Changes in cross-punch speed and torso motion associated with round progression in amateur boxers

Main Article Content

Shinya Kimoto
https://orcid.org/0009-0007-3139-5657
Kanzi Ohyama
Akira Maeda
https://orcid.org/0000-0003-4877-1114

Abstract

The aim of this study was to examine changes in cross-punch speed and trunk motion associated with the progression of rounds in amateur boxing athletes. We included 11 male amateur boxers (height: 167.3 ± 3.8 cm, weight: 65.3 ± 10.1 kg). Cross-punch performance was assessed before and after a 3-minute maximal-effort punching test, based on a previous study by Dunn et al. (2019). Performance was evaluated using an optical three-dimensional motion-capture system, with measurements conducted four times: once under a baseline condition (Pre) and three times under post-test conditions (Post1–Post3). No significant changes in punch speed were observed from Pre to Post1–Post3. The negative values of lower and upper torso axial-rotation angular velocities (rotation opposite to the punching direction) were significantly higher in Post1–Post3 than in Pre. The negative values of torso separation angular velocity and angle (upper torso twisting relative to the lower torso) were significantly higher than Pre in Post1–Post3 for angular velocity and in Post3 for angle. These findings suggest that rapid countermovement of the lower and upper torso and torso separation play an important role in maintaining high punch speed even with increased progression of rounds.

Article Details

How to Cite
Kimoto, S., Ohyama, K., & Maeda, A. (2026). Changes in cross-punch speed and torso motion associated with round progression in amateur boxers. Scientific Journal of Sport and Performance, 5(3), 552–565. https://doi.org/10.55860/LAQA2181
Section
Performance Analysis of Sport and Physical Conditioning
Author Biographies

Shinya Kimoto, National Institute of Fitness and Sports in Kanoya

Graduate School of Physical Education.

Kanzi Ohyama, National Institute of Fitness and Sports in Kanoya

Graduate School of Physical Education.

References

Abe, T., Kearns, C. F., & Fukunaga, T. (2003). Sex differences in whole-body skeletal muscle mass measured by magnetic resonance imaging and its distribution in young Japanese adults. Br. J. Sports Med., 37(5), 436-440. https://doi.org/10.1136/bjsm.37.5.436

Ae, K., Koike, S., & Kawamura, T. (2014). Kinetic analysis of individual upper limbs during baseball tee-batting motion at different hitting-point heights. Jpn. J. Phys. Educ. Health Sport Sci., 59(2), 431-452. https://doi.org/10.5432/jjpehss.13067

Ae, T. (1996). Body partial inertia coefficient of Japanese athletes and infants. Jpn. J. Sports Sci., 15(3), 155-162.

Asmussen, E., & Bonde-Petersen, F. (1974). Storage of elastic energy in skeletal muscles in man. Acta Physiol. Scand., 91(3), 385-392. https://doi.org/10.1111/j.1748-1716.1974.tb05693.x

Aura, O., & Komi, P. V. (1986). Effects of prestretch intensity on mechanical efficiency of positive work and on elastic behavior of skeletal muscle in stretch-shortening cycle exercise. Int. J. Sports Med., 7(3), 137-143. https://doi.org/10.1055/s-2008-1025751

Cavagna, G. A., Dusman, B., & Margaria, R. (1968). Positive work done by a previously stretched muscle. J. Appl. Physiol., 24(1), 21-32. https://doi.org/10.1152/jappl.1968.24.1.21

Cavagna, G. A. (1977). Storage and utilization of elastic energy in skeletal muscle. Exerc. Sport Sci. Rev., 5, 89-129. https://doi.org/10.1249/00003677-197700050-00004

Cheraghi, M., Alinejad, H. A., Arshi, A. R., & Shirzad, E. (2014). Kinematics of straight right punch in boxing. Ann. Appl. Sport Sci., 2(2), 39-50. https://doi.org/10.18869/acadpub.aassjournal.2.2.39

Davis, P., Wittekind, A., & Beneke, R. (2013). Amateur boxing: activity profile of winners and losers. Int. J. Sports Physiol. Perform., 8(1), 84-91. https://doi.org/10.1123/ijspp.8.1.84

