Is Countermovement Jump Height and One Repetition Maximum Back Squat Associated With the Peak Force of a Front Kick With and Without Carried Load?
Jazyk angličtina Země Spojené státy americké Médium electronic
Typ dokumentu časopisecké články
PubMed
40440537
PubMed Central
PMC12282594
DOI
10.1519/jsc.0000000000005128
PII: 00124278-990000000-00703
Knihovny.cz E-zdroje
- Klíčová slova
- hand to hand combat, martial arts, performance, self-defense, strength, training,
- MeSH
- biomechanika MeSH
- dospělí MeSH
- kosterní svaly fyziologie MeSH
- lidé MeSH
- mladý dospělý MeSH
- odporový trénink * metody MeSH
- pohyb fyziologie MeSH
- sportovní výkon * fyziologie MeSH
- svalová síla * fyziologie MeSH
- vzpírání fyziologie MeSH
- zatížení muskuloskeletálního systému fyziologie MeSH
- Check Tag
- dospělí MeSH
- lidé MeSH
- mladý dospělý MeSH
- mužské pohlaví MeSH
- Publikační typ
- časopisecké články MeSH
Oláh, V, Třebický, V, Maleček, J, Michalička, V, Wąsik, J, and Vágner, M. Is countermovement jump height and one repetition maximum back squat associated with the peak force of a front kick with and without carried load? J Strength Cond Res 39(8): 880-889, 2025-The front kick is a fundamental technique used in self-defense and hand to hand combat. This study aimed to test whether front kick performance, both with and without a 30-kg carried load, can be effectively estimated or tracked through commonly available testing procedures such as the countermovement jumps (CMJ) and one repetition maximum back squat (1RM BS). In 2 testing sessions, 21 male participants (mean age = 22.7 years, SD = 1.9) performed 1RM BS, 5 front kicks peak force (FK) without and with 30-kg carried load (FK30), and 3 CMJ without and with 30-kg carried load (CMJ30). A force plate measured the peak force ( N ) of the FK and FK30 and the height (cm) of the CMJ and CMJ30. Statistically significant correlations were found between CMJ and FK ( r = 0.55 [0.225-1], p = 0.005) and CMJ and 1RM BS ( r = 0.54 [0.219-1, p = 0.005]). Carried load reduced both CMJ height by 61% ( d = 3.35 [2.543-∞], p < 0.001) and FK peak force by 23% ( d = 1.33 [0.828-∞], p < 0.001), compared without load condition. A regression model using 1RM BS and CMJ explained 31.5% of FK variance, with only the height of CMJ being statistically significantly associated, β = 0.626, p = 0.015. The study demonstrates that although there is a relationship between explosive power and maximum strengths, FK is more related to CMJ height than 1RM BS. From a practical standpoint, the study suggests that explosive power shows a better association with the FK than the maximal strength. Thus, training programs focused on lower limb explosive power could allow athletes and military personnel to achieve higher FK. Combat sports trainers and hand-to-hand combat instructors may thus consider accordingly updating their training schemes, emphasizing plyometrics and other explosive training methods for enhancing the peak force of kicks.
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Aagaard P, Simonsen EB, Andersen JL, Magnusson P, Dyhre-Poulsen P. Increased rate of force development and neural drive of human skeletal muscle following resistance training. J Appl Physiol (1985) 93: 1318–1326, 2002. PubMed
Atha J, Yeadon MR, Sandover J, Parsons KC. The damaging punch. BMJ 291: 1756–1757, 1985. PubMed PMC
Barker LA, Harry JR, Mercer JA. Relationships between countermovement jump ground reaction forces and jump height, reactive strength index, and jump time. J Strength Cond Res 32: 248–254, 2018. PubMed
Birrell SA, Hooper RH, Haslam RA. The effect of military load carriage on ground reaction forces. Gait Posture 26: 611–614, 2007. PubMed
Chiodo S, Tessitore A, Cortis C, et al. Effects of official taekwondo competitions on all-out performances of elite athletes. J Strength Cond Res 25: 334–339, 2011. PubMed
Courel-Ibáñez J, Hernández-Belmonte A, Cava-Martínez A, Pallarés JG. Familiarization and reliability of the isometric knee extension test for rapid force production assessment. Appl Sci 10: 4499, 2020.
Del Balso C, Cafarelli E. Adaptations in the activation of human skeletal muscle induced by short-term isometric resistance training. J Appl Physiol (1985) 103: 402–411, 2007. PubMed
Do Carmo EC, De Souza EO, Roschel H, et al. Self-selected rest interval improves vertical jump postactivation potentiation. J Strength Cond Res 35: 91–96, 2021. PubMed
Estevan I, Álvarez O, Falco C, Molina-García J, Castillo I. Impact force and time analysis influenced by execution distance in a roundhouse kick to the head in taekwondo. J Strength Cond Res 25: 2851–2856, 2011. PubMed
Estevan I, Falco C, Silvernail JF, Jandacka D. Comparison of lower limb segments kinematics in a taekwondo kick. An approach to the proximal to distal motion. J Hum Kinet 47: 41–49, 2015. PubMed PMC
Fish L, Scharre P. The Soldier's Heavy Load, 2018. Available at: https://www.cnas.org/publications/reports/the-soldiers-heavy-load-1.
