[1] |
BISCIOTTI G N, CHAMARI K, CENA E, et al. Anterior cruciate ligament injury risk factors in football[J]. J Sports Med Phys Fitness, 2019, 59(10): 1724-1738.
doi: 10.23736/S0022-4707.19.09563-X
pmid: 31062538
|
[2] |
ALENTORN-GELI E, MYER G D, SILVERS H J, et al. Prevention of non-contact anterior cruciate ligament injuries in soccer players. Part 1: mechanisms of injury and underlying risk factors[J]. Knee Surg Sports Traumatol Arthrosc, 2009, 17(7): 705-729.
doi: 10.1007/s00167-009-0813-1
|
[3] |
HEWETT T E, FORD K R, MYER G D. Anterior cruciate ligament injuries in female athletes: Part 2, a meta-analysis of neuromuscular interventions aimed at injury prevention[J]. Am J Sports Med, 2006, 34(3): 490-498.
doi: 10.1177/0363546505282619
|
[4] |
HEWETT T E, MYER G D, FORD K R, et al. Biomechanical measures of neuromuscular control and valgus loading of the knee predict anterior cruciate ligament injury risk in female athletes: a prospective study[J]. Am J Sports Med, 2005, 33(4): 492-501.
doi: 10.1177/0363546504269591
|
[5] |
WEISS K, WHATMAN C. Biomechanics associated with patellofemoral pain and ACL injuries in sports[J]. Sports Med, 2015, 45(9): 1325-1337.
doi: 10.1007/s40279-015-0353-4
pmid: 26130304
|
[6] |
ARUNDALE A J H, KVIST J, HÄGGLUND M, et al. Jump performance in male and female football players[J]. Knee Surg Sports Traumatol Arthrosc, 2020, 28(2): 606-613.
doi: 10.1007/s00167-019-05747-1
|
[7] |
TURGUT E, YAGCI G, BAYRAKCI TUNAY V. Hip-focused neuromuscular exercise provides immediate benefits in foot pronation and dynamic balance: a sham-controlled cross-over study[J]. J Sport Rehabil, 2021, 30(7): 1088-1093.
doi: 10.1123/jsr.2020-0549
|
[8] |
FORD K R, NGUYEN A D, DISCHIAVI S L, et al. An evidence-based review of hip-focused neuromuscular exercise interventions to address dynamic lower extremity valgus[J]. Open Access J Sports Med, 2015, 6: 291-303.
|
[9] |
EMAMVIRDI M, LETAFATKAR A, KHALEGHI TAZJI M. The effect of valgus control instruction exercises on pain, strength, and functionality in active females with patellofemoral pain syndrome[J]. Sports Health, 2019, 11(3): 223-237.
doi: 10.1177/1941738119837622
pmid: 31034336
|
[10] |
OMI Y, SUGIMOTO D, KURIYAMA S, et al. Effect of hip-focused injury prevention training for anterior cruciate ligament injury reduction in female basketball players: a 12-year prospective intervention study[J]. Am J Sports Med, 2018, 46(4): 852-861.
doi: 10.1177/0363546517749474
pmid: 29360406
|
[11] |
NAGELLI C, DI STASI S, TATARSKI R, et al. Neuromuscular training improves self-reported function and single-leg landing hip biomechanics in athletes after anterior cruciate ligament reconstruction[J]. Orthop J Sports Med, 2020, 8(10): 2325967120959347.
|
[12] |
PLISKY P J, BULLOCK G S, GARNER M B, et al. The dorsiflexion range of motion screen: a validation study[J]. Int J Sports Phys Ther, 2021, 16(2): 306-311.
doi: 10.26603/001c.21253
pmid: 33842026
|
[13] |
HERRINGTON L, MUNRO A. Drop jump landing knee valgus angle; normative data in a physically active population[J]. Phys Ther Sport, 2010, 11(2): 56-59.
