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Acute Effects of Isometric Conditioning Activity on the Viscoelastic Properties of Muscles and Sprint and Jumping Performance in Handball Players

. 2023 Jul 01 ; 37 (7) : 1486-1494. [epub] 20230207

Language English Country United States Media print-electronic

Document type Journal Article

Links

PubMed 36752742
DOI 10.1519/jsc.0000000000004404
PII: 00124278-990000000-00214
Knihovny.cz E-resources

Krzysztofik, M, Spieszny, M, Trybulski, R, Wilk, M, Pisz, A, Kolinger, D, Filip-Stachnik, A, and Stastny, P. Acute effects of isometric conditioning activity on the viscoelastic properties of muscles and sprint and jumping performance in handball players. J Strength Cond Res 37(7): 1486-1494, 2023-The effects of conditioning activity (CA) on muscle stiffness are currently unknown, suggesting that maximum CA effort can increase or decrease the stiffness of involved muscle groups. Therefore, this study aimed to investigate the effect of maximal isometric half-squats on the viscoelastic properties of muscles and postactivation performance enhancement (PAPE) in sprints and jumps. Twelve handball players underwent a standard warm-up and baseline assessment of muscle stiffness and tone of vastus lateralis and gastrocnemius medialis muscle, followed by 20-m sprint with intermediate measures at 5 and 10 m and countermovement jump. The PAPE was assessed by repeating the tests (at 4th, 8th, and 12th minute post-CA) after a CA protocol consisting of 3 sets of 3-second maximal isometric half-squats (EXP) or a control condition (CTRL) without any CA. The vastus lateralis stiffness in the 4th and 12th minute and muscle tone in the 4th minute post-CA significantly decreased compared with baseline ( p = 0.041, ES = 0.57; p = 0.013, ES = 0.52; p = 0.004, ES = 0.81, respectively) in the EXP condition. The 20-m sprint time significantly decreased at all post-CA time points compared with the baseline for the EXP condition ( p < 0.033) and the after values in the CTRL condition ( p < 0.036). In comparison to baseline, the 10-m sprint time decreased in the eighth minute post-CA ( p = 0.021; ES = 0.82) in the EXP condition. Moreover, it was significantly lower at the 8th and 12th minute post-CA ( p = 0.038; ES = 0.71 and p = 0.005; ES = 1.26) compared with that time points in the CTRL condition. The maximal isometric half-squats effectively improved sprint performance and significantly decreased vastus lateralis tone and stiffness. These findings offer new insights into the assessment of viscoelastic properties for evaluating the fatigue or potentiation state, which requires further investigation.

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Allen DG, Lamb GD, Westerblad H. Skeletal muscle fatigue: Cellular mechanisms. Physiol Rev 88: 287–332, 2008.

Andonian P, Viallon M, Le Goff C, et al. Shear-wave elastography assessments of quadriceps stiffness changes prior to, during and after prolonged exercise: A longitudinal study during an extreme mountain ultra-marathon. PLoS One 11: e0161855, 2016.

Babault N, Maffiuletti NA, Pousson M. Postactivation potentiation in human knee extensors during dynamic passive movements. Med Sci Sports Exerc 40: 735–743, 2008.

Baudry S, Duchateau J. Postactivation potentiation in a human muscle: Effect on the rate of torque development of tetanic and voluntary isometric contractions. J Appl Physiol 102: 1394–1401, 2007.

Baudry S, Klass M, Duchateau J. Postactivation potentiation influences differently the nonlinear summation of contractions in young and elderly adults. J Appl Physiol 98: 1243–1250, 2005.

Beato M, Madruga-Parera M, Piqueras-Sanchiz F, Moreno-Pérez V, Romero-Rodriguez D. Acute effect of eccentric overload exercises on change of direction performance and lower-limb muscle contractile function. J Strength Cond Res 35: 3327–3333, 2021.

Behm DG, Button DC, Barbour G, Butt JC, Young WB. Conflicting effects of fatigue and potentiation on voluntary force. J Strength Cond Res 18: 365–372, 2004.

