Efecto de las termoterapias asociadas con el estiramiento de los isquiotibiales sobre el torque máximo: ensayo clínico aleatorizado
Resumen
Introducción: El estiramiento es una estrategia eficaz, utilizada principalmente para reducir la rigidez muscular y aumentar la flexibilidad y el rango de movimiento. Objetivo: Comparar los efectos de diferentes modalidades de termoterapia asociadas con el estiramiento estático sobre el torque máximo (TM) de los músculos flexores de la rodilla. Métodos: Este estudio comparó una muestra de 34 hombres sanos, con edades entre 20 y 30 años, con rango de movimiento (RDM) activo de la rodilla ≤160 grados. Se sometieron a tres sesiones de estiramiento estático de isquiotibiales con o sin la modalidad de termoterapia. El orden de las intervenciones fue aleatorizado a uno de los grupos: estiramiento aislado (EA), estiramiento en caliente (EC) y estiramiento en frío (EF). Los TM concéntricos y excéntricos se evaluaron antes y después de la intervención. Resultados: Comparando el TM entre las diferentes modalidades, hubo una disminución significativa en el TM excéntrico y concéntrico de los músculos flexores de la rodilla en el EA, en el TM excéntrico de los músculos flexores de la rodilla en el EC y en el TM excéntrico y concéntrico de los flexores de rodilla en los grupos EF. Conclusión: Independientemente del uso de la termoterapia, una sola sesión de estiramiento estático resultó en una disminución del TM de los músculos flexores de la rodilla. Probablemente esto se deba a los efectos del estiramiento, como la alteración inmediata del componente elástico de la unidad musculotendinosa, lo que conduce a un déficit en la producción aguda de fuerza.
Referencias
Afonso, J., Clemente, FM, Nakamura, FY, Morouço, P., Sarmento, H., Inman, RA, & Ramirez-Campillo, R. (2021). The Effectiveness of Post-exercise Stretching in Short-Term and Delayed Recovery of Strength, Range of Motion and Delayed Onset Muscle Soreness: A Systematic Review and Meta-Analysis of Randomized Controlled Trials. Front Physiol, 12, 677581. https://doi.org/10.3389/fphys.2021.677581
Alvares, J., Rodrigues, R., Franke, R., Silva, C., Pinto, R., & Vaz, M. (2015). Intermachine reliability of the Biodex and Cybex isokinetic dynamometers for knee flexor/extensor isometric, concentric and eccentric tests. Phys Ter Sport., 16(1), 59-65. https://doi.org/10.1016/j.ptsp.2014.04.004
Alves, M., Nogueira, A., Santos, W., & Oliveira, L. (2015). Efeito agudo do alongamento estático no pico de torque dos músculos isquiotibiais. 2do. Congr. Int. Atividade Física, Nutr. e Saúde, 3, 29-43. https://eventos.set.edu.br/CIAFIS/article/view/3264
Andrade Filho, JHC, Santo, TCSE, Facó, SGG, Magalhães, AT, Silva, BAK, Minghini, BV, Silva, CS, & Cardoso, VS (2016). A influência da termoterapia no ganho de flexibilidade dos músculos isquiotibiais. [The influence of thermotherapy in the flexibility gain of the hamstring muscles. La influencia de la termoterapia en la flexibilidad de los músculos isquiotibiales]. Revista Brasileira de Medicina do Esporte, 22(3), 227-230. https://doi.org/10.1590/1517-869220162203136164
Begovic, H., Can, F., Yağcioğlu, S., & Ozturk, N. (2018). Passive stretching-induced changes detected during voluntary muscle contractions. Physiother Theory Pract, 36(6), 731-740. https://doi.org/10.1080/09593985.2018.1491660
Biodex System 4 Pro. Applications/Operations. Biodex Medical Systems, Inc. https://www.biodex.com/sites/default/files/s2s_apman_90317.pdf
Bleakley, C.M., & Costello, J.T. (2013). Do thermal agents affect range of movement and mechanical properties in soft tissues? A systematic review. Arch Phys Med Rehabil, 94(1), 149-163. https://doi.org/10.1016/j.apmr.2012.07.023
Bley, A.S., Nardi, P.S., & Marchetti, P.H. (2012). Alongamento passivo agudo não afeta a atividade muscular máxima dos ísquiotibiais. Motricidade, 8(4), 80-86. https://doi.org/10.6063/motricidade.1555
