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    Mechanism of hamstring muscle strain injury in sprinting

    2017-11-27 11:01:52BingYuHuiLiuWilliamGarrett
    Journal of Sport and Health Science 2017年2期

    Bing Yu*,Hui Liu,William E.Garrett

    aCenter for Human Movement Science,The University of North Carolina at Chapel Hill,Chapel Hill,NC 27599,USA

    bBiomechanics Laboratory,Beijing Sport University,Beijing 100084,China

    cDuke Sports Medicine Center,Duke University,Durham,NC 27710,USA

    Mechanism of hamstring muscle strain injury in sprinting

    Bing Yua,*,Hui Liub,William E.Garrettc

    aCenter for Human Movement Science,The University of North Carolina at Chapel Hill,Chapel Hill,NC 27599,USA

    bBiomechanics Laboratory,Beijing Sport University,Beijing 100084,China

    cDuke Sports Medicine Center,Duke University,Durham,NC 27710,USA

    Hamstring muscle strain injury is one of the most common injuries in sports involving sprinting and kicking.Hamstring muscle strain injuries occur at a high rate and have a high re-injury rate,which results in loss of training and competition time,which has a signi ficant impact on the quality of life of the injured athletes.1Preventing and rehabilitating hamstring muscle strain injury is an important task for clinicians and scientists in sports medicine.

    Understanding the mechanisms underlying hamstring injury is critical for developing appropriate strategies to prevent and rehabilitate hamstring injuries.Understanding the general mechanism of muscle strain injury is essential for understanding the speci fic mechanisms of hamstring muscle strain injury. Many studies using animal models have been conducted in the past 2 decades to determine the general mechanisms of muscle strain injury.The results of these studies point to excessive muscle strain in eccentric contraction or stretching as the primary mechanism of muscle strain injury.

    Garrett et al.2studied the biomechanics of muscle strain injury using rabbit extensor digitorum longus and tibialis anterior models.They randomly assigned each muscle to a passive stretching group,an eccentric contraction group stimulated at 16 Hz,or an eccentric contraction group stimulated at 64 Hz. Each muscle was stretched to the point of injury.The results showed that all injuries occurred at the distal muscle-tendon junctions with minimum deformation in the tendon.The results further indicated that there was no signi ficant difference in muscle strain at which injury occurred among the 3 experimental groups.However,the force at which injury occurred was signi ficantly greater in the eccentric contraction compared to the passive stretch group muscles.The results also showed the eccentric contraction groups absorbed signi ficantly more mechanical energy prior to injury,and the eccentric contractiongroup at the higher activation level absorbed signi ficantly more mechanical energy than the eccentric contraction group at the lower activation level.These results suggest that excessive muscle strain is the primary cause of muscle strain injury regardless of the muscle activation level and the force generated by the muscle.These results further suggest that the higher the activation level of a muscle during eccentric contraction,the more mechanical energy the muscle absorbs prior to strain injury.

    The results of the study by Garrett et al.2were subsequently supported by Lieber and Friden.3In their study,rabbit tibialis anterior muscles were strained by 25%of the muscle fiber length at identical rates but different timing of length change relative to muscle activation,thereby producing different muscle forces.They found that maximum tetanic force and other contractile parameters measured after 30 min of cyclic activity were identical for the 2 groups,suggesting that muscle damage was equivalent despite the different forces.In a second experiment,Lieber and Friden3used the same protocol,but the muscles were only strained by 12.5%of muscle fiber length.A two-way analysis of variance of both experiments revealed a signi ficant effect of strain magnitude on muscle damage but no signi ficant effect of stretch timing.The investigators concluded that the observed muscle damage after eccentric contraction was due to strain not force,which was similar to the conclusion drawn by Garrett et al.2

    Lovering et al.4studied the effect of muscle activation before eccentric contraction on the severity of muscle strain injury using a rat tibialis anterior model.The loss of maximum isometric force after the injury protocol was used as a measure of the degree of injury.They found a signi ficant negative correlation between the duration of muscle activation prior to the eccentric contraction and the loss of maximum isometric force after the injury protocol,particularly when the duration of muscle activation was less than 50 ms before the onset of the eccentric contraction.These results indicate that a sudden activation during an eccentric contraction causes more severe muscle injury.

    Nikolaou et al.5studied the effects of elongation speed on muscle strain injury by comparing the strain injury sites and muscle strain at failure in eccentric contractions among rabbit tibialis anterior,extensor digitorum longus,rectus femoris,and gastrocnemius muscles.These muscles represent 4 architectures:fusiform,unipennate,bipennate,and multipennate.They found that more than 97%of strain injuries in the tibialis anterior,extensor digitorum longus,and rectus femoris occurred at the distal muscle-tendon junction,while only 55% of the injuries in the gastrocnemius occurred in this region.The other 45%of injuries in the gastrocnemius occurred in the distal and proximal muscle-tendon junctions.The stretch speed did not affect where an injury occurred.