doi: 10.1016/j.ptsp.2009.11.004
pmid: 20381002
|
[14] |
WILLY R W, DAVIS I S. The effect of a hip-strengthening program on mechanics during running and during a single-leg squat[J]. J Orthop Sports Phys Ther, 2011, 41(9): 625-632.
doi: 10.2519/jospt.2011.3470
|
[15] |
LETAFATKAR A, RABIEI P, AFSHARI M. Effect of neuromuscular training augmented with knee valgus control instructions on lower limb biomechanics of male runners[J]. Phys Ther Sport, 2020, 43: 89-99.
doi: S1466-853X(19)30627-3
pmid: 32135451
|
[16] |
SHEERIN K R, HUME P A, WHATMAN C. Effects of a lower limb functional exercise programme aimed at minimising knee valgus angle on running kinematics in youth athletes[J]. Phys Ther Sport, 2012, 13(4): 250-254.
doi: 10.1016/j.ptsp.2012.01.003
pmid: 23068901
|
[17] |
NAKAHIRA Y, TAKETOMI S, KAWAGUCHI K, et al. Kinematic differences between the dominant and nondominant legs during a single-leg drop vertical jump in female soccer players[J]. Am J Sports Med, 2022, 50(10): 2817-2823.
doi: 10.1177/03635465221107388
|
[18] |
PADUA D A, MARSHALL S W, BOLING M C, et al. The Landing Error Scoring System (LESS) is a valid and reliable clinical assessment tool of jump-landing biomechanics: the jump-ACL study[J]. Am J Sports Med, 2009, 37(10): 1996-2002.
doi: 10.1177/0363546509343200
pmid: 19726623
|
[19] |
ZAZULAK B T, PONCE P L, STRAUB S J, et al. Gender comparison of hip muscle activity during single-leg landing[J]. J Orthop Sports Phys Ther, 2005, 35(5): 292-299.
doi: 10.2519/jospt.2005.35.5.292
|
[20] |
NEAMATALLAH Z, HERRINGTON L, JONES R. An investigation into the role of gluteal muscle strength and EMG activity in controlling HIP and knee motion during landing tasks[J]. Phys Ther Sport, 2020, 43: 230-235.
doi: S1466-853X(19)30376-1
pmid: 31902735
|
[21] |
HOLLMAN J H, HOHL J M, KRAFT J L, et al. Modulation of frontal-plane knee kinematics by hip-extensor strength and gluteus maximus recruitment during a jump-landing task in healthy women[J]. J Sport Rehabil, 2013, 22(3): 184-190.
pmid: 23579368
|
[22] |
袁鹏, 许贻林, 王丹, 等. 不同助跑速度条件下45°急停变向动作的膝和踝关节肌肉激活特征分析[J]. 体育科学, 2018, 38(8):49-58.
|
|
YUAN P, XU Y L, WANG D, et al. The muscle activation characteristics of knee and ankle during 45° side-step cutting task under different approach run speeds[J]. Chin Sport Sci, 2018, 38(8): 49-58.
|
[23] |
黎发根, 瓮长水, 王娜, 等. 膝关节内侧移位者髋部肌肉力量及表面肌电特征研究[J]. 中国康复医学杂志, 2016, 31(9): 969-972.
|
|
LI F G, WENG C S, WANG N, et al. A study of strenth and sEMG of hip muscles in people with medial knee displacement[J]. Chin J Rehabil Med, 2016, 31(9): 969-972.
|
[24] |
井兰香, 刘宇. 不同高度跳深动力学及下肢肌肉预激活调节[J]. 体育科学, 2012, 32(11): 64-69.
|
|
JING L X, LIU Y. Kinetics and pre-activity modulation of lower extremity muscles within different heights of drop jump[J]. Chin Sport Sci, 2012, 32(11): 64-69.
