VERTICAL JUMP HEIGHT IN YOUNG CHILDREN - A LONGITUDINAL STUDY IN 4- TO 6-YEAR OLD CHILDREN

Authors

  • Katja Koren Science and Research Centre Koper
  • Rado Pišot Science and Research Centre Koper
  • Boštjan Šimunič Science and Research Centre Koper

Abstract

Preschool children are intensively involved in the process of developing fundamental movement skills such as walking, running, jumping, climbing, crawling and other simple movements. We aimed to compare age- and gender- related trends in countermovement vertical jump (CMJ) performance (jumping height) measured with a means of ground force plate during a longitudinal study of 4- to 6-year old children (N=79; 43% boys). Furthermore, we classified children CMJ arm-leg coordination into poor, average, or excellent on the grounds of high speed video footage. We found that CMJ height progresses significantly with age when arms are used (P<.001, η2=.632) and without the use of arms (P<.001, η2=.620). There were no sex effects. After classification of CMJ arm - leg coordination we found that children with excellent CMJ coordination progress more intensively than those with average coordination, whereas poorly coordinated jumpers do not progress at all. After extrapolating our data with the data of others, we found logarithmic CMJ height trends until the age of 16 in both sexes, athlete boys jumping higher than the non-athletes after the ages of 14 or 15. It seems that the initial movement patterns level, in this case the observed jumping technic, develops and refines in 4- to 6-year old children at that age. We conclude that jumping coordination is a very important factor of CMJ performance in the studied age span.

References

Abidin, N. Z., & Adam, M. B. (2013). Prediction of vertical jump height from anthropometric factors in male and female martial arts athletes. Malaysian Journal of Medical Sciences, 20(1), 39–45.

Adams, K., O'Shea, J. P., O'Shea, K. L., & Climstein, M. (1992). The effect of six weeks of squat, plyometric and squat-plyometric training on power production. Journal of Applied Sport Science Research, 6(1), 36–41.

Bobbert, M. F., & Van Soest, A. J. (1994). Effects of muscle strengthening on vertical jump height: a simulation study. Medicine and Science in Sports and Exercise, 26(8), 1012–1020.

Carson, V., LeBlanc, C., Moreau, E., & Tremblay, M. S. (2013). Paediatricians’ awareness of, agreement with, and use of the new Canadian Physical Activity and Sedentary Behaviour Guidelines for ages 0–17 years. Journal of Paediatrics and Child Health, 18(10), 538–542.

Cheng, K. B. (2008). The Relationship Between Joint Strength and Standing Vertical Jump Performance, Journal of Applied Biomechanics, 24, 224–233.

Cilli, M., Gelen, E., Yildiz, S., Saglam, T., & Camur, M. (2014). Acute effects of a resisted dynamic warm-up protocol on jumping performance. Biology of Sport, 31(4), 277–282.

Cisar, C. J., & Corbelli, J. (1989). The volleyball spike: a kinesiological and physilogical analysis with recommendations for skill development and conditioning programs. N.S.C.A. Journal, 11(1), 4–80.

Clark, J. E., Phillips, S., & Petersen, R. (1989). Developmental stability in jumping. Developmental Psychology, 25, 929–935.

Colley, R. C., Garriguet, D., Janssen, I., Craig, C. L., Clarke, J., & Tremblay, M. S. (2011). Physical activity of Canadian children and youth: Accelerometer results from the 2007 to 2009 Canadian Health Measures Survey. Health Reports, 22(1),15–24.

Conlee, R. K., McGown, C. M., Fisher, A. G., Dalsky, G. P., & Robinson, K. C. (1982). Physiological effects of power volleyball. The Physician and Sports Medicine, 10(2), 25–27.

Council on Sports Medicine and Fitness and Council on School Health. (2006). Active Healthy Living: Prevention of Childhood Obesity Through Increased Physical Activity. Pediatrics, 117(5), 1834–1842.

