Central European Journal of Sport Sciences and Medicine

ISSN: 2300-9705     eISSN: 2353-2807    OAI    DOI: 10.18276/cej.2023.4-08
CC BY-SA   Open Access   DOAJ  DOAJ

Lista wydań / Vol. 44, No. 4/2023
Virtual-Based Aquatic Plyometric Training: How it Effects Lower Extremity Muscle Strength?

Autorzy: Viktor Simanjuntak ORCID
Faculty of Teacher Training and Education, University of Tanjung Pura, Indonesia

Edi Setiawan ORCID
Faculty of Teacher Training and Education, University of Suryakancana, Indonesia

Novi Yanti ORCID
Faculty of Teacher Training and Education, University of Tanjung Pura, Indonesia

Yudha Isnaini Lalu Moh ORCID
Faculty of Teacher Training and Education, University of Nahdlatul Ulama Nusa Tenggara Barat, Indonesia

Mashuri Eko Winarno ORCID
Faculty of Sport Science, University of Negeri Malang, Indonesia
Słowa kluczowe: virtual-based plyometric aquatic lower extremity muscle strength mixed methods research
Data publikacji całości:2023
Liczba stron:12 (95-106)
Cited-by (Crossref) ?:

Abstrakt

The low achievement of long jump athletes and the limited virtual-based aquatic plyometric exercises to increase lower extremity muscle strength are the gaps in this study. This study aims to increase lower extremity muscle strength of long jump athletes through virtual-based plyometric aquatic training. This research adopted a mixed methods research. This study involved participants from long jump athletes at the University of Tanjung Pura in Indonesia (n = 20). Participants were divided into two groups, namely an experimental group (n = 10) and control group (n = 10). The quantitative instrument involved a leg dynamometer for measuring lower extremity muscle strength. While, the qualitative instrument used in-depth interview. Quantitative data analysis was carried out through IBM SPSS to calculate descriptive statistics and normality, while the paired sample t-test to test differences in lower extremity muscle strength values in the experimental and control groups. Qualitative analysis was carried out through recording, describing and coding stages, which categorized into three themes. Based on quantitative results, it showed that virtual-based plyometric aquatic training was proven significantly increase lower extremity muscle strength (ps0.05), but there was no significant effect in the control group (p & 0.05). Qualitative results found out that most of the participants gave a positive opinion regarding virtual-based plyometric aquatics. Thus, this study confirms that virtual-based plyometric aquatic training can be used to increase lower extremity muscle strength.
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Bibliografia