Fowler NE, Lees A. A comparison of the kinetic and kinematic characteristics of plyometric drop-jump and pendulum exercises. J Appl Biomech 14: 260–275, 1998. PubMed
Gavagan CJ, Sayers MGL. A biomechanical analysis of the roundhouse kicking technique of expert practitioners: A comparison between the martial arts disciplines of muay thai, karate, and taekwondo. PLoS One 12: e0182645, 2017. PubMed PMC
Goulart KN, Corgosinho RF, Rodrigues SA, et al. Correlation between roundhouse kick and countermovement jump performance. Arch Budo 12: 125–131, 2017.
Grgic J, Lazinica B, Schoenfeld BJ, Pedisic Z. Test–retest reliability of the one-repetition maximum (1RM) strength assessment: A systematic review. Sports Med Open 6: 31, 2020. PubMed PMC
Gulia S, Shaw D. Two-dimensional biomechanical analysis of front kick and front toe kick of female national level taekwondo players. Sports Health 9: 130–134, 2022.
Hojka V Šťastný PJ. Tufano J et al. Does a linear position transducer placed on a stick and belt provide sufficient validity and reliability of countermovement jump performance outcomes? Biol Sport 39: 341–348, 2022. PubMed PMC
Hopkins WG. Measures of reliability in sports medicine and science: Sports Med 30: 1–15, 2000. PubMed
Hopkins WG. Replacing statistical significance and non-significance with better approaches to sampling uncertainty. Front Physiol 13: 962132, 2022. PubMed PMC
Huang T-Y, Tang W-T, Liu T-T, Hamill J, Hu C. Kinematic and kinetic demands on better roundhouse kick performances. Sports Biomech 26: 1–15, 2022. PubMed
James LP, Beckman EM, Kelly VG, Haff GG. The neuromuscular qualities of higher- and lower-level mixed-martial-arts competitors. Int J Sports Physiol Perform 12: 612–620, 2017. PubMed
Koo TK, Li MY. A guideline of selecting and reporting intraclass correlation coefficients for reliability research. J Chiropractic Med 15: 155–163, 2016. PubMed PMC
Kuragano T, Yokokura S. Experimental analysis of Japanese martial art Nihon-Kempo. J Research 7: 40–45, 2012.
Lake JP, Mundy PD, Comfort P, et al. Effect of barbell load on vertical jump landing force-time characteristics. J Strength Cond Res 35: 25–32, 2021. PubMed
Lakens D. Sample size justification. Collabra Psychol 8: 33267, 2022.
Lees A, Vanrenterghem J, Clercq DD. Understanding how an arm swing enhances performance in the vertical jump. J Biomech 37: 1929–1940, 2004. PubMed
Lenetsky S, Uthoff A, Coyne J, Cronin J. A review of striking force in full-contact combat sport athletes: Methods of assessment. Strength Cond J 44: 71–83, 2022
Love J, Selker R, Marsman M, et al. JASP: Graphical statistical software for common statistical designs. J Stat Soft 88: 1–17, 2019.
Manolopoulos E, Papadopoulos C, Kellis E. Effects of combined strength and kick coordination training on soccer kick biomechanics in amateur players. Scand J Med Sci Sports 16: 102–110, 2006. PubMed
McGuigan MR, Newton MJ, Winchester JB, Nelson AG. Relationship between isometric and dynamic strength in recreationally trained men. J Strength Cond Res 24: 2570–2573, 2010. PubMed
Merrigan JJ, Stone JD, Martin JR, et al. Applying force plate technology to inform human performance programming in tactical populations. Appl Sci 11: 6538, 2021.
Merrigan JJ, Stone JD, Ramadan J, Hagen JA, Thompson AG. Dimensionality reduction differentiates sensitive force-time characteristics from loaded and unloaded conditions throughout competitive military training. Sustainability 13: 6105, 2021.
Merrigan JJ, Stone JD, Thompson AG, Hornsby WG, Hagen JA. Monitoring neuromuscular performance in military personnel. Int J Environ Res Public Health 17: 9147, 2020. PubMed PMC
Neto OP, Silva JH, Marzullo AC, Bolander RP, Bir CA. The effect of hand dominance on martial arts strikes. Hum Mov Sci 31: 824–833, 2012. PubMed PMC
Oliver JM, Jagim AR, Sanchez AC, et al. Greater gains in strength and power with intraset rest intervals in hypertrophic training. J Strength Cond Res 27: 3116–3131, 2013. PubMed
Parchmann CJ, McBride JM. Relationship between functional movement screen and athletic performance. J Strength Cond Res 25: 3378–3384, 2011. PubMed
Pozo J, Bastien G, Dierick F. Execution time, kinetics, and kinematics of the PubMed
Prastowo B, Rahmanto S. Explosive power of front kick in the perform of martial art athletes. Phys Ther J 1: 38–40, 2020.
Ramakrishnan KR, Wang H, Shankar K, Fien A. A new method for the measurement and analysis of biomechanical energy delivered by kicking. Sports Eng 21: 53–62, 2018.
