Effects of plyometric vs. resistance training on skeletal muscle hypertrophy: A review

Jozo Grgic, Brad J Schoenfeld, Pavle Mikulic, Jozo Grgic, Brad J Schoenfeld, Pavle Mikulic

Abstract

Objective: In this review, we critically evaluate studies directly comparing the effects of plyometric vs. resistance training on skeletal muscle hypertrophy.

Methods: We conducted electronic searches of PubMed/MEDLINE, Scopus, SPORTDiscus, and Web of Science to find studies that explored the effects of plyometric vs. resistance training on muscle hypertrophy.

Results: Eight relevant studies were included in the review. Six studies compared the effects of plyometric vs. resistance training on muscle hypertrophy, while 2 studies explored the effects of combining plyometric and resistance training vs. isolated resistance training on acute anabolic signaling or muscle hypertrophy. Based on the results of these studies, we conclude that plyometric and resistance training may produce similar effects on whole muscle hypertrophy for the muscle groups of the lower extremities. Therefore, it seems that plyometric training has a greater potential for inducing increases in muscle size than previously thought. Despite the findings observed at the whole muscle level, the evidence for the effects of plyometric training on hypertrophy on the muscle fiber level is currently limited for drawing inferences. Compared to isolated resistance training, combining plyometric and resistance exercise does not seem to produce additive effects on anabolic signaling or muscle growth; however, this area requires future study. The limitations of the current body of evidence are that the findings are specific to (a) musculature of the lower extremities, (b) short-term training interventions that lasted up to 12 weeks, and (c) previously untrained or recreationally active participants.

Conclusion: This review highlights that plyometric and resistance training interventions may produce similar effects on whole muscle hypertrophy, at least for the muscle groups of the lower extremities, in untrained and recreationally trained individuals, and over short-term (i.e., ≤12 weeks) intervention periods.

Keywords: Effects; Muscle; Muscle size; Protein.

Conflict of interest statement

Competing interests The authors declare that they have no competing interests.

Copyright © 2021. Production and hosting by Elsevier B.V.

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Graphical abstract
Graphical abstract