1.Allam, H. H., Muhsen, A., Al-Walah, M. A., Alotaibi, A. N., Alotaibi, S. S., & Elsayyad, L. K. (2021). Effects of Plyometric Exercises versus Flatfoot Corrective Exercises on Postural Control and Foot Posture in Obese Children with a Flexible Flatfoot. Applied Bionics and Biomechanics, 2021. https://doi.org/10.1155/2021/3635660
2.Aloui, G., Hermassi, S., Bartels, T., Hayes, L. D., Bouhafs, E. G., Chelly, M. S., & Schwesig, R. (2022). Combined Plyometric and Short Sprint Training in U-15 Male Soccer Players: Effects on Measures of Jump, Speed, Change of Direction, Repeated Sprint, and Balance. Frontiers in Physiology, 13(February), 1–9. https://doi.org/10.3389/fphys.2022.757663
3.Ameer, A. Al. (2020). The Effects of Plyometric and Resistance Training on Selected Fitness Variables among University Soccer-Playing Adults. Ann Appl Sport Sci, 8(3), 2–5. http://www.aassjournal.com
4.Arazi, H., Mohammadi, M., & Asadi, A. (2014). Muscular adaptations to depth jump plyometric training: Comparison of sand vs. land surface. Interventional Medicine and Applied Science, 6(3), 125–130. https://doi.org/10.1556/IMAS.6.2014.3.5
5.Arntz, F., Mkaouer, B., Markov, A., Schoenfeld, B. J., Moran, J., Ramirez-Campillo, R., Behrens, M., Baumert, P., Erskine, R. M., Hauser, L., & Chaabene, H. (2022). Effect of Plyometric Jump Training on Skeletal Muscle Hypertrophy in Healthy Individuals: A Systematic Review With Multilevel Meta-Analysis. Frontiers in Physiology, 13(June), 1–17. https://doi.org/10.3389/fphys.2022.888464
6.Asadi, A., & Arazi, H. (2012). Effects of high-intensity plyometric training on dynamic balance, agility, vertical jump and sprint performance in young male basketball players. Journal of Sport and Health Research, 4(1), 35–44.
7.Behm, D. G., Young, J. D., Whitten, J. H. D., Reid, J. C., Quigley, P. J., Low, J., Li, Y., Lima, C. D., Hodgson, D. D., Chaouachi, A., Prieske, O., & Granacher, U. (2017). Effectiveness of traditional strength vs. power training on muscle strength, power and speed with youth: A systematic review and meta-analysis. Frontiers in Physiology, 8(JUN). https://doi.org/10.3389/fphys.2017.00423
8.Biswas, R., & Ghosh, S. S. (2022a). Effect of plyometric training in land surface aquatic medium & aquatic medium with a weighted vest on the aerobic capacity of athletes. Journal of Physical Education and Sport, 22(4), 930–940. https://doi.org/10.7752/jpes.2022.04118
9.Biswas, R., & Ghosh, S. S. (2022b). Effect of Varied Plyometric Training in Land and Aquatic Medium on Anaerobic Power of Athletes. Journal of Physical Education (Maringa), 33(1), 1–12. https://doi.org/10.4025/jphyseduc.v33i1.3334
10.Branquinho, L., Ferraz, R., Teixeira, J., Neiva, H. P., Sortweel, A., Forte, P., Marinho, D. A., & Marques, M. C. (2022). Effects of a Plyometric Training Program in Sub-Elite Futsal Players during Pre-Season Period. International Journal of Kinesiology and Sports Science, 10(2), 42–50. https://doi.org/10.7575/aiac.ijkss.v.10n.2p.42
11.Chomani, S. H., Dzay, A. M., Khoshnaw, K. K., Joksimovic, M., Lilic, A., & Mahmood, A. (2021). Effect of Aquatic Plyometric Training on Motor Ability in Youth Football Players. Health, Sport, Rehabilitation, 7(1), 66–76. https://doi.org/https://doi.org/10.34142/HSR.2021.07.01.06
12.Cha, R. H., & Lee, G. S. (2021). Steady exercise improves hand grip and leg muscle strength in hemodialysis patients. Journal of exercise rehabilitation, 17(6), 435–443. https://doi.org/10.12965/jer.2142616.308
13.Dell'Antonio, E., Ruschel, C., Hubert, M., Lucas, R. D., Haupenthal, A., & Roesler, H. (2022). The Effect of Aquatic Plyometric Training on Jump Performance Including a Four-week Follow-up in Youth Female Volleyball Players. Journal of human kinetics, 83, 197–205. https://doi.org/10.2478/hukin-2022-0058
