Quadriceps protects the anterior cruciate ligament

被引:30
作者
Bodor, M
机构
[1] Napa, CA 94558
关键词
D O I
10.1016/S0736-0266(01)00050-X
中图分类号
R826.8 [整形外科学]; R782.2 [口腔颌面部整形外科学]; R726.2 [小儿整形外科学]; R62 [整形外科学(修复外科学)];
学科分类号
摘要
The aim of this study is to show that the quadriceps is the primary muscular restraint to anterior tibial translation during closed kinetic chain activities such as running, jumping, walking, and standing. It is my hypothesis that the quadriceps vector is directed superiorly during open kinetic chain knee extension and inferiorly during closed kinetic chain knee extension. My methods involve vector analysis based on a lateral radiograph of the normal human knee and muscle ultrasound. My results show that the quadriceps vector is directed superiorly for open kinetic chain knee extension and inferiorly for closed kinetic chain knee extension. The inferiorly directed quadriceps vector has an anterior femoral-tibial or posterior tibial-femoral component, which protects the anterior cruciate ligament (ACL) from anterior tibial-femoral shear. Therefore during closed kinetic chain activities, the quadriceps protects the ACL regardless of the activity of the hamstrings. Given that the quadriceps is much stronger than the hamstrings, has better leverage at low knee flexion angles, and a favorable vector with regard to the ACL during closed kinetic chain activities, and since most activities of daily living, sports, and non-contact ACL injuries occur with the foot on the ground, then it can be concluded that the quadriceps is the primary ACL protagonist. My findings have the following implications: (1) weak quadriceps are a risk factor for non-contact ACL injuries, (2) strong quadriceps are important for ACL injury prevention and rehabilitation, and (3) preservation of quadriceps strength is an important surgical goal. (C) 2001 Orthopaedic Research Society. Published by Elsevier Science Ltd. All rights reserved.
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收藏
页码:629 / 633
页数:5
相关论文
共 25 条
[1]
Structural capacity of the knee to anterior cruciate ligament failure during quadriceps contraction. An in vivo study in the rat [J].
Aune, AK ;
Nordsletten, L ;
Ekeland, A .
JOURNAL OF BIOMECHANICS, 1996, 29 (07) :891-897
[2]
Quadriceps muscle contraction protects the anterior cruciate ligament during anterior tibial translation [J].
Aune, AK ;
Cawley, PW ;
Ekeland, A .
AMERICAN JOURNAL OF SPORTS MEDICINE, 1997, 25 (02) :187-190
[3]
Electromyographic and kinematic analysis of cutting maneuvers - Implications for anterior cruciate ligament injury [J].
Colby, S ;
Francisco, A ;
Yu, B ;
Kirkendall, D ;
Finch, M ;
Garrett, W .
AMERICAN JOURNAL OF SPORTS MEDICINE, 2000, 28 (02) :234-240
[4]
DANIEL DM, 1990, KNEE LIGAMENTS STRUC
[5]
Laxity, instability, and functional outcome after ACL injury: copers versus noncopers [J].
Eastlack, ME ;
Axe, MJ ;
Snyder-Mackler, L .
MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 1999, 31 (02) :210-215
[6]
Biomechanics of the knee during closed kinetic chain and open kinetic chain exercises [J].
Escamilla, RF ;
Fleisig, GS ;
Zheng, NG ;
Barrentine, SW ;
Wilk, KE ;
Andrews, JR .
MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 1998, 30 (04) :556-569
[7]
BIOMECHANICS OF THE KNEE-EXTENSION EXERCISE - EFFECT OF CUTTING THE ANTERIOR CRUCIATE LIGAMENT [J].
GROOD, ES ;
SUNTAY, WJ ;
NOYES, FR ;
BUTLER, DL .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1984, 66A (05) :725-733
[8]
The effect of neuromuscular training on the incidence of knee injury in female athletes - A prospective study [J].
Hewett, TE ;
Lindenfeld, TN ;
Riccobene, JV ;
Noyes, FR .
AMERICAN JOURNAL OF SPORTS MEDICINE, 1999, 27 (06) :699-706
[9]
Plyometric training in female athletes - Decreased impact forces and increased hamstring torques [J].
Hewett, TE ;
Stroupe, AL ;
Nance, TA ;
Noyes, FR .
AMERICAN JOURNAL OF SPORTS MEDICINE, 1996, 24 (06) :765-773
[10]
HEWETT TE, 2000, COMMUNICATION 0414