    Best et al.6studied the effects of elongation speed on muscle strain injuries in rabbit tibialis anterior muscles.They found that muscle failure occurred at the distal muscle-tendon junction when the elongation speeds were 4 cm/s and 40 cm/s,but occurred at the distal muscle belly when the elongation speed was 100 cm/s.They also found that the external loading at failure was sensitive to the stretch speed:greater speed was associated with greater external load at failure.These results suggest that the injury site moves from distal to proximal as muscle elongation speed increases and that greater elongation speeds are associated with greater muscle force at injury occurrence.This study further suggests that muscle axial deformation and strain at failure were not dependent on the speed of elongation.However,there was a trend showing that muscle axial deformation and strain at failure decreased as the elongation speed increased.

    Brooks and Faulkner7investigated the effects of muscle elongation speed on the severity of muscle strain injury in mouse extensor digitorum longus.The severity of injury was quanti fied by the de ficit in maximum isometric contraction after the injury protocol.They found that the de ficit in maximum isometric force could be predicted from the muscle strain and elongation speed.The contribution of the muscle elongation speed to the prediction of the severity of strain injury increased as the muscle strain increased.These results suggest that greater elongation speeds cause more injury for similar muscle strains.

    The majority of hamstring muscle strain injuries occur in sports that require high speed running,such as American football,Australian football,basketball,soccer,rugby,and track and field.8Verrall et al.9reported that 65 out of 69 con firmed hamstring muscle strain injuries during 2 playing seasons of Australian football occurred during running activities.Gabbe et al.10reported that more than 80%of con firmed hamstring muscle strain injuries in community-level Australian football occurred during running or sprinting.Woods et al.11reported that more than 60%of the hamstring injuries occurred during running in English professional soccer.Brooks et al.12reported that more than 68%of hamstring muscle strain injuries in rugby occurred during running,not including turning and scrimmaging,which are similar to running.Askling et al.13identi fied 18 athletes who had first-time hamstring muscle strain injuries from major track and field clubs in Sweden.All 18 athletes were sprinters,and their injuries all occurred during competition when the speed was maximum or close to maximum.Besides running,kicking is another activity in which hamstring muscle strain injuries occur frequently.Gabbe et al.10reported that 19% of the con firmed hamstring muscle strain injuries in community-level Australian football occurred during kicking. Brooks et al.12reported that about 10%of the hamstring muscle strain injuries in English rugby occurred during kicking.They also found that hamstring muscle strain injuries during kicking were more severe than those occurring in other activities in terms of lost play time.

    Several studies have been conducted on the biomechanics of running to understand the speci fic mechanism of hamstring muscle strain injury.Wood14presented joint resultant moments and power,electromyography,and hamstring muscle lengths in sprinting.These data demonstrated that hamstring muscles contract eccentrically in the late swing and late stance phase of sprinting.Considering the results of previous studies with animal models,these data indicate that hamstring muscle strain injuries may occur in late swing before foot strike and in late stance before takeoff.

    Two recent studies supported the results of Wood.14Thelen et al.15found that the hamstring muscles worked eccentrically in the late swing phase of treadmill sprinting and suggested that a potential for hamstring muscle strain injury existed during the late swing phase.Their results,however,did not show a hamstring muscle eccentric contraction during the stance phase as Wood14did.Yu et al.16determined hamstring muscle-length changes and activations in sprinting.They found that the hamstrings worked eccentrically in the late swing phase and the late stance phase,as reported by Wood.14Yu et al.16suggested that the hamstring muscles were at risk of strain injury in the late stance phase and the late swing phase.However,the hamstring muscles are at a much longer length at the end of swing compared to stance,and thus presumably are also at a higher risk for strain injury in late swing compared to late stance.16Yu et al.16attributed the eccentric contraction during late stance as a possible characteristic of sprinting.

    The studies on the general mechanism of muscle strain injury and the speci fic mechanism of hamstring muscle strain injury set the basis for further studies on prevention of hamstring muscle strain injuries in sprinting.Studies on the general mechanisms of muscle strain injury implicated excessive muscle strain as the direct cause of injury.The key for reducing the risk of hamstring injuries is to reduce maximum muscle strains.Muscle strain is de fined as the ratio of muscle length deformation relative to the muscle resting length,2,3which suggests that muscle strain can be reduced by either reducing muscle deformation or increasing the resting length.For hamstring strain injuries in sprinting,reducing muscle deformations can be achieved by reducing trunk forward lean and increasing knee flexion,which may not be practical for maximizing performance.This leaves us with the second mechanism:increasing muscle resting length.Two studies in this special section demonstrate that hamstring muscle resting length is positively correlated to hamstring muscle flexibility and that maximal hamstring muscle strain in sprinting is negatively correlated to hamstring muscle flexibility.17,18Further studies are needed to determine the effects of flexibility training on hamstring muscleresting length,maximal hamstring muscle strain in sprinting, and risk for hamstring strain injury.