Brasileiro, J.S., Faria, A.F., & Queiroz, L.L. (2007). Influência do resfriamento e do aquecimento local na flexibilidade dos músculos isquiotibiais. [Influence of local cooling and warming on the flexibility of the hamstring muscles]. Brazilian Journal of Physical Therapy, 11(1), 57-61. https://doi.org/10.1590/S1413-35552007000100010
Busarello, F. de O., Souza, F. T. de, Paula, G. F. de, Vieira, L., Nakayama, G. K., & Bertolini, G.R.F. (2011). Ganho de extensibilidade dos músculos isquiotibiais comparando o alongamento estático associado ou não à crioterapia. Fisioterapia em Movimento, 24, 247-254. https://doi.org/10.1590/S0103-51502011000200006
Dohnert, M.B., Oliveira, M. dos S., & Hoffmann, R.F. (2017). Efeito agudo da crioterapia e diatermia na flexibilidade e força muscular de isquiotibiais. Ciência & Saúde, 10(2). https://doi.org/10.15448/1983-652X.2017.2.24474
Draper, D.O., Castro, J.L., Feland, B., Schulthies, S., & Eggett, D. (2004). Shortwave diathermy and prolonged stretching increase hamstring flexibility more than prolonged stretching alone. J Orthop Sports Phys Ther, 34(1), 13-20. https://doi.org/10.2519/jospt.2004.34.1.13
Elnaggar, M., Elhafez, H., Elhabashy, H., Sedhom, M., & Shokri, D. (2017). Effect of Pulsed Shortwave Diathermy on Average Isometric Peak Torque of Quadriceps Muscle in Normal Subjects. International Journal of Therapies and Rehabilitation Research, 6(2), 53-59. https://buc.edu.eg/directory/wp-content/uploads/2018/07/1.pdf
Ferrari, G., & Arroyo, C.T. (2013). Efeito de Treinamentos de Flexibilidade Sobre a Força e o Torque Muscular: Uma Revisão Crítica. Revista Brasileira de Ciência e Movimento, 21(2), 151-162, https://www.researchgate.net/publication/290293805
Hatano, G., Suzuki, S., Matsuo, S., Kataura, S., Yokoi, K., Fukaya, T., Fujiwara, M., Asai, Y, & Iwata, M. (2017). Hamstring Stiffness Returns More Rapidly After Static Stretching Than Range of Motion, Stretch Tolerance, and Isometric Peak Torque. J Sport Rehabil, 28(4), 325-331. https://doi.org/10.1123/jsr.2017-0203
Hotta, K., Behnke, BJ, Arjmandi, B., Ghosh, P., Chen, B., Brooks, R., Maraj, JJ, Elam, ML, Maher, P., Kurien, D., Churchill, A., Sepulveda, JL, Kabolowsky, MB, Christou, DD, & Muller-Delp, JM (2018). Daily muscle stretching enhances blood flow, endothelial function, capillarity, vascular volume and connectivity in aged skeletal muscle. J Physiol, 596(10), 1903-1917. https://doi.org/10.1113/jp275459
Kataura, S., Suzuki, S., Matsuo, S., Hatano, G., Iwata, M., Yokoi, K., Wakako, T., Yasuhiro, B., & Asai, Y. (2017). Acute Effects of the Different Intensity of Static Stretching on Flexibility and Isometric Muscle Force. J Strength Cond Res, 31(12), 3403-3410. https://doi.org/10.1519/JSC.0000000000001752
Kay, A.D., & Blazevich, A.J. (2012). Effect of acute static stretch on maximal muscle performance: a systematic review. Med Sci Sports Exerc, 44(1), 154-164. https://doi.org/10.1249/MSS.0b013e318225cb27
Kujawski, S., Słomko, J., Godlewska, BR, Cudnoch-Jędrzejewska, A., Murovska, M., Newton, JL, Sokolowski, L., & Zalewski, P. (2022). Combination of whole body cryotherapy with static stretching exercises reduces fatigue and improves functioning of the autonomic nervous system in Chronic Fatigue Syndrome. J Transl Med, 20(1), 273. https://doi.org/10.1186/s12967-022-03460-1
Lim, K.I., Nam, H.C., & Jung, K.S. (2014). Effects on hamstring muscle extensibility, muscle activity, and balance of different stretching techniques. J Phys Ther Sci, 26(2), 209-213. https://doi.org/10.1589/jpts.26.209
Lima, CD, Brown, LE, Wong, MA, Leyva, WD, Pinto, RS, Cadore, EL, & Ruas, CV (2016). Acute Effects of Static vs. Ballistic Stretching on Strength and Muscular Fatigue Between Ballet Dancers and Resistance-Trained Women. J Strength Cond Res, 30(11), 3220-3227, 3220-3227. https://doi.org/10.1519/JSC.0000000000001606