Diamond, A. (2000). Close interrelation of motor development and cognitive development and of the cerebellum and prefrontal cortex. Child Development. 71(1), 44–56.

Duke, S., & BenEliayhu, D. (1992). Plyometrics: Optimising athletic performance through the development of power as assessed by vertical leap ability: an observational study. Chiropractic Sports Medicine, 6(1), 10–15.

Feltner, M. E., Bishop, E. J., & Perez, C. M. (2004). Segmental and kinetic contributions in vertical jumps performed with and without an arm swing. Research Quarterly for Exercise and Sport, 75(3), 216–230.

Focke, A., Strutzenberger, G., Jekauc, D., Worth, A., Woll, A., & Schwameder, H. (2013). Effects of age, sex and activity level on counter-movement jump performance in children and adolescents. European Journal of Sport Science. 13(5), 518–526.

Gabbard, C. (1992). Lifelong motor development. Dubuque, Iowa: Wm. C. Brown Publisher.

Gallahue, D. L. (1996). Developmental Physical Education for Today’s Children (3rd ed.). Brown & Benchmark Publisher.

Gallahue, D. L., & Ozmon, J. C. (1998). Understanding motor development: infants, children, adolescents, adults (5th ed.). Boston: McGraw-Hill.

Gotay, C. C., Katzmarzyk, P. T., Janssen, I., Dawson, M. Y., Aminoltejari, K., & Bartley, N. L. (2013). Updating the Canadian obesity maps: an epidemic in prog-ress. Canadian Journal of Public Health, 104(1), e64–e68.

Hara, M., Shibayama, A., Takeshita, D., & Fukashiro, S. (2006). The effect of arm swing on lower extremities in vertical jumping. Journal of Biomechanics, 39(13), 2503–2511.

Harman, E. A., Rosenstein, M. T., Frykman, P. N., & Rosenstein, R. M. (1990). The effects of arms and countermovement on vertical jumping. Medicine and Science in Sports and Exercise, 22(6), 825–833.

Harrison, A. J., & Moroney, A. (2007). Arm augmentation of vertical jump performance in young girls and adult females. In: XXV ISBS Symposium, Ouro Preto – Brazil. Retrieved from: https://ojs.ub.uni-konstanz.de/cpa/article/viewFile/425/364

Harrison, A. J., & Gaffney, S. (2001). Motor development and gender effect on stretch shortening cycle performance, Journal of Science and Medicine in Sport, 44(4), 406–415.

Hynes-Dusel, J. (2002). Motor development in elementary children. Strategies. 15(3), 30–34.

Inacio, M., Dipietro, L., Visek, A. J., & Miller, T. A. (2011). Influence of upper-body external loading on anaerobic exercise performance. Journal of Strength and Conditioning Research. 25(4), 896–902.

Jensen, J. L., Phillips, S. J., & Clark, J. E. (1994). Research Quarterly for Exercise and Sport, 65(3), 258–268.

Kaneko, M., Fuchimoto, T., Toji, H., & Suei, K. (1983). Training effects of different loads on the force velocity relationship and mechanical power output in human muscle. Scandinavian Journal of Sports Science, 5(2), 50–55.

Klausen, K., Schibye B., & Rasnussen B. (1989). A longitudinal study of changes in phsical performane of 10- to 15-year-old girls and boys In S. Oseid, K.-H. Carlsen (Eds.) Children and Exercise XIII (pp 113-122). Champaign (IL): Human Kinetics Books.

Krombholz, H. (1997). Physical performance in relation to age, sex, social class and sports activities in kindergarten and elementary school. Perceptual and Motor Skills, 84(3), 1168–1170.

Kruk, J. (2007). Physical activity in the prevention of the most frequent chronic diseases: an analysis of the recent evidence. Asian Pacific Journal of Cancer Prevention, 8(3), 325–338.

Laffaye, G., & Choukou, M. A. (2010). Gender bias in the effect of dropping height on jumping performance in volleyball players. Journal of Strength and Conditioning Research, 24(8): 2143–2148.

