Effects of different squat angles and surface stability on lower limb muscle activation: A surface electromyography study
Keywords:
Biomechanics, Sport, Performance, Physioteraphy, surface ElectromyographyAbstract
Background: The squat is a fundamental lower-body exercise that activates key muscles, including the rectus femoris, vastus medialis oblique, biceps femoris, and semitendinosus. Variations in angle and stability may influence muscle activation, though evidence on their combined effects remains limited. Surface electromyography (sEMG) is a reliable method for assessing these responses for training and injury prevention. Objectives: This study aimed to investigate the effect of squat angle and the use of a balance dome on lower limb muscle activation using sEMG. Methods: A within-subject experimental design with 10 participants examined lower limb muscle activation using surface electromyography (sEMG) during squats at 90° and 120° under stable and unstable conditions. Signals were processed via RMS and MVC normalisation. A two-way repeated-measures ANOVA assessed main and interaction effects, reporting F-values, degrees of freedom (df), and effect sizes (η²p). Bonferroni-adjusted post hoc tests were applied, with p < 0.05 considered significant. Results: A repeated-measures design revealed muscle-specific differences in activation across conditions. Quadriceps activation was higher at 90°, while hamstrings were more responsive to instability. Significant effects were observed for VMO (F(1,9) = 41.201, p < 0.01, η²p = 0.370) and biceps femoris (F(1,9) = 36.720, p < 0.01, η²= 0.517). Overall, squat angle had a stronger influence than stability. Conclusion: Preliminary findings indicate squat muscle activation is muscle-specific and condition-dependent. Quadriceps respond to angle and stability, while hamstrings act as stabilisers. Instability alters neuromuscular strategy. Findings should be interpreted cautiously due to the small sample size and limitations of the EMG.
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Aslam, S., Habyarimana, J. D. D., & Bin, S. Y. (2025). Neuromuscular Adaptations to Resistance Training in Elite Versus Recreational Athletes. Frontiers in Physiology, 16(7), 1–17. https://doi.org/10.3389/fphys.2025.1598149
Cappellini, G., Sylos-Labini, F., Assenza, C., Libernini, L., Morelli, D., Lacquaniti, F., & Ivanenko, Y. (2020). Clinical Relevance of State-of-the-Art Analysis of Surface Electromyography in Cerebral Palsy. Frontiers in Neurology, 11(12), 1–17. https://doi.org/10.3389/fneur.2020.583296
Chagas, A. B., Sonda, F. C., Reichert, L., Rodrigues, D. R., & Vaz, M. A. (2024). Knee Extensor Electromyographic Activity during Different Depths of Squat Exercise in Strength Training Experienced Adults: A Systematic Review. Brazilian Journal of Motor Behavior, 18(1), e384. https://doi.org/10.20338/bjmb.v18i1.384
Chang, W. D., Huang, W. S., & Lai, P. T. (2015). Muscle Activation of Vastus Medialis Oblique and Vastus Lateralis in Sling-Based Exercises in Patients with Patellofemoral Pain Syndrome: A Cross-Over Study. Evidence-based Complementary and Alternative Medicine, 31(5), 1–8. https://doi.org/10.1155/2015/740315
CIOMS, & WHO. (2016). International Ethical Guidelines for Health-related Research Involving Humans. World Health Organization
Escamilla, R., Zheng, N., Macleod, T. D., Imamura, R., Wilk, K. E., Wang, S., Asuncion, R., Thompson, I. S., Aguinaldo, A. L., & Fleisig, G. S. (2025). Patellofemoral Joint Loading During Bodyweight One-Legged and Two-Legged BOSU and Floor Squats. International Journal of Sports Physical Therapy, 20(2), 199–209. https://doi.org/10.26603/001c.128628