14.de Villarreal, E. S. S., Requena, B., & Newton, R. U. (2010). Does plyometric training improve strength performance? A meta-analysis. Journal of Science and Medicine in Sport, 13(5), 513–522. https://doi.org/10.1016/j.jsams.2009.08.005
15.Falch, H. N., Haugen, M. E., Kristiansen, E. L., & van den Tillaar, R. (2022). Effect of Strength vs. Plyometric Training upon Change of Direction Performance in Young Female Handball Players. International Journal of Environmental Research and Public Health, 19(11). https://doi.org/10.3390/ijerph19116946
16.Gani, R. A., Achmad, I. Z., Julianti, R. R., Setiawan, E., Németh, Z., Muzakki, A., Yanti, N., & Habibie, H. (2022). Does the Athletes’ Leg Muscle Power Increase After the Tabata Aquatic Program? Teorìâ Ta Metodika Fìzičnogo Vihovannâ, 22(1), 56–61. https://doi.org/10.17309/tmfv.2022.1.08
17.Gjinovci, B., Idrizovic, K., Uljevic, O., & Sekulic, D. (2017). Plyometric training improves sprinting, jumping and throwing capacities of high level female volleyball players better than skill-based conditioning. Journal of Sports Science and Medicine, 16(4), 527–535.
18.González, L. M., Devís-Devís, J., Pellicer-Chenoll, M., Pans, M., Pardo-Ibañez, A., García-Massó, X., Peset, F., Garzón-Farinós, F., & Pérez-Samaniego, V. (2021). The impact of COVID-19 on sport in twitter: A quantitative and qualitative content analysis. International Journal of Environmental Research and Public Health, 18(9). https://doi.org/10.3390/ijerph18094554
19.Grgic, J., Schoenfeld, B. J., & Mikulic, P. (2021). Effects of plyometric vs. resistance training on skeletal muscle hypertrophy: A review. Journal of Sport and Health Science, 10(5), 530–536. https://doi.org/10.1016/j.jshs.2020.06.010
20.Grix, J., Brannagan, P. M., Grimes, H., & Neville, R. (2021). The impact of Covid-19 on sport. International Journal of Sport Policy and Politics, 13(1), 1–12. https://doi.org/10.1080/19406940.2020.1851285
21.Guan, S., Lin, N., Yin, Y., Liu, H., Liu, L., & Qi, L. (2021). Electromyography Activity, and Tissue Oxygenation during Plyometric Training. Sensors (Basel, Switzerland), 21(9), 3015. https://doi.org/https://doi.org/10.3390/s21093015
22.Guimarães, M. P., Silva, R. D. O., Dos Santos, I. A., Da Silva, G. P., Campos, Y. A. C., Da Silva, S. F., & De Azevedo, P. H. S. M. (2023). Effect of 4 weeks of plyometric training in the pre-competitive period on volleyball athletes' performance. Biology of sport, 40(1), 193–200. https://doi.org/10.5114/biolsport.2023.112971
23.Hasan, S., Kandasamy, G., Alyahya, D., Alonazi, A., Jamal, A., Iqbal, A., Unnikrishnan, R., & Muthusamy, H. (2022). Effect of plyometric training and neuromuscular electrical stimulation assisted strength training on muscular, sprint, and functional performances in collegiate male football players. PeerJ, 10(e13588). https://doi.org/10.7717/peerj.13588
24.Hasan, S., Kandasamy, G., Alyahya, D., Alonazi, A., Jamal, A., Unnikrishnan, R., Muthusamy, H., & Iqbal, A. (2021). Effect of resisted sprint and plyometric training on lower limb functional performance in collegiate male football players: A randomised control trial. International Journal of Environmental Research and Public Health, 18(13), 1–12. https://doi.org/10.3390/ijerph18136702
25.Ioannides, C., Apostolidis, A., Hadjicharalambous, M., & Zaras, N. (2020). Effect of a 6-week plyometric training on power, muscle strength, and rate of force development in young competitive karate athletes. Journal of Physical Education and Sport, 20(4), 1740–1746. https://doi.org/10.7752/jpes.2020.04236
26.Juliantine, T., & Setiawan, E. (2022). Effect Of Tactical Game Models On Formation Of Basic Techniques In Handball Players : Mixed Method. Teorìâ Ta Metodika Fìzičnogo Vihovannâ, 22(3), 373–378. https://doi.org/10.17309/tmfv.2022.3.11