Lees, A., Vanrenterghem, J., & Clercq, D. D. (2004). Under-standing how an arm swing enhances performance in the vertical jump. Journal of Biomechanics, 37(12), 1929–1940.

Lepp, A., Barkley, J. E, Sanders, G. J., Rebold, M., & Gates P. (2013). The relationship between cell phone use, physical and sedentary activity, and cardiorespiratory fitness in a sample of U.S. college students. International Journal of Behavioral Nutrition and Physical Activity, 10: 79.

Marković, G. (2007). Does plyometric training improve vertical jump height? A meta-analytical review. British Journal of Sports Medicine, 41(6), 349–355.

Marković, G., Dizdar, D., Jukić, I., & Cardinale, M. (2004). Reliability and factorial validity of squat and countermovement jump tests. Journal of Strength and Conditioning Research, 18(3), 551–555.

Miller, D. J. (1976). A Biomechanical analysis of the contribution of the trunk to standing vertical jump takeoffs. In J. Broekhoff (Ed.), Physical Education, Sports and Sciences (pp 355–374). Eugene (OR): Microform Publications.

Neelly, K. R., & Zebas, C. J. (2003). Vertical jump kinetics in young children. Department of Physical Therapy and Health Sciences, Bradley University. Derived from: http://asbweb.org/conferences/2003/pdfs/125.pdf

Ng, M., Fleming, T., Robinson, M., Thomson, B., Graetz, N., Margono, C., et al. (2014). Global, regional, and national prevalence of overweight and obesity in children and adults during 1980–2013: a systematic analysis for the Global Burden of Disease Study 2013. Lancet, 384(9945), 766–781.

Nikolaidis, P. T., Ingebrigtsen, J., Póvoas, S. C., Moss, S., & Torres-Luque, G. (2015). Physical and physiological characteristics in male team handball players by playing position - Does age matter? The Journal of Sports Medicine and Physical Fitness, 55(4), 297–304.

OECD/EU (2016). Health at a glance: Europe 2016 – state of health in the EU cycle, OECD Publishing, Paris.

Pagaduan, J. C., Pojskić, H., Užičanin, E., & Babajić, F. (2012). Effect of various warm-up protocols on jump performance in college football players. Journal of Human Kinetics, 35(1), 127–132.

ParticipACTION. (2015). The biggest Risk is Keeping Kids Indoors. The 2015 Participac-tion Report Card on Physical Activity for Children and Youth. ParticipACTION, Toronto, Ont., Canada.

ParticipACTION. (2016). Too Tired to Move? The 2016 ParticipACTION Report Card on Physical Activity for Children and Youth. ParticipACTION, Toronto, Ont.,Canada.

Payne, A. H., Slater, W. J., & Telford, T. (1968). The use of a force platform in the study of athletic activities. A preliminary investigation. Ergonomics, 11(2), 123–143.

Plevnik, M. (2014). The factors of a performance of the fundamental movement pattern of climbing in the period of early childhood: doctoral dissertation. Retrieved from: http://www.famnit.upr.si/sl/izobrazevanje/zakljucna_dela/view/159.

Public Health England. (2013) Part of: Children's health and Obesity and healthy eating. Retrieved from: https://www.gov.uk/government/uploads/system/uploads/attachment_data/file/232978/Smart_Restart_280813_web.pdf

Raychaudhuri, M., & Sanyal, D. (2012). Childhood obesity: Determinants, evaluation, and prevention. Indian Journal of Endocrinology and Metabolism, 16(Suppl 2), S192-194.

Richter, A., Jekauc, D., Woll, A., & Schwameder, A. (2010). Effects of age, gender and activity level on countermovement jump performance and variability in children and adolescents. In: 28 International Conference on Biomechanics in Sports.

Runge, M., Rittweger, J., Russo, C. R., Schiessl, H., & Felsenberg, D. (2004). Is muscle power output a key factor in the age-related decline in physical performance? A comparison in muscle cross section, chair-rising test and jump power. Clinical Physiology and Functional Imaging, 24(6), 335–340.