Farina, D., Stegeman, D. F., & Merletti, R. (2016). Biophysics of the Generation of EMG Signals. Surface Electromyography : Physiology, Engineering, and Applications (1–24). John Wiley & Sons, Ltd. https://doi.org/10.1002/9781119082934.ch02
Fuentes del Toro, S., & Aranda-Ruiz, J. (2025). The Impact of Normalization Procedures on Surface Electromyography (sEMG) Data Integrity: A Study of Bicep and Tricep Muscle Signal Analysis. Sensors, 25(9), 1–23. https://doi.org/10.3390/s25092668
Gene-Morales, J., Flandez, J., Juesas, A., Gargallo, P., Miñana, I., & Colado, J. C. (2020). A Systematic Review on the Muscular Activation on the Lower Limbs with Five Different Variations of the Squat Exercise. Journal of Human Sport and Exercise, 15(4), 1277–1299. https://doi.org/10.14198/jhse.2020.15.Proc4.28
Gheidi, N., Kiminski, R., Besch, M., Ristow, A., Wallace, B., & Kernozek, T. (2025). Patellofemoral Joint Stress during Front and Back Squats at Two Depths. Applied Sciences (Switzerland), 15(16), 1–12. https://doi.org/10.3390/app15168784
Horsak, B., Heller, M., & Baca, A. (2015). Muscle Co-Contraction Around the Knee when Walking with Unstable Shoes. Journal of Electromyography and Kinesiology : Official Journal of the International Society of Electrophysiological Kinesiology, 25(1), 175–181. https://doi.org/10.1016/j.jelekin.2014.07.015
Kubo, K., Ikebukuro, T., & Yata, H. (2019). Effects of Squat Training with Different Depths on Lower Limb Muscle Volumes. European Journal of Applied Physiology, 11(9), 1933–1942. https://doi.org/10.1007/s00421-019-04181-y
Lakens, D. (2022). Sample Size Justification Collabra: Psychology. Collabra: Psychology, 8(1), 1–28. https://doi.org/10.1525/collabra.33267
Marchetti, P. H., Jarbas da Silva, J., Jon Schoenfeld, B., Nardi, P. S. M., Pecoraro, S. L., D’Andréa Greve, J. M., & Hartigan, E. (2016). Muscle Activation Differs between Three Different Knee Joint-Angle Positions during a Maximal Isometric Back Squat Exercise. Journal of Sports Medicine, 20(1), 1–6. https://doi.org/10.1155/2016/3846123
McCrum, C., Bhatt, T. S., Gerards, M. H. G., Karamanidis, K., Rogers, M. W., Lord, S. R., & Okubo, Y. (2022). Perturbation-Based Balance Training: Principles, Mechanisms and Implementation in Clinical Practice. Frontiers in Sports and Active Living, 4(1), 1–14. https://doi.org/10.3389/fspor.2022.1015394
Nimphius, S., McBride, J. M., Rice, P. E., Goodman-Capps, C. L., & Capps, C. R. (2019). Comparison of Quadriceps and Hamstring Muscle Activity during an Isometric Squat between Strength-Matched Men and Women. Journal of Sports Science & Medicine, 18(1), 101–108.
Straub, R. K., & Powers, C. M. (2024). A Biomechanical Review of the Squat Exercise: Implications for Clinical Practice. International Journal of Sports Physical Therapy, 19(4), 490–501. https://doi.org/10.26603/001c.94600
van den Tillaar, R., & Hope, C. (2023). Effect of Difficulty of Task on Throwing Performance and Coping Strategies in Team Handball. Frontiers in Sports and Active Living, 5(2), 1–7. https://doi.org/10.3389/fspor.2023.1107861
WHO. (2011). Standards and Operational Guidance for Ethics Review of Health-Related Research with Human Participants. World Health Organization
Xiao, F. W., Su, E. L. M., Zulkapri, I., Chen, Y. F., & Wu, M. Y. (2026). A Review and Evaluation of Balance Training Methods for Young Adults: Mechanisms, Applications, and Effects. Sport Sciences for Health, 22(1), 1–10. https://doi.org/10.1007/s11332-025-01633-1
Yavuz, H. U., & Erdag, D. (2017). Kinematic and Electromyographic Activity Changes during Back Squat with Submaximal and Maximal Loading. Applied Bionics and Biomechanics, 17(4), 20-29. https://doi.org/10.1155/2017/9084725
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Accepted 2026-04-22
Published 2026-04-28


