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Lower extremity stiffness in habitual forefoot strikers during running on different overground surfaces

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: Sports surface is one of the known external factors affecting running performance and injury. To date, we have found no study that examined the lower extremity stiffness in habitual forefoot strikers running on different overground surfaces. Therefore, the objective of this study was to investigate lower extremity stiffness and relevant kinematic adjustments in habitual forefoot strikers while running on different surfaces. Methods: Thirty-one male habitual forefoot strikers were recruited in this study. Runners were instructed to run at a speed of 3.3 m/s (±5%) on three surfaces, named synthetic rubber, concrete, and artificial grass. Results: No significant differences were found in leg stiffness, vertical stiffness, and joint stiffness in the sagittal plane during running on the three surfaces ( p > 0.05). Running on artificial grass exerted a greater displacement in knee joint angle than running on synthetic rubber ( p = 0.002, 95% CI = 1.52–7.35 degrees) and concrete ( p = 0.006, 95% CI = 1.04–7.25 degrees). In the sagittal plane, peak knee moment was lower on concrete than on artificial grass ( p = 0.003, 95% CI = 0.11–0.58 Nm/kg), whereas peak ankle moment was lower on synthetic rubber than on concrete (p < 0.001, 95% CI = 0.03–0.07 Nm/kg) and on artificial grass (p < 0.001, 95% CI = 0.02–0.06 Nm/kg). Among the three surfaces, the maximal ground reaction forces on concrete were the lowest (p < 0.05). Conclusions: This study indicated that running surfaces cannot influence lower extremity stiffness in habitual forefoot strikers at current running speed. Kinematic adjustments of knee and ankle, as well as ground reaction forces, may contribute to maintaining similar lower extremity stiffness.
Słowa kluczowe
Rocznik
Strony
73--80
Opis fizyczny
Bibliogr. 40 poz., rys., tab.
Twórcy
autor
  • School of Kinesiology, Shanghai University of Sport, Shanghai, China
autor
  • Department of Critical Care Medicine, Shanghai Tenth People’s Hospital, School of Medicine, Tongji University, Shanghai, China
  • School of Kinesiology, Shanghai University of Sport, Shanghai, China
autor
  • Department of Critical Care Medicine, Shanghai Tenth People’s Hospital, School of Medicine, Tongji University, Shanghai, China
autor
  • School of Kinesiology, Shanghai University of Sport, Shanghai, China
autor
  • Department of Sports Rehabilitation, Shanghai University of Sport, Shanghai, China
Bibliografia
  • [1] ADKISON J., REQUA R., GARRICK J., Injury rates in high school football. A comparison of synthetic surfaces and grass fields, Clin. Orthop. Relat. Res., 1974, 99, 131–136.
  • [2] ARAMPATZIS A., BRUGGEMANN G.P., METZLER V., The effect of speed on leg stiffness and joint kinetics in human running, J. Biomech., 1999, 32, 1349–1353.
  • [3] BISHOP M., FIOLKOWSKI P., CONRAD B., BRUNT D., HORODYSKI M., Athletic footwear, leg stiffness, and running kinematics, J. Athl Train., 2006, 41, 387–392.
  • [4] BUTLER R.J., CROWELL H.P. 3rd., DAVIS I.M., Lower extremity stiffness: implications for performance and injury, Clin. Biomech., 2003, 18, 511–517.
  • [5] DAVIS I.S., RICE H.M., WEARING S.C., Why forefoot striking in minimal shoes might positively change the course of running injuries, J. Sport. Health. Sci., 2017, 6, 154–161.
  • [6] DIXON S.J., COLLOP A.C., BATT M.E., Surface effects on ground reaction forces and lower extremity kinematics in running, Med. Sci. Sports. Exerc., 2000, 32, 1919–1926.
  • [7] DOLENEC A., STIRN I., STROJNIK V., Activation Pattern of Lower Leg Muscles in Running on Asphalt, Gravel and Grass, Coll. Antropol., 2015, 39, 167–172.
