dawson B., Goodman C. Physiological and metabolic responses of repeated-sprint activities:specific to field-based team sports. Sports Med. 2005;35:1025–1044. doi: 10.2165/00007256-200535120-00003. PubMed DOI
Ferrari Bravo D., Impellizzeri F.M., Rampinini E., Castagna C., Bishop D., Wisloff U. Sprint vs. interval training in football. Int. J. Sports Med. 2008;29:668–674. doi: 10.1055/s-2007-989371. PubMed DOI
Burgomaster K.A., Howarth K.R., Phillips S.M., Rakobowchuk M., Macdonald M.J., Mcgee S.L., Gibala M.J. Similar metabolic adaptations during exercise after low volume sprint interval and traditional endurance training in humans. J. Physiol. 2008;586:151–160. doi: 10.1113/jphysiol.2007.142109. PubMed DOI PMC
Gibala M.J., Little J.P., van Essen M., Wilkin G.P., Burgomaster K.A., Safdar A., Raha S., Tarnopolsky M.A. Short-term sprint interval versus traditional endurance training: Similar initial adaptations in human skeletal muscle and exercise performance. J. Physiol. 2006;575:901–911. doi: 10.1113/jphysiol.2006.112094. PubMed DOI PMC
Barnes K.R., Kilding A.E. Running economy: Measurement, norms, and determining factors. Sports Med. Open. 2015;1:1–15. doi: 10.1186/s40798-015-0007-y. PubMed DOI PMC
Sporiš G., Vučetić V., Milanović L., Milanović Z., Krespi M., Krakan I. A comparison anaerobic endurance capacity in elite soccer, handball and basketball players. Kinesiology. 2014;46:52–59.
Kukolj M., Ropret R., Ugarkovic D., Jaric S. Anthropometric, strength, and power predictors of sprinting performance. J. Sports Med. Phys. Fit. 1999;39:120–122. PubMed
Young W., McLean B., Ardagna J. Relationship between strength qualities and sprinting performance. J. Sports Med. Phys. Fit. 1995;35:13–19. PubMed
Massuça L.M., Fragoso I., Teles J. Attributes of top elite team-handball players. J. Strength Cond. Res. 2014;28:178–186. doi: 10.1519/JSC.0b013e318295d50e. PubMed DOI
Hansen C., Sanz-Lopez F., Whiteley R., Popovic N., Ahmed H.A., Cardinale M. Performance analysis of male handball goalkeepers at the world handball championship 2015. Biol. Sport. 2017;34:393–400. doi: 10.5114/biolsport.2017.69828. PubMed DOI PMC
Havolli J. Comparison between Some Morphological Characteristics and Motor Tests of Young Handball and Football Goalkeepers. J. Phys. Fit. Med. Treat. Sport. 2018;3 doi: 10.19080/JPFMTS.2018.03.555604. DOI