Davis, P., Benson, P. R., Pitty, J. D., Connorton, A. J., & Waldock, R. (2015). The activity profile of elite male amateur boxing. Int. J. Sports Physiol. Perform., 10(1), 53-57. https://doi.org/10.1123/ijspp.2013-0474

Davis, P., Connorton, A. J., Driver, S., Anderson, S., & Waldock, R. (2018). The activity profile of elite male amateur boxing after the 2013 rule changes. J. Strength Cond. Res., 32(12), 3441-3446. https://doi.org/10.1519/JSC.0000000000001864

Dunn, E. C., Humberstone, C. E., Iredale, K. F., & Blazevich, A. J. (2019). A damaging punch: Assessment and application of a method to quantify punch performance. Transl. Sports Med., 2(3), 146-152. https://doi.org/10.1002/tsm2.71

Dunn, E. C., Humberstone, C. E., Franchini, E., Iredale, K. F., & Blazevich, A. J. (2021). The effect of fatiguing lower-body exercise on punch forces in highly trained boxers. Eur. J. Sport Sci., 22(7), 964-972. https://doi.org/10.1080/17461391.2021.1916085

El Ashker, S. (2011). Technical and tactical aspects that differentiate winning and losing performances in boxing. Int. J. Perform. Anal. Sport, 11(2), 356-364. https://doi.org/10.1080/24748668.2011.11868555

El-Ashker, S., Chaabene, H., Negra, Y., Prieske, O., & Granacher, U. (2018). Cardio-respiratory endurance responses following a simulated 3 × 3 minutes amateur boxing contest in elite level boxers. Sports, 6(4), 119. https://doi.org/10.3390/sports6040119

Fuchs, P. X., Lindinger, S. J., & Schwameder, H. (2018). Kinematic analysis of proximal-to-distal and simultaneous motion sequencing of straight punches. Sports Biomech., 17(4), 512-530. https://doi.org/10.1080/14763141.2017.1365928

Hernández-Davó, J. L., Sabido, R., Omar-García, M., & Boullosa, D. (2024). Why should athletes brake fast? Influence of eccentric velocity on concentric performance during countermovement jumps at different loads. Int. J. Sports Physiol. Perform., 19(4), 375-382. https://doi.org/10.1123/ijspp.2023-0273

Hukkanen, E., & Häkkinen, K. (2017). Effects of sparring load on reaction speed and punch force during the precompetition and competition periods in boxing. J. Strength Cond. Res., 31(6), 1563-1568. https://doi.org/10.1519/JSC.0000000000001885

Kageyama, M., Iwamoto, M., Sugiyama, T., Mizutani, M., Kanehisa, H., & Maeda, A. (2014). Effect of stretch-shortening cycle and pitching movements elicited by trunk rotation on ball velocity in university baseball pitchers. Jpn. J. Phys. Educ. Health Sport Sci., 59(1), 189-201. https://doi.org/10.5432/jjpehss.13014

Kawamura, T., Shimada, K., Takahashi, K., Morimoto, Y., Koike, S., & Ae, M. (2008). Comparison of kinematics of upper limb motion in baseball batting between high and low bat-speed groups. Jpn. J. Phys. Educ. Health Sport Sci., 53(2), 423-438. https://doi.org/10.5432/jjpehss.a530219

Komi, P. V. (2000). Stretch-shortening cycle: A powerful model to study normal and fatigued muscle. J. Biomech., 33(10), 1197-1206. https://doi.org/10.1016/S0021-9290(00)00064-6

Lenetsky, S., Harris, N., & Brughelli, M. (2013). Assessment and contributors of punching forces in combat sports athletes: Implications for strength and conditioning. Strength Cond. J., 35(2), 1-7. https://doi.org/10.1519/SSC.0b013e31828b6c12

Myers, J., Lephart, S., Tsai, Y.-S., Sell, T., Smoliga, J., & Jolly, J. (2008). The role of upper torso and pelvis rotation in driving performance during the golf swing. J. Sports Sci., 26(2), 181-188. https://doi.org/10.1080/02640410701373543