Berriel GP, Cardoso AS, R Costa RR, et al. Effects of postactivation performance enhancement on the vertical jump in high-level volleyball athletes. J Hum Kinet 82: 145–153, 2022.

Bevan HR, Cunningham DJ, Tooley EP, et al. Influence of postactivation potentiation on sprinting performance in professional rugby players. J Strength Cond Res 24: 701–705, 2010.

Bizzini M, Mannion AF. Reliability of a new, hand-held device for assessing skeletal muscle stiffness. Clin Biomech 18: 459–461, 2003.

Bogdanis GC, Tsoukos A, Veligekas P, Tsolakis C, Terzis G. Effects of muscle action type with equal impulse of conditioning activity on postactivation potentiation. J Strength Cond Res 28: 2521–2528, 2014.

Boullosa D, Beato M, Dello Iacono A, et al. A new taxonomy for post-activation potentiation in sport. Int J Sports Physiol Perform 15: 1197–1200, 2020.

Curtin NA, Edman KA. Effects of fatigue and reduced intracellular ph on segment dynamics in ‘isometric’ relaxation of frog muscle fibres. J Physiol 413: 159–174, 1989.

Dote-Montero M, Pelayo-Tejo I, Molina-Garcia P, et al. Effects of post-tetanic potentiation induced by whole-body electrostimulation and post-activation potentiation on maximum isometric strength. Biol Sport 39: 451–461, 2022.

Esformes JI, Bampouras TM. Effect of back squat depth on lower-body postactivation potentiation. J Strength Cond Res 27: 2997–3000, 2013.

Fitts RH. The cross-bridge cycle and skeletal muscle fatigue. J Appl Physiol 104: 551–558, 2008.

Fukutani A, Hirata K, Miyamoto N, et al. Effect of conditioning contraction intensity on postactivation potentiation is muscle dependent. J Electromyogr Kinesiol 24: 240–245, 2014.

Gago P, Arndt A, Tarassova O, Ekblom MM. Post activation potentiation can be induced without impairing tendon stiffness. Eur J Appl Physiol 114: 2299–2308, 2014.

Gago P, Zoellner A, Cézar Lima da Silva J, Ekblom MM. Post activation potentiation and concentric contraction performance: Effects on rate of torque development, neuromuscular efficiency, and tensile properties. J Strength Cond Res 34: 1600–1608, 2020.

Gołaś A, Maszczyk A, Zajac A, Mikołajec K, Stastny P. Optimizing post activation potentiation for explosive activities in competitive sports. J Hum Kinet 52: 95–106, 2016.

Heishman AD, Daub BD, Miller RM, et al. Countermovement jump reliability performed with and without an arm swing in NCAA division 1 intercollegiate basketball players. J Strength Cond Res 34: 546–558, 2020.

Herring CH, Goldstein ER, Fukuda DH. Use of tensiomyography in evaluating sex-based differences in resistance-trained individuals after plyometric and isometric midthigh pull postactivation potentiation protocols. J Strength Cond Res 35: 1527–1534, 2021.

Hill M, Rosicka K, Wdowski M. Effect of sex and fatigue on quiet standing and dynamic balance and lower extremity muscle stiffness. Eur J Appl Physiol 122: 233–244, 2022.

Hodgson M, Docherty D, Robbins D. Post-Activation potentiation: Underlying physiology and implications for motor performance. Sports Med 35: 585–595, 2005.

Huang J, Qin K, Tang C, et al. Assessment of passive stiffness of medial and lateral heads of gastrocnemius muscle, achilles tendon, and plantar fascia at different ankle and knee positions using the MyotonPRO. Med Sci Monit 24: 7570–7576, 2018.

Kilduff LP, Bevan HR, Kingsley MIC, et al. Postactivation potentiation in professional rugby players: Optimal recovery. J Strength Cond Res 21: 1134–1138, 2007.

Klich S, Ficek K, Krymski I, et al. Quadriceps and patellar tendon thickness and stiffness in elite track cyclists: An ultrasonographic and myotonometric evaluation. Front Physiol 11: 607208, 2020.