  • [8] DRAGOO J.L., BRAUN H.J., The effect of playing surface on injury rate: a review of the current literature, Sports. Med., 2010, 40, 981–990.
  • [9] FERRIS D.P., FARLEY C.T., Interaction of leg stiffness and surfaces stiffness during human hopping, J. Appl. Physiol., 1997, 82, 15–22, discussion 13–14.
  • [10] FERRIS D.P., LIANG K., FARLEY C.T., Runners adjust leg stiffness for their first step on a new running surface, J. Biomech., 1999, 32, 787–794.
  • [11] FERRIS D.P., LOUIE M., FARLEY C.T., Running in the real world: adjusting leg stiffness for different surfaces, Proc. Biol. Sci., 1998, 265, 989–994.
  • [12] GHENA D.R., KURTH A.L., THOMAS M., MAYHEW J., Torque Characteristics of the Quadriceps and Hamstring Muscles during Concentric and Eccentric Loading, J. Orthop. Sports. Phys. Ther., 1991, 14, 149–154.
  • [13] GIDLEY A.D., LANKFORD D.E., BAILEY J.P., The construction of common treadmills significantly affects biomechanical and metabolic variables, J. Sports. Sci., 2020, 38, 2236–2241.
  • [14] GIJON-NOGUERON G., FERNANDEZ-VILLAREJO M., Risk Factors and Protective Factors for Lower-Extremity Running Injuries A Systematic Review, J. Am. Podiatr. Med. Assoc., 2015, 105, 532–540.
  • [15] GRIER T.L., CANHAM-CHERVAK M., ANDERSON M.K., BUSHMAN T.T., JONES B.H., Effects of Physical Training and Fitness on Running Injuries in Physically Active Young Men, J. Strength. Cond. Res., 2017, 31, 207–216.
  • [16] HARDIN E.C., VAN DEN BOGERT A.J., HAMILL J., Kinematic adaptations during running: effects of footwear, surface, and duration, Med. Sci. Sports. Exerc., 2004, 36, 838–844.
  • [17] HOLLIS C.R., KOLDENHOVEN R.M., RESCH J.E., HERTEL J., Running biomechanics as measured by wearable sensors: effects of speed and surface, Sports. Biomech., 2019, 7, 1–11.
  • [18] JANDOVA S., SPARKS M., OLESNIEWICZ P., CHAROUSEK J., CHRASTKOVA M., MARKIEWICZ J., Changes in the foot strike pattern and pressure distribution when running in minimalist and traditional sport shoes, Medicina Dello Sport, 2018, 71, 257–267.
  • [19] KELLY L.A., FARRIS D.J., LICHTWARK G.A., CRESSWELL A.G., The Influence of Foot-Strike Technique on the Neuromechanical Function of the Foot, Med. Sci. Sports. Exerc., 2018, 50, 98–108.
  • [20] KERDOK A.E., BIEWENER A.A., MCMAHON T.A., WEYAND P.G., HERR H.M., Energetics and mechanics of human running on surfaces of different stiffnesses, J. Appl. Physiol., 2002, 92, 469–478.
  • [21] LY Q.H., ALAOUI A., ERLICHER S., BALY L., Towards a footwear design tool: influence of shoe midsole properties and ground stiffness on the impact force during running, J. Biomech., 2010, 43, 310–317.
  • [22] MACLELLAN M.J., PATLA A.E., Adaptations of walking pattern on a compliant surface to regulate dynamic stability, Exp. Brain. Res., 2006, 173, 521–530.
  • [23] MARIGOLD D.S., PATLA A.E., Adapting locomotion to different surface compliances: neuromuscular responses and changes in movement dynamics, J. Neurophysiol., 2005, 94, 1733–1750.