Nikolaidis, P. T., Clemente, F. M., Busko, K., & Knechtle, B. (2017). Physiological responses to simulated boxing: The effect of sitting versus standing body position during breaks: A pilot study. Asian J. Sports Med., 8(3), e55434. https://doi.org/10.5812/asjsm.55434

Onodera, K., & Miyashita, M. (1976). A study on Japanese scale for rating of perceived exertion in endurance exercise. Jpn. J. Phys. Educ. Health Sport Sci., 21(4), 191-203. https://doi.org/10.5432/jjpehss.KJ00003405473

Pérez-Castilla, A., Rojas, F. J., Gómez-Martínez, F., & García-Ramos, A. (2021). Vertical jump performance is affected by the velocity and depth of the countermovement. Sports Biomech., 20(8), 1015-1030. https://doi.org/10.1080/14763141.2019.1641545

Piorkowski, B. A., Lees, A., & Barton, G. J. (2011). Single maximal versus combination punch kinematics. Sports Biomech., 10(1), 1-11. https://doi.org/10.1080/14763141.2010.547590

Putnam, C. A. (1993). Sequential motions of body segments in striking and throwing skills: Descriptions and explanations. J. Biomech., 26(Suppl. 1), 125-135. https://doi.org/10.1016/0021-9290(93)90084-R

Satkunskiene, D., Bruzas, V., Mickevicius, M., Snieckus, A., & Kamandulis, S. (2024). Impact of leg strength on the force produced during a cross-punch in highly trained amateur boxers. J. Strength Cond. Res., 38(10), 1739-1744. https://doi.org/10.1519/JSC.0000000000004867

Stanley, E., Thomson, E., Smith, G., & Lamb, K. L. (2018). An analysis of the three-dimensional kinetics and kinematics of maximal effort punches among amateur boxers. Int. J. Perform. Anal. Sport, 18(5), 835-854. https://doi.org/10.1080/24748668.2018.1525651

Takahashi, K., Kariyama, Y., Yoshida, T., Hayashi, R., & Asai, T. (2018). Characteristics of force and power outputs during the trunk-twist exercise accompanying stretch-shortening cycle movement. Jpn. J. Phys. Educ. Health Sport Sci., 63(2), 641-657. https://doi.org/10.5432/jjpehss.17110

Takamatsu, K., Aida, H., & Zushi, K. (1991). Effects of isometric and eccentric preliminary muscle contractions on elbow flexion velocity: With special reference to load and range of motion during concentric contraction. Jpn. J. Phys. Educ. Health Sport Sci., 36(2), 127-139. https://doi.org/10.5432/jjpehss.KJ00003391806

Tauchi, K., Minagata, K., Kawamura, T., & Takamatsu, K. (2005). Influence of the trunk twist on bat speed in baseball tee batting. Jpn. J. Coach. Stud., 18(1), 1-9. https://doi.org/10.24776/jcoaching.18.1_1

Tong-Iam, R., Rachanavay, P., & Lawsirirat, C. (2017). Kinematic and kinetic analysis of throwing a straight punch: The role of trunk rotation in delivering a powerful straight punch. J. Phys. Educ. Sport, 17(4), 2538-2543. https://doi.org/10.7752/jpes.2017.04287

Turner, A., Baker, E., & Miller, S. (2011). Increasing the impact force of the rear hand punch. Strength Cond. J., 33(6), 2-9. https://doi.org/10.1519/SSC.0b013e318232fdcb

Van Hooren, B., & Zolotarjova, J. (2017). The difference between countermovement and squat jump performances: A review of underlying mechanisms with practical applications. J. Strength Cond. Res., 31(7), 2011-2020. https://doi.org/10.1519/JSC.0000000000001913

Walshe, A. D., Wilson, G. J., & Ettema, G. J. C. (1998). Stretch-shorten cycle compared with isometric preload: Contributions to enhanced muscular performance. J. Appl. Physiol., 84(1), 97-106. https://doi.org/10.1152/jappl.1998.84.1.97

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