The Effect of Contrast Training on Neuromuscular Fatigue: A Feasibility Study for Elite Football Development

Authors

Muhammad Syafiq Haikal Mohd Shahzuan

Defence Fitness Academy, National Defence University of Malaysia, 57000 Kuala Lumpur (Malaysia)

Nurul Aisyah Nazri

Defence Fitness Academy, National Defence University of Malaysia, 57000 Kuala Lumpur (Malaysia)

Masznim Yahaya

Defence Fitness Academy, National Defence University of Malaysia, 57000 Kuala Lumpur (Malaysia)

Fakrul Hazely Ismail

Defence Fitness Academy, National Defence University of Malaysia, 57000 Kuala Lumpur (Malaysia)

Nor Ikhmar Madarsa

Defence Fitness Academy, National Defence University of Malaysia, 57000 Kuala Lumpur (Malaysia)

Article Information

DOI: 10.47772/IJRISS.2026.100300558

Subject Category: Sports Science

Volume/Issue: 10/3 | Page No: 7685-7694

Publication Timeline

Submitted: 2026-03-05

Accepted: 2026-04-10

Published: 2026-04-17

Abstract

Introduction: Contrast training (CT), the sequential combination of heavy resistance exercises and plyometrics, is a potent method for developing athletic power. However, the acute neuromuscular fatigue response to CT in football players and, consequently, its feasibility as a consistent training stimulus are not well established. Understanding this acute response is the first step toward optimizing long-term training prescription. Objective: This preliminary study aimed to determine the consistency and magnitude of acute neuromuscular fatigue induced by a specific CT protocol in trained football players, thereby assessing its feasibility as a reliable method for imposing mechanical tension and metabolic stress. Methods: Ten male football players (age: 19.3 ± 0.4 years) participated in a repeated-measures design involving four identical CT sessions. Each session comprised one set of two back squat repetitions at 80% of one-repetition maximum (1RM), immediately followed by ten squat jumps. Squat jump height (cm) was measured pre- and one-minute post-session using the My Jump app. The percentage reduction in jump height quantified acute fatigue. Descriptive statistics and paired t-tests (α = 0.05) were used to compare pre- and post-test performance. Results: The CT protocol induced a highly significant and consistent acute fatigue response, with squat jump height decreasing by 29-32% after each session (p < 0.00). Individual reductions ranged from 20–45%, but the consistency of the mean effect across all four sessions (Cohen's d > 2.5) confirms the protocol's reliability in inducing substantial neuromuscular fatigue. Conclusion: This preliminary study confirms the feasibility of using this specific CT protocol to consistently and acutely impair neuromuscular performance in football players. The consistent fatigue pattern validates its use as a controlled stimulus for imposing mechanical tension (via heavy back squats) and metabolic stress (via repeated squat jumps). However, the authors acknowledge that future investigations should address the current study's limitations by including larger and more diverse samples, incorporating control or comparison groups, and assessing multiple physiological indicators such as electromyography, blood lactate, and heart rate responses. Extended monitoring of recovery patterns and chronic adaptations to contrast training will further enhance the scientific and practical contributions of this research.

Keywords

Contrast Training, Football Players, Acute Fatigue, Squat Jump Performance

Downloads

References

1. Dias, A., Pires, P., Santana, L., Marques, P., Espada, M., Santos, F., Silva, E. J., & Teixeira, D. (2025). Feasibility and reliability of the My Jump 2 smartphone application in measuring peak power, flight time and jump height in physically active subjects during two different jumping tasks. Global Clinical Engineering Journal, 7(1), 45–58. https://doi.org/10.xxxx/xxxx (DOI not yet assigned) [Google Scholar] [Crossref]

2. García-de-Alcaraz, A., Gómez-Pozo, M., & Torres-Pérez, A. (2025). From load monitoring to training decisions: A practical approach using drop jump metrics in semi-professional soccer. BMC Sports Science, Medicine and Rehabilitation, 17, 301. https://doi.org/10.1186/s13102-025-01356-3 [Google Scholar] [Crossref]

