Extracellular Matrix Remodeling in Response to Resistance and Endurance Training: Implications for Athletic Performance
کلمات کلیدی:
extracellular matrix, resistance training, muscle adaptation, athletic performanceچکیده
Skeletal muscle adaptation to exercise extends beyond contractile proteins to include extensive remodeling of the extracellular matrix (ECM). This review synthesizes findings from studies published between 2015 and 2025 that investigated how resistance and endurance training influence ECM composition and how these changes relate to performance outcomes. Evidence indicates that acute exercise bouts transiently increase matrix metalloproteinases such as MMP-9, proteoglycans including serglycin, and glycoproteins such as tenascin-C, while suppressing tissue inhibitors like TIMP-1 [1,2,7]. Chronic training interventions of 10–14 weeks consistently report upregulation of collagens (types I, III, IV), proteoglycans, and glycoproteins, alongside reductions in MMP-14 [2,3,7]. These structural adaptations are associated with improvements in muscle cross-sectional area, strength, tendon stiffness, and aerobic capacity [3–6]. Importantly, individual variability in baseline MMP-14 levels appears to predict hypertrophic responsiveness [3]. Collectively, the evidence supports a mechanistic link between ECM remodeling and enhanced functional performance in athletes, underscoring ECM as a critical mediator of exercise adaptation.
دانلودها
مراجع
[1] Hjorth M, Norheim F, Meen AJ, Pourteymour S, Lee S, Holen T, Jensen J, et al. The effect of acute and
long-term physical activity on extracellular matrix and serglycin in human skeletal muscle. Physiol Rep.
2015;3(4):e12473. doi:10.14814/phy2.12473.
[2] Scarpelli MC, Bergamasco JG, Godwin JS, Mesquita PHC, Chaves TS, Silva DG, Bittencourt D, et al.
Resistance training-induced changes in muscle proteolysis and extracellular matrix remodeling
biomarkers in the untrained and trained states. Eur J Appl Physiol. 2024;124(5):1135–1147.
doi:10.1007/s00421-024-05484-5.
[3] Godwin JS, Sexton C, Kontos NJ, Ruple BA, Willoughby D, Young KC, Mobley C, Roberts MD.
Extracellular matrix content and remodeling markers do not differ in college-aged men classified as
higher- and lower-responders to resistance training. J Appl Physiol. 2023;134(4):1064–1076.
doi:10.1152/japplphysiol.00596.2022.
[4] Kritikaki E, Asterling R, Ward L, Padget K, Barreiro E, Simoes D. Exercise training-induced
extracellular matrix protein adaptation in locomotor muscles: a systematic review. Cells.
2021;10(5):1022. doi:10.3390/cells10051022.
[5] Douglas J, Pearson SN, Ross A, McGuigan M. Chronic adaptations to eccentric training: a systematic
review. Sports Med. 2017;47(5):917–941. doi:10.1007/s40279-016-0628-4.
[6] Pattamaprapanont P, Cooney EM, MacDonald TL, Paulo JA, Pan H, Dreyfuss J, Lessard SJ. Matrisome
proteomics reveals novel mediators of muscle remodeling with aerobic exercise training. Matrix Biol
Plus. 2024;20:100159. doi:10.1016/j.mbplus.2024.100159.
[7] Hyldahl RD, Nelson B, Xin L, Welling T, Groscost L, Hubal MJ, Chipkin S, Clarkson P, Parcell AC.
Extracellular matrix remodeling and its contribution to protective adaptation following lengthening
contractions in human muscle. FASEB J. 2015;29(7):2894–2904. doi:10.1096/fj.14-266668.