Klich S, Pietraszewski B, Zago M, et al. Ultrasonographic and myotonometric evaluation of the shoulder girdle after an isokinetic muscle fatigue protocol. J Sport Rehabil 29: 1047–1052, 2020.

Krzysztofik M, Wilk M, Stastny P, Golas A. Post-activation performance enhancement in the bench press throw: A systematic review and meta-analysis. Front Physiol 11: 598628, 2020.

Kubo K, Kanehisa H, Fukunaga T. Effects of viscoelastic properties of tendon structures on stretch—Shortening cycle exercise in vivo . J Sports Sci 23: 851–860, 2005.

Miyamoto N, Kanehisa H, Kawakami Y. Potentiation of maximal voluntary concentric torque in human quadriceps femoris. Med Sci Sports Exerc 44: 1738–1746, 2012.

Mola JN, Bruce-Low SS, Burnet SJ. Optimal recovery time for postactivation potentiation in professional soccer players. J Strength Cond Res 28: 1529–1537, 2014.

Myer GD, Kushner AM, Brent JL, et al. The back squat: A proposed assessment of functional deficits and technical factors that limit performance. Strength Cond J 36: 4–27, 2014.

Pandy MG, Lai AKM, Schache AG, Lin YC. How muscles maximize performance in accelerated sprinting. Scand J Med Sci Sports 31: 18822021–18831896, 2021.

Pandy MG, Zajac FE. Optimal muscular coordination strategies for jumping. J Biomech 24: 1–10, 1991.

Pereira LA, Freitas TT, Marín-Cascales E, et al. Effects of training on sand or hard surfaces on sprint and jump performance of team-sport players: A systematic review with meta-analysis. Strength Cond J 43: 56–66, 2021.

Pereira LA, Ramirez-Campillo R, Martín-Rodríguez S, et al. Is tensiomyography-derived velocity of contraction a sensitive marker to detect acute performance changes in elite team-sport athletes? Int J Sports Physiol Perform 15: 31–37, 2019.

Pożarowszczyk B, Gołaś A, Chen A, Zając A, Kawczyński A. The impact of post activation potentiation on achilles tendon stiffness, elasticity and thickness among basketball players. Sports 6: 117, 2018.

Proske U, Morgan DL. Muscle damage from eccentric exercise: Mechanism, mechanical signs, adaptation and clinical applications. J Physiol 537: 333–345, 2001.

Rixon KP, Lamont HS, Bemben MG. Influence of type of muscle contraction, gender, and lifting experience on postactivation potentiation performance. J Strength Cond Res 21: 500–505, 2007.

Ryschon TW, Fowler MD, Wysong RE, Anthony A-R, Balaban RS. Efficiency of human skeletal muscle in vivo: Comparison of isometric, concentric, and eccentric muscle action. J Appl Physiol 83: 867–874, 1997.

Seitz LB, Haff GG. Factors modulating post-activation potentiation of jump, sprint, throw, and upper-body ballistic performances: A systematic review with meta-analysis. Sports Med 46: 231–240, 2016.

Siracusa J, Charlot K, Malgoyre A, et al. Resting muscle shear modulus measured with ultrasound shear-wave elastography as an alternative tool to assess muscle fatigue in humans. Front Physiol 10: 626, 2019.

Tillin NA, Bishop D. Factors modulating post-activation potentiation and its effect on performance of subsequent explosive activities. Sports Med 39: 147–166, 2009.

Wang D, De Vito G, Ditroilo M, Delahunt E. Effect of sex and fatigue on muscle stiffness and musculoarticular stiffness of the knee joint in a young active population. J Sports Sci 35 (16): 1582–1591, 2016.

Wang D, De Vito G, Ditroilo M, Delahunt E. Different effect of local and general fatigue on knee joint stiffness. Med Sci Sports Exerc 49: 173–182, 2017.

Westerblad H, Allen DG. The contribution of [Ca2+]i to the slowing of relaxation in fatigued single fibres from mouse skeletal muscle. J Physiol 468: 729–740, 1993.

Zhang L-Q, Rymer WZ. Reflex and intrinsic changes induced by fatigue of human elbow extensor muscles. J Neurophysiol 86: 1086–1094, 2001.

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