Magalhaes, FE, Junior, AR, Meneses, HT, Moreira Dos Santos, RP, Rodrigues, EC, Gouveia, SS, Gouveia, GPM, Orsini, M., Bastos, VHV, & Machado DC (2015). Comparison of the effects of hamstring stretching using proprioceptive neuromuscular facilitation with prior application of cryotherapy or ultrasound therapy. J Phys Ther Sci, 27(5), 1549-1553. https://doi.org/10.1589/jpts.27.1549
Mahmood, S., Sawatsky, A., & Herzog, W. (2021). Increased force following muscle stretching and simultaneous fibre shortening: Residual force enhancement or force depression - That is the question? J Biomech, 116, 110216. https://doi.org/10.1016/j.jbiomech.2020.110216
Marek, SM, Cramer, JT, Fincher, AL, Massey, LL, Dangelmaier, SM, Purkayastha, S., Fitz, KA, Culbertson, JY (2005). Acute Effects of Static and Proprioceptive Neuromuscular Facilitation Stretching on Muscle Strength and Power Output. J Athl Train, 40(2), 94-103. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1150232/
Notarnicola, A., Perroni, F., Campese, A., Maccagnano, G., Monno, A., Moretti, B., & Tafuri, S. (2017). Flexibility responses to different stretching methods in young elite basketball players. Muscles Ligaments Tendons J, 7(4), 582-589. https://doi.org/10.11138/mltj/2017.7.4.582
Rosario, J.L., & Foletto, A. (2015). Comparative study of stretching modalities in healthy women: heating and application time. J Bodyw Mov Ther, 19(1), 3-7. https://doi.org/10.1016/j.jbmt.2013.12.003
Schleder, J.C., Müller, A., Fernandes, W.V.B., & Capote, A.E. (2016). Effects of cryotherapy and microwave diathermy on the strength production capacity of elbow flexors in healthy men. Revista Brasileira de Cineantropometria & Desempenho Humano, 18(3), 332-340. http://dx.doi.org/10.5007/1980-0037.2016v18n3p332
Simic, L., Sarabon, N., & Markovic, G. (2013). Does pre-exercise static stretching inhibit maximal muscular performance? A meta-analytical review. Scand J Med Sci Sports, 23(2), 131-148. https://doi.org/10.1111/j.1600-0838.2012.01444.x
Souza, R.H., Greco, C.C., & Denadai, B.S. (2015). A taxa de desenvolvimento de força durante contrações isocinéticas dos extensores do joelho não é afetada pelo alongamento estático em indivíduos ativos. Revista Brasileira de Ciências do Esporte, 37, 400-406.
Su, H., Chang, N.J., Wu, W.L., Guo, L.Y., & Chu, I.H. (2017). Acute Effects of Foam Rolling, Static Stretching, and Dynamic Stretching During Warm-ups on Muscular Flexibility and Strength in Young Adults. J Sport Rehabil, 26(6), 469-477. https://doi.org/10.1123/jsr.2016-0102
Thomas, E., Bianco, A., Paoli, A., & Palma, A. (2018). The Relation Between Stretching Typology and Stretching Duration: The Effects on Range of Motion. Int J Sports Med, 39(4), 243-254. https://doi.org/10.1055/s-0044-101146
Torres, R., Silva, F., Pedrosa, V., Ferreira, J., & Lopes, A. (2017). The Acute Effect of Cryotherapy on Muscle Strength and Shoulder Proprioception. J Sport Rehabil, 26(6), 497-506. https://doi.org/10.1123/jsr.2015-0215
Wang, Y., Chen, C., Huang, Z., & Cheng, H. (2016). Acute effects of active dynamic, static stretching and passive static stretching exercise on hamstrings flexibility and muscle strength. World Academy of Science, Engineering and Technology, International Journal of Sport and Exercise Sciences.
Wang, Y., Ikeda, S., & Ikoma, K. (2021). Passive repetitive stretching is associated with greater muscle mass and cross-sectional area in the sarcopenic muscle. Sci Rep, 11(1), 15302. https://doi.org/10.1038/s41598-021-94709-0
Xiao, J. (2020). Physical Exercise for Human Health. In: W.E. Crusio, H. Dong, H.H. Radeke, N. Rezaei, O. Steinlein, J. Xiao (Eds.), Advances in Experimental Medicine and Biology (Vol. 1). Springer Nature. https://doi.org/https://doi.org/10.1007/978-981-15-1792-1
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