    Authors’contributions

    BY drafted the manuscript;HL performed literature searches and helped to draft and revise the manuscript;WEG helped to perform literature search and draft and revise the manuscript.All authors have read and approved the final version of the manuscript,and agree with the order of presentation of the authors.

    Competing interests

    The authors declare that they have no competing interests.

    1.Liu H,Garrett WE,Moorman CT,Yu B.Injury rate,mechanism,and risk factors of hamstring strain injuries in sports:a review of the literature.J Sport Health Sci2012;1:92–101.

    2.Garrett WE,Safran MR,Seaber AV,Glisson RR,Ribbeck BM. Biomechanical comparison of stimulated and nonstimulated skeletal muscle pulled to failure.Am J Sports Med1987;15:448–54.

    3.Lieber RL,Friden J.Muscle damage is not a function of muscle force but active muscle strain.J Appl Physiol1993;74:520–6.

    4.Lovering RM,Hakin M,Moorman CT,De Deyne PG.The contribution of contractile pre-activation to loss of function after a single lengthening contraction.J Biomech2005;38:1501–7.

    5.Nikolaou PK,Macdonald BL,Glisson RR,Seaber AV,Garrett WE. Biomechanical and histological evaluation of muscle after controlled strain injury.Am J Sports Med1987;15:9–14.

    6.Best TM,McElhaney JH,Garrett Jr WE,Myers BS.Axial strain measurements in skeletal muscle at various strain rates.J Biomech Eng1995;117:262–5.

    7.Brooks SV,Faulkner JA.Severity of contraction-induced injury is affected by velocity only during stretches of large strain.J Appl Physiol2001;91:661–6.

    8.Garrett Jr WE.Muscle strain injuries.Am J Sports Med1996;24:2–8.

    9.Verrall GM,Slavotinek JP,Barnes PG,Fon GT.Diagnostic and prognostic value of clinical findings in 83 athletes with posterior thigh injury: comparison of clinical findings with magnetic resonance imaging documentation of hamstring muscle strain.Am J Sports Med2003;31:969–73.

    10.Gabbe BJ,Finch CF,Bennell KL,Wajswelner H.Risk factors for hamstring injuries in community levelAustralian football.Br J Sports Med2005;39:106–10.

    11.Woods C,Hawkins RD,Maltby S,Hulse M,Thomas A,Hodson A.The football association medical research programme:an audit of injuries in professional football—analysis of hamstring injuries.Br J Sports Med2004;38:36–41.

    12.Brooks JH,Fuller CW,Kemp SP,Reddin DB.Incidence,risk,and prevention of hamstring muscle injuries in professional rugby union.Am J Sports Med2006;34:1297–306.

    13.Askling CM,Tengvar M,Saartok T,Thorstensson A.Acute first-time hamstring strains during high-speed running:a longitudinal study including clinical and magnetic resonance imaging findings.Am J Sports Med2007;35:197–206.

    14.Wood GA.Biomechanical limitations to sprint running.Med Sport Sci1987;25:58–71.

    15.Thelen DG,Chumanov ES,Best TM,Swanson SC,Heiderscheit BC. Simulation of biceps femoris musculotendon mechanics during the swing phase of sprinting.Med Sci Sports Exerc2005;37:1931–8.

    16.Yu B,Queen RM,Abbey AN,Liu Y,Moorman CT,Garrett WE. Hamstring muscle kinematics and activation during overground sprinting.J Biomech2008;41:3121–6.

    17.Wan X,Qu F,Garrett WE,Liu H,Yu B.Relationships among hamstring muscle optimal length and hamstring flexibility and strength.J Sport Health Sci2017;6.doi:10.1016/j.jshs.2016.04.009

    18.Wan X,Qu F,Garrett WE,Liu H,Yu B.The effect of hamstring flexibility on peak hamstring muscle strain in sprinting.J Sport Health Sci2017;6. doi:10.1016/j.jshs.2017.03.012

    31 August 2016;revised 8 November 2016;accepted 21 November 2016

    Available online 16 February 2017

    Peer review under responsibility of Shanghai University of Sport.

    *Corresponding author.

    E-mail address:byu@med.unc.edu(B.Yu).

    http://dx.doi.org/10.1016/j.jshs.2017.02.002

    2095-2546/?2017 Production and hosting by Elsevier B.V.on behalf of Shanghai University of Sport.This is an open access article under the CC BY-NC-ND license(http://creativecommons.org/licenses/by-nc-nd/4.0/).

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