Sale, D. G. (1988). Neural adaptation to resistance training. Medicine and Science in Sports and Exercise, 20(Suppl. 5), S135–S143.

Sánchez-Muñoz, C., Rodríguez, M. A., Casimiro-Andújar, A. J., Ortega, F. B., Mateo-March, M., Zabala M. (2011). Physical profile of elite young motorcyclists. International Journal of Sports Medicine, 32(10), 788–793.

Shetty, A. B., & Etnyre, B. R. (1989). Contribution of arm movement to the force components of a maximum vertical jump. Journal of Orthopaedic and Sports Therapy, 11(5), 198–201.

Shorten, M. R. (1987). Muscle elasticity and human performance. Medicine and Sport Science, 25, 1–18.

Skidmore, P. M., & Yarnell, J. W. (2004). The obesity epidemic: prospects for prevention. QJM: monthly journal of the Association of Physicians, 97(12), 817–825.

Van Soest, A. J., Roebroeck, M. E., Bobbert, M. F., Huijing, P. A., & van Ingen Schenau, G. J. (1985). A comparison of one legged and two legged countermovement jumps. Medicine and Science in Sports and Exercise, 17(6), 635–639.

Šimunič, B., Degens, H., Rittweger, J., Narici, M. V., Mekjavić, I. B., & Pišot, R. (2011). Noninvasive estimation of myosin heavy chain composition in human skeletal muscle. Medicine and science in sports and exercise, ISSN 0195-9131, 43(9), 1619–1625.

Temfemo, A., Hugues, J., Chardon, K., Mandengue, S. H., & Ahmaidi, S. (2009). Relationship between vertical jumping performance and anthropometric characteristics during growth in boys and girls. European Journal of Pediatrics, 168(4),457–464.

Vles, J. S. H., Kroes, M., & Feron, F. J. M. (2004). MMT: Maastricht Motoriek Test. Leiden: PITS

Volmut, T., Pišot, R., & Šimunič, B. (2016). The effect of regular sport exercise on muscle contractile properties in children. In F. Eminović, & M. Dopsaj (Eds.). Physical activity effects on the anthropological status of children, youth and adults, (Physical fitness, diet and exercise) (pp 41–53). New York: Nova Science Publishers.

Warburton, D. E. R, Nicol, C. W., & Bredin, S. S. D. (2006). Health benefits of physical activity: the evidence. Canadian Medical Association Journal, 174(6), 801–809.

Wilson, G. J., Newton, R. U., Murphy, A. J., & Humphries, B. J. (1993). The optimal training load for the development of dynamic athletic performance. Medicine and Science in Sports and Exercise, 25(11), 1279–1286.

Wisløff, U., Castagna, C., Helgerud, J., Jones, R., & Hoff, J. (2004). Strong correlation of maximal squat strength with sprint performance and vertical jump height in elite soccer players. British Journal of Sports Medicine, 38(3), 285–288.

Yanci, J., & Camara J. (2016). Bilateral and unilateral vertical ground reaction forces and leg asymmetries in soccer players. Biology of Sport. 33(2), 179–183.

Young, W. (1995). Specificity of Jumping ability. Sports Coach. 18, 22–25.

Završnik, J., Pišot, R., Volmut, T., Koren, K., Blažun, H., Kokol, P., Vošner, J., & Šimunič, B. (2016). Lower correlation between biceps femoris contraction time and maximal running speed in children than in adults: a longitudinal study in 9- to 14- year old children. Annales Kinesiologiae, 7(1), 21-42.

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Published

24-01-2017

How to Cite

Koren, K., Pišot, R., & Šimunič, B. (2017). VERTICAL JUMP HEIGHT IN YOUNG CHILDREN - A LONGITUDINAL STUDY IN 4- TO 6-YEAR OLD CHILDREN. Annales Kinesiologiae, 7(2), 153–170. Retrieved from http://ojs.zrs-kp.si/index.php/AK/article/view/121

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