References

    1. Markovic G, Mikulic P. Neuro-musculoskeletal and performance adaptations to lower-extremity plyometric training. Sports Med. 2010;40:859–895.
    1. Turner A, Jeffreys I. The stretch-shortening cycle: Proposed mechanisms and methods for enhancement. Strength Cond J. 2010;32:87–99.
    1. Ramirez-Campillo R, Álvarez C, García-Hermoso A. Methodological characteristics and future directions for plyometric jump training research: A scoping review. Sports Med. 2018;48:1059–1081.
    1. Malisoux L, Francaux M, Nielens H, Theisen D. Stretch-shortening cycle exercises: An effective training paradigm to enhance power output of human single muscle fibers. J Appl Physiol (1985) 2006;100:771–779.
    1. Kyröläinen H, Avela J, McBride JM. Effects of power training on muscle structure and neuromuscular performance. Scand J Med Sci Sports. 2005;15:58–64.
    1. American College of Sports Medicine American College of Sports Medicine position stand. Progression models in resistance training for healthy adults. Med Sci Sports Exerc. 2009;41:687–708.
    1. Konopka AR, Harber MP. Skeletal muscle hypertrophy after aerobic exercise training. Exerc Sport Sci Rev. 2014;42:53–61.
    1. Grgic J, Mcllvenna LC, Fyfe JJ. Does aerobic training promote the same skeletal muscle hypertrophy as resistance training? A systematic review and meta-analysis. Sports Med. 2019;49:233–254.
    1. Correa CS, LaRoche DP, Cadore EL. 3 different types of strength training in older women. Int J Sports Med. 2012;33:962–969.
    1. Earp JE, Newton RU, Cormie P, Blazevich AJ. Inhomogeneous quadriceps femoris hypertrophy in response to strength and power training. Med Sci Sports Exerc. 2015;47:2389–2397.
    1. Kubo K, Morimoto M, Komuro T. Effects of plyometric and weight training on muscle-tendon complex and jump performance. Med Sci Sports Exerc. 2007;39:1801–1810.
    1. Kubo K, Ishigaki T, Ikebukuro T. Effects of plyometric and isometric training on muscle and tendon stiffness in vivo. Physiol Rep. 2017;5:e13374. doi: 10.14814/phy2.13374.
    1. McKinlay BJ, Wallace P, Dotan R. Effects of plyometric and resistance training on muscle strength, explosiveness, and neuromuscular function in young adolescent soccer players. J Strength Cond Res. 2018;32:3039–3050.
    1. Váczi M, Nagy SA, Kőszegi T. Mechanical, hormonal, and hypertrophic adaptations to 10 weeks of eccentric and stretch-shortening cycle exercise training in old males. Exp Gerontol. 2014;58:69–77.
    1. Vissing K, Brink M, Lønbro S. Muscle adaptations to plyometric vs. resistance training in untrained young men. J Strength Cond Res. 2008;22:1799–1810.
    1. Wolfe RR. The underappreciated role of muscle in health and disease. Am J Clin Nutr. 2006;84:475–482.
    1. Hornsby WG, Gentles JA, Haff GG. What is the impact of muscle hypertrophy on strength and sport performance? Strength Cond J. 2018;40:99–111.
    1. Ozaki H, Loenneke JP, Buckner SL, Abe T. Muscle growth across a variety of exercise modalities and intensities: Contributions of mechanical and metabolic stimuli. Med Hypotheses. 2016;88:22–26.
    1. Simpson CL, Kim BDH, Bourcet MR, Jones GR, Jakobi JM. Stretch training induces unequal adaptation in muscle fascicles and thickness in medial and lateral gastrocnemii. Scand J Med Sci Sports. 2017;27:1597–1604.
    1. Haun CT, Vann CG, Roberts BM, Vigotsky AD, Schoenfeld BJ, Roberts MD. A critical evaluation of the biological construct skeletal muscle hypertrophy: Size matters but so does the measurement. Front Physiol. 2019;10:247. doi: 10.3389/fphys.2019.00247.
    1. Vetrovsky T, Steffl M, Stastny P, Tufano JJ. The efficacy and safety of lower-limb plyometric training in older adults: A systematic review. Sports Med. 2019;49:113–131.
    1. Suchomel TJ, Nimphius S, Bellon CR, Stone MH. The importance of muscular strength: Training considerations. Sports Med. 2018;48:765–785.
    1. Watt PW, Kelly FJ, Goldspink DF, Goldspink G. Exercise-induced morphological and biochemical changes in skeletal muscles of the rat. J Appl Physiol Respir Environ Exerc Physiol. 1982;53:1144–1151.
    1. Schoenfeld BJ. The mechanisms of muscle hypertrophy and their application to resistance training. J Strength Cond Res. 2010;24:2857–2872.
    1. Talbot J, Maves L. Skeletal muscle fiber type: Using insights from muscle developmental biology to dissect targets for susceptibility and resistance to muscle disease. Wiley Interdiscip Rev Dev Biol. 2016;5:518–534.
    1. Folland JP, Williams AG. The adaptations to strength training: Morphological and neurological contributions to increased strength. Sports Med. 2007;37:145–168.
    1. Ogborn D, Schoenfeld BJ. The role of fiber types in muscle hypertrophy: Implications for loading strategies. Strength Cond J. 2014;36:20–25.
    1. Edman S, Söderlund K, Moberg M, Apró W, Blomstrand E. mTORC1 signaling in individual human muscle fibers following resistance exercise in combination with intake of essential amino acids. Front Nutr. 2019;6:96. doi: 10.3389/fnut.2019.00096.
    1. Mitchell CJ, Churchward-Venne TA, West DW. Resistance exercise load does not determine training-mediated hypertrophic gains in young men. J Appl Physiol (1985) 2012;113:71–77.
    1. Schoenfeld BJ, Vigotsky AD, Grgic J. Do the anatomical and physiological properties of a muscle determine its adaptive response to different loading protocols? Physiol Rep. 2020;8:e14427. doi: 10.14814/phy2.14427.
    1. Macaluso F, Isaacs AW, Myburgh KH. Preferential type II muscle fiber damage from plyometric exercise. J Athl Train. 2012;47:414–420.
    1. Lim CH, Luu TS, Phoung LQ, Jeong TS, Kim CK. Satellite cell activation and mTOR signaling pathway response to resistance and combined exercise in elite weight lifters. Eur J Appl Physiol. 2017;117:2355–2363.
    1. Wackerhage H, Schoenfeld BJ, Hamilton DL, Lehti M, Hulmi JJ. Stimuli and sensors that initiate skeletal muscle hypertrophy following resistance exercise. J Appl Physiol (1985) 2019;126:30–43.
    1. Kosek DJ, Kim JS, Petrella JK, Cross JM, Bamman MM. Efficacy of 3 days/wk resistance training on myofiber hypertrophy and myogenic mechanisms in young vs. older adults. J Appl Physiol. 2006;101:531–544.
    1. Wall BT, Gorissen SH, Pennings B. Aging is accompanied by a blunted muscle protein synthetic response to protein ingestion. PLoS One. 2015;10 doi: 10.1371/journal.pone.0140903.
    1. Keogh JW, Winwood PW. The epidemiology of injuries across the weight-training sports. Sports Med. 2017;47:479–501.
    1. Bobbert MF, Mackay M, Schinkelshoek D, Huijing PA, van Ingen Schenau GJ. Biomechanical analysis of drop and countermovement jumps. Eur J Appl Physiol Occup Physiol. 1986;54:566–573.
    1. Burgess KE, Connick MJ, Graham-Smith P, Pearson SJ. Plyometric vs. isometric training influences on tendon properties and muscle output. J Strength Cond Res. 2007;21:986–989.
    1. Heesch KC, Mâsse LC. Lack of time for physical activity: Perception or reality for African American and Hispanic women? Women Health. 2004;39:45–62.
    1. Schoenfeld BJ, Contreras B, Krieger J. Resistance training volume enhances muscle hypertrophy but not strength in trained men. Med Sci Sports Exerc. 2019;51:94–103.
    1. McCartney N, Hicks AL, Martin J, Webber CE. A longitudinal trial of weight training in the elderly: Continued improvements in year 2. J Gerontol A Biol Sci Med Sci. 1996;51:B425–B433.
    1. Damas F, Phillips S, Vechin FC, Ugrinowitsch C. A review of resistance training-induced changes in skeletal muscle protein synthesis and their contribution to hypertrophy. Sports Med. 2015;45:801–807.
    1. Lakens D. Equivalence tests: A practical primer for t tests, correlations, and meta-analyses. Soc Psychol Personal Sci. 2017;8:355–362.
    1. Hecksteden A, Faude O, Meyer T, Donath L. How to construct, conduct and analyze an exercise training study? Front Physiol. 2018;9:1007. doi: 10.3389/fphys.2018.01007.

Source: PubMed

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