|
[25] |
黄浩洁, 孟欢欢, 霍洪峰, 等. 双腿着地时姿势偏移对下肢各关节缓冲分配和各肌群收缩模式的影响[J]. 天津体育学院学报, 2020, 35(6): 684-690.
|
|
HUANG H J, MENG H H, HUO H F, et al. Influence of postural deviation on the joints cushioning distribution and contraction pattern of the lower limb muscles during feet landing[J]. J Tianjin Univ Sport, 2020, 35(6): 684-690.
|
[26] |
DIX J, MARSH S, DINGENEN B, et al. The relationship between hip muscle strength and dynamic knee valgus in asymptomatic females: a systematic review[J]. Phys Ther Sport, 2019, 37: 197-209.
doi: S1466-853X(17)30358-9
pmid: 29859898
|
[27] |
HOLLMAN J H, GALARDI C M, LIN I H, et al. Frontal and transverse plane hip kinematics and gluteus maximus recruitment correlate with frontal plane knee kinematics during single-leg squat tests in women[J]. Clin Biomech (Bristol, Avon), 2014, 29(4): 468-474.
doi: 10.1016/j.clinbiomech.2013.12.017
|
[28] |
ANDERSEN L L, MAGNUSSON S P, NIELSEN M, et al. Neuromuscular activation in conventional therapeutic exercises and heavy resistance exercises: implications for rehabilitation[J]. Phys Ther, 2006, 86(5): 683-697.
pmid: 16649892
|
[29] |
SCARBOROUGH D M, LINDERMAN S E, COHEN V A, et al. Neuromuscular control of vertical jumps in female adolescents[J]. Sports Health, 2019, 11(4): 343-349.
doi: 10.1177/1941738119846513
pmid: 31145864
|
[30] |
PADUA D A, DISTEFANO L J, BEUTLER A I, et al. The Landing Error Scoring System as a screening tool for an anterior cruciate ligament injury-prevention program in elite-youth soccer athletes[J]. J Athl Train, 2015, 50(6): 589-595.
doi: 10.4085/1062-6050-50.1.10
|
[31] |
LISMAN P, WILDER J N, BERENBACH J, et al. The relationship between Landing Error Scoring System performance and injury in female collegiate athletes[J]. Int J Sports Phys Ther, 2021, 16(6): 1415-1425.
doi: 10.26603/001c.29873
pmid: 34909248
|
[32] |
MANCINI S, DICKIN D C, HANKEMEIER D, et al. Effects of a soccer-specific vertical jump on lower extremity landing kinematics[J]. Sports Med Health Sci, 2022, 4(3): 209-214.
doi: 10.1016/j.smhs.2022.07.003
pmid: 36090922
|
[33] |
POLLARD C D, SIGWARD S M, POWERS C M. Limited hip and knee flexion during landing is associated with increased frontal plane knee motion and moments[J]. Clin Biomech (Bristol, Avon), 2010, 25(2): 142-146.
doi: 10.1016/j.clinbiomech.2009.10.005
|
[34] |
BENCKE J, AAGAARD P, ZEBIS M K. Muscle activation during ACL injury risk movements in young female athletes: a narrative review[J]. Front Physiol, 2018, 9: 445.
doi: 10.3389/fphys.2018.00445
pmid: 29867521
|
[35] |
ELLENBERGER L, CASUTT S, FRÖHLICH S, et al. Thigh muscle activation patterns and dynamic knee valgus at peak ground reaction force during drop jump landings: reliability, youth competitive alpine skiing-specific reference values and relation to knee overuse complaints[J]. J Sci Med Sport, 2021, 24(12): 1230-1234.
doi: 10.1016/j.jsams.2021.06.006
pmid: 34238661
|
[36] |
DECKER M J, TORRY M R, WYLAND D J, et al. Gender differences in lower extremity kinematics, kinetics and energy absorption during landing[J]. Clin Biomech (Bristol, Avon), 2003, 18(7): 662-669.
doi: 10.1016/S0268-0033(03)00090-1
|