Robertson DGE, Fernando C, Hart M, Beaulieu F. Biomechanics of the Karate Front-Kick. School of Human Mechanics. Ottawa, Canada: University of Ottawa, 2002.
Robertson GR. How Biomechanics can Improve Sports Performance (Vol. 2011). Medellín, Colombia. Instituto Universitario de Educación Física, Universidad de Antioquia, 2011.
Sáez Sáez De Villarreal E, Izquierdo M, Gonzalez-Badillo JJ. Enhancing jump performance after combined vs. maximal power, heavy-resistance, and plyometric training alone. J Strength Cond Res 25: 3274–3281, 2011. PubMed
Scheel AM, Tiokhin L, Isager PM, Lakens D. Why hypothesis testers should spend less time testing hypotheses. Perspect Psychol Sci 16: 744–755, 2021. PubMed PMC
Sforza C, Turci M, Grassi GP, et al. Repeatability of PubMed
Shrout PE, Fleiss JL. Intraclass correlations: Uses in assessing rater reliability. Psychol Bull 86: 420–428, 1979. PubMed
Slinde F, Suber C, Suber L, Edwén CE, Svantesson U. Test-retest reliability of three different countermovement jumping tests. J Strength Cond Res 22: 640–644, 2008. PubMed
Smith MS. Physiological profile of senior and junior England international amateur boxers. J Sports Sci Med 5: 74–89, 2006. PubMed PMC
Snarr RL, Batrakoulis A. Resistance training program design for healthy adults. In: NSCA's Essentials of Personal Training. 3rd ed. BJ Schoenfled and RL Snarr, eds. Champaign, IL: Human Kinetics, 2022. pp. 356–357.
Stojsih S, Boitano M, Wilhelm M, Bir C. A prospective study of punch biomechanics and cognitive function for amateur boxers. Br J Sports Med 44: 725–730, 2010. PubMed
Suetta C, Aagaard P, Rosted A, et al. Training-induced changes in muscle CSA, muscle strength, EMG, and rate of force development in elderly subjects after long-term unilateral disuse. J Appl Physiol (1985) 97: 1954–1961, 2004. PubMed
Svoboda M, Soukup J, Jelen K, Kubový P. Measurement of force impact taekwondo athletes, assessing the possibility of injury of human head. Procedia Eng 136: 211–215, 2016.
Szczęsna A, Błaszczyszyn M, Pawlyta M. Optical motion capture dataset of selected techniques in beginner and advanced Kyokushin karate athletes. Sci Data 8: 13, 2021. PubMed PMC
Tack C. Evidence-based guidelines for strength and conditioning in mixed martial arts. Strength Cond J 35: 79–92, 2013.
Thibordee S, Prasartwuth O. Effectiveness of roundhouse kick in elite Taekwondo athletes. J Electromyogr Kinesiol 24: 353–358, 2014. PubMed
Tillin NA, Pain MTG, Folland JP. Short-term training for explosive strength causes neural and mechanical adaptations: Neuromuscular adaptations with explosive strength training. Exp Physiol 97: 630–641, 2012. PubMed
Tsai G, Liu N-C, Chen G-Y, Huang U, Taiwan T. The Effect of Different Plyometric-Squat Training on Taekwondo Power Development in the Lower Extremity, 1999. Available at: http://rgdoi.net/10.13140/2.1.4665.2167. DOI
Vágner M. K Teorii Boje Zblízka. 1. Vyd. Praha, Czech Republic: Karolinum, 2008.
Vagner M, Cleather D, Kubovy P, Hojka V, Stastny P. Kinematic determinants of front kick dynamics across different loading conditions. Mil Med 187: e147–e153, 2022. PubMed
Vagner M, Cleather DJ, Olah V, Vacek J, Stastny P. A systematic review of dynamic forces and kinematic indicators in the front and roundhouse kicks across varied conditions and participant experience. Sports 11: 141, 2023. PubMed PMC
Vágner M, Malecek J, Štastný P, Kubový P, Hojka V. A carried military load increases the impact force and time of a front kick but reduces the peak velocity of the hip and shoulder of the kicking leg. Arch Budo 16: 69, 2020.
Vagner M, Olah V, Cleather DJ, Stastny P. Evidence-based functional training to improve front push kick technique, speed, and net force production. Strength Cond J 44: 58–68, 2022.
Vágner M, Thiel D, Jelen K, et al. Wearing ballistic and weighted vests increases front kick forces. Archives Budo 14: 231, 2018.
Vágner M, Tomšovský L, Tufano JJ, Kubový P, Jelen K. The effect of military boots on front kick dynamics. AUC Kinanthropologica 54: 129–136, 2018.
Wagner C-M, Warneke K, Bächer C, et al. Despite good correlations, there is No exact coincidence between isometric and dynamic strength measurements in elite youth soccer players. Sports 10: 175, 2022. PubMed PMC
Wąsik J, Mosler D, Góra T, et al. Kinematic differences between traditional and sport version of roundhouse kick executed by male taekwon-do masters. J Mens Health 18: 138, 2022.