  • [24] MARKOTIC V., POKRAJCIC V., BABIC M., RADANCEVIC D., GRLE M., MILJKO M., KOSOVIC V., JURIC I., KARLOVIC VIDAKOVIC M., The Positive Effects of Running on Mental Health, Psychiatr. Danub., 2020, 32, 233–235.
  • [25] MCGINLEY J.L., BAKER R., WOLFE R., MORRIS M.E., The reliability of three-dimensional kinematic gait measurements: a systematic review, Gait. Posture, 2009, 29, 360–369.
  • [26] MCMAHON T.A., GREENE P.R., The influence of track compliance on running, J. Biomech., 1979, 12, 893–904.
  • [27] MEI Q., GU Y., FERNANDEZ J., A biomechanical assessment of running with hallux unstable shoes of different material stiffness, Acta Bioeng Biomech, 2019, 21, 121–128.
  • [28] MELCHER D.A., PAQUETTE M.R., SCHILLING B.K., BLOOMER R.J., Joint stiffness and running economy during imposed forefoot strike before and after a long run in rearfoot strike runners, J. Sports. Sci., 2017, 35, 2297–2303.
  • [29] MORIN J.B., DALLEAU G., KYROLAINEN H., JEANNIN T., BELLI A., A simple method for measuring stiffness during running, J. Appl. Biomech., 2005, 21, 167–180.
  • [30] MRDAKOVIC V., ILIC D., VULOVIC R., MATIC M., JANKOVIC N., FILIPOVIC N., Leg stiffness adjustment during hopping at different intensities and frequencies, Acta Bioeng Biomech, 2014, 16, 69–76.
  • [31] NIGG B.M., KERR B., Biomechanical aspects of sports shoes and playing surfaces, Calgary: University of Calgary Press, 1983.
  • [32] PAPPAS P., DALLAS G., PARADISIS G., Reliability of Leg and Vertical Stiffness During High Speed Treadmill Running, J. Appl. Biomech., 2017, 33, 160–165.
  • [33] RILEY P.O., DICHARRY J., FRANZ J., DELLA CROCE U., WILDER R.P., KERRIGAN D.C., A kinematics and kinetic comparison of overground and treadmill running, Med. Sci. Sports. Exerc., 2008, 40, 1093–1100.
  • [34] STAFILIDIS S., ARAMPATZIS A., Track compliance does not affect sprinting performance, J. Sports. Sci., 2007, 25, 1479–1490.
  • [35] STEARNE S.M., MCDONALD K.A., ALDERSON J.A., NORTH I., OXNARD C.E., RUBENSON J., The Foot's Arch and the Energetics of Human Locomotion, Sci. Rep., 2016, 6, 19403.
  • [36] VEREECKE E.E., AERTS P., The mechanics of the gibbon foot and its potential for elastic energy storage during bipedalism, J. Exp. Biol., 2008, 211, 3661–3670.
  • [37] WEI Z., ZHANG Z., JIANG J., ZHANG Y., WANG L., Comparison of plantar loads among runners with different strike patterns, J. Sports. Sci., 2019, 37, 2152–2158.
  • [38] WILLWACHER S., FISCHER K.M., ROHR E., TRUDEAU M.B., HAMILL J., BRUGGEMANN G.P., Surface Stiffness and Footwear Affect the Loading Stimulus for Lower Extremity Muscles When Running, J. Strength. Cond. Res., 2020, DOI: 10.1519/JSC.0000000000003410.
  • [39] YIN L., HU X., LAI Z., LIU K., WANG L., Leg Stiffness and Vertical Stiffness of Habitual Forefoot and Rearfoot Strikers during Running, Appl. Bionics. Biomech., 2020, 2020, 8866340.
  • [40] ZHANG Z., ZHANG Y., FU W., WEI Z., J. J., WANG L., Plantar Loads of Habitual Forefoot Strikers during Running on Different Overground Surfaces, Appl. Sci., 2020, 10, 2271.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0c26738e-fb56-431e-baf6-d74889337b79
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