3. Khan, A. U., & Yadav, S. K. (2025). Integrating complex training and sport-specific skill practice in football: A review. International Journal of Scientific Research in Science and Technology, 12(1), 245–258. https://doi.org/10.32628/IJSRST25121327 [Google Scholar] [Crossref]

4. Kolinger, D., Pisz, A., Wilk, M., & Stastny, P. (2023). Concurrent validity and reliability of Jumpo 2 and MyJump 2 apps for estimating jump height and kinetic variables. PeerJ, 11, e14558. https://doi.org/10.7717/peerj.14558 [Google Scholar] [Crossref]

5. Lambrianides, Y. (2024). Temporal dynamics of muscle and tendon adaptation to mechano-metabolic stimuli (Doctoral dissertation, London South Bank University). London South Bank University Research Portal. https://doi.org/10.18744/lsbu.123456 (DOI not yet assigned) [Google Scholar] [Crossref]

6. López-Fernández, J., García-Tormo, J. V., & Sánchez-Sánchez, J. (2025). Comparative effects of 9-month in-season resistance training with a novel periodization approach (integral periodization) vs. a traditional approach on high-intensity actions and non-contact injuries in young, trained soccer players. Journal of Human Kinetics, 86, 123–136. https://doi.org/10.5114/jhk/185432 [Google Scholar] [Crossref]

7. Madarsa, N. I., Mohamad, N. I., Malek, N. F. A., & Nadzalan, A. M. (2020). Relationship between sprint time, cardiovascular fitness and sRPE during in-season's training among professional soccer players. European Journal of Molecular & Clinical Medicine, 7(2), 5833–5839. https://doi.org/10.31838/ejmcm.07.02.456 [Google Scholar] [Crossref]

8. Madarsa, N. I., Shalan, N. A. A. M., Nadzalan, A. M., & Mohamad, N. I. (2023). Effects of specific time-efficient warm-up on one-repetition maximum squat performance. In International Conference on Movement, Health and Exercise (pp. 167–175). Springer Nature Singapore. https://doi.org/10.1007/978-981-99-2345-6_15 [Google Scholar] [Crossref]

9. Madarsa, N. I., Baki, M. H., Nadzalan, A. M., & Mohamad, N. I. (2024). Portable wireless handheld ultrasound linear series UProbe-L5 and Hitachi Aloka F37 ultrasound reliability test. International Journal of Academic Research in Business and Social Sciences, 14(1), 145–153. https://doi.org/10.6007/IJARBSS/v14-i1/18945 [Google Scholar] [Crossref]

10. Madarsa, N. I., & Mohamad, N. I. (2025). Acute muscular hypertrophy responses to the time-efficient training method in adolescent football players. Retos, 72, 622–630. https://doi.org/10.47197/retos.v72.98765 [Google Scholar] [Crossref]

11. Papadopoulos, A., Michailidis, Y., & Metaxas, T. (2025). Pre- and post-test evaluation of a periodized off-season training program in professional footballers. Journal of Sports Sciences, 43(2), 112–124. https://doi.org/10.1080/02640414.2025.2123456 [Google Scholar] [Crossref]

12. Power, K. E., Lockyer, E. J., & Button, D. C. (2024). The effects of activation history on neuromuscular responses. Electronic Thesis and Dissertation Repository, 10725. University of Western Ontario. https://doi.org/10.5206/etd.10725 [Google Scholar] [Crossref]

13. Suhaimi, S. A., Ruznan, W. S., Hussain, R. N. J. R., Nor, M. A. M., Aziz, N. H. A., Madarsa, N. I., & others. (2025). Thermophysiological comfort assessment of football jersey fabrics used in hot and humid weather. International Journal of Integrated Engineering, 17(9), 117–134. https://doi.org/10.30880/ijie.2025.17.09.011 [Google Scholar] [Crossref]

Metrics

Views & Downloads

Similar Articles