27.Khan, W., Arif, T., Muhammad, K. K., Sohail, S. N., & Kriventsova, I. V. (2020). Effects of varied packages of plyometric training on selected motor ability components among university students. Physical Education of Students, 24(5), 278–285. https://doi.org/10.15561/20755279.2020.0504
28.Kurniawan, C., Setijono, H., Hidayah, T., Hadi, H., & Sugiharto, S. (2021). The effect plyometric training with active-passive recovery for 8 weeks on performance physical abilities male judo athletes. Pedagogy of Physical Culture and Sports, 25(6), 361–366. https://doi.org/10.15561/26649837.2021.0604
29.Marshall, S., McNeil, N., Seal, E. L., & Nicholson, M. (2022). Elite sport hubs during COVID-19: The job demands and resources that exist for athletes. PLoS ONE, 17(7 July), 1–16. https://doi.org/10.1371/journal.pone.0269817
30.Morris, S. J., Oliver, J. L., Pedley, J. S., Haff, G. G., & Lloyd, R. S. (2022). Comparison of Weightlifting, Traditional Resistance Training and Plyometrics on Strength, Power and Speed: A Systematic Review with Meta-Analysis. Sports Medicine, 52(7), 1533–1554. https://doi.org/10.1007/s40279-021-01627-2
31.Peitz, M., Behringer, M., & Granacher, U. (2018). A systematic review on the effects of resistance and plyometric training on physical fitness in youth-What do comparative studies tell us. PLoS ONE, 13(11), 1–44. https://doi.org/10.1371/journal.pone.0207641
32.Permana, D. ., Kusnanik, N. ., Nurhasan, N., Setijono, H., Arifin, M. ., & Purwoto, S. . (2022). Enhancing Strength, Leg Muscle Explosive Power, and Muscle Hypertrophy Using Hurdle-Box Jump Plyometric. Physical Education Theory and Methodology, 22(1), 113–120. https://doi.org/10.17309/TMFV.2022.1.16
33.Ramírez, M., Sánchez, A. B., García, P. E., Jiménez, F., & Vicén, J. A. (2022). Effects of Plyometric Training on Lower Body Muscle Architecture, Tendon Structure, Stiffness and Physical Performance : A Systematic Review and Meta ‑ analysis. Sports Med Open, 8(1)(40), 1–29. https://doi.org/10.1186/s40798-022-00431-0
34.Ren, Y., Luo, B., & Chu, J. (2022). Biomechanical Research on Special Ability of Long Jump Take-Off Muscle Based on Multisource Information Fusion. Applied Bionics and Biomechanics, 2022, 1–13. https://doi.org/10.1155/2022/2556087
35.Taher, A. V., Pavlovic, R., Ahanjan, S., Skrypchenko, I., & Joksimovic, M. (2021). Effects of vertical and horizontal plyometric exercises on explosive capacity and kinetic variables in professional long jump athletes. Pedagogy of Physical Culture and Sports, 25(2), 108–113. https://doi.org/10.15561/26649837.2021.0205
36.Thaqi, A., Berisha, M., & Hoxha, S. (2020). The effect of plyometric training on the power-related factors of children aged 16 years-old. Progress in Nutrition, 22(September). https://doi.org/10.23751/pn.v22i2-S.10441
37.Zekri, N., Bashardoust Tajali, S., & Ghotbi, N. (2019). Immediate Effects of Plyometric Exercises on Speed, Balance and Jump Ability of Amateur Futsal Players: A Randomized Control Trial. Journal of Modern Rehabilitation, 13(4), 227–236. https://doi.org/10.32598/jmr.13.4.229
38.Zghal, F., Colson, S. S., Blain, G., Behm, D. G., Granacher, U., & Chaouachi, A. (2019). Combined resistance and plyometric training is more effective than plyometric training alone for improving physical fitness of pubertal soccer players. Frontiers in Physiology, 10(AUG), 1–11. https://doi.org/10.3389/fphys.2019.01026
39.Zhou, H., Yu, P., Thirupathi, A., & Liang, M. (2020). How to improve the standing long jump performance? A mininarrative review. Applied Bionics and Biomechanics, 2020. https://doi.org/10.1155/2020/8829036
40.Znazen, H., Hammami, A., Bragazzi, N. L., Hadadi, A., & Slimani, M. (2022). Effects of Different Acute Plyometric Training Intensities on Attention and Psychological States. International Journal of Environmental Research and Public Health, 19(22), 14959. https://doi.org/10.3390/ijerph192214959