Relative Strain in the Anterior Cruciate Ligament and Medial Collateral Ligament During Simulated Jump Landing and Sidestep Cutting Tasks: Implications for Injury Risk

被引:33
作者
Bates, Nathaniel A. [1 ]
Nesbitt, Rebecca J. [1 ]
Shearn, Jason T. [1 ]
Myer, Gregory D. [1 ]
Hewett, Timothy E. [1 ]
机构
[1] Univ Cincinnati, Cincinnati, OH USA
基金
美国国家卫生研究院;
关键词
anterior cruciate ligament injury; medial collateral ligament; cadaveric simulation; knee biomechanics; athletic tasks; KNEE-JOINT KINEMATICS; HIGH PREVALENCE; SOCCER PLAYERS; VIDEO ANALYSIS; TEAM HANDBALL; ACL INJURY; MECHANISMS; VALGUS; BIOMECHANICS; COMPRESSION;
D O I
10.1177/0363546515589165
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
100224 [整形外科学];
摘要
Background: The medial collateral (MCL) and anterior cruciate ligaments (ACL) are, respectively, the primary and secondary ligamentous restraints against knee abduction, which is a component of the valgus collapse often associated with ACL rupture during athletic tasks. Despite this correlation in function, MCL ruptures occur concomitantly in only 20% to 40% of ACL injuries. Hypothesis/Purpose: The purpose of this investigation was to determine how athletic tasks load the knee joint in a manner that could lead to ACL failure without concomitant MCL failure. It was hypothesized that (1) the ACL would provide greater overall contribution to intact knee forces than the MCL during simulated motion tasks and (2) the ACL would show greater relative peak strain compared with the MCL during simulated motion tasks. Study Design: Controlled laboratory study. Methods: A 6-degrees-of-freedom robotic manipulator articulated 18 cadaveric knees through simulations of kinematics recorded from in vivo drop vertical jump and sidestep cutting tasks. Specimens were articulated in the intact-knee and isolated-ligament conditions. After simulation, each ACL and MCL was failed in uniaxial tension along its fiber orientations. Results: During a drop vertical jump simulation, the ACL experienced greater peak strain than the MCL (6.1% vs 0.4%; P < .01). The isolated ACL expressed greater peak anterior force (4.8% vs 0.3% body weight; P < .01), medial force (1.6% vs 0.4% body weight; P < .01), flexion torque (8.4 vs 0.4 Nm; P < .01), abduction torque (2.6 vs 0.3 Nm; P < .01), and adduction torque (0.5 vs 0.0 Nm; P = .03) than the isolated MCL. During failure testing, ACL specimens preferentially loaded in the anteromedial bundle failed at 637 N, while MCL failure occurred at 776 N. Conclusion: During controlled physiologic athletic tasks, the ACL provides greater contributions to knee restraint than the MCL, which is generally unstrained and minimally loaded. Clinical Relevance: Current findings support that multiplanar loading during athletic tasks preferentially loads the ACL over the MCL, leaving the ACL more susceptible to injury. An enhanced understanding of joint loading during in vivo tasks may provide insight that enhances the efficacy of injury prevention protocols.
引用
收藏
页码:2259 / 2269
页数:11
相关论文
共 56 条
[1]
Arnout N, 2013, ACTA ORTHOP BELG, V79, P435
[2]
A Novel Methodology for the Simulation of Athletic Tasks on Cadaveric Knee Joints with Respect to In Vivo Kinematics [J].
Bates, Nathaniel A. ;
Nesbitt, Rebecca J. ;
Shearn, Jason T. ;
Myer, Gregory D. ;
Hewett, Timothy E. .
ANNALS OF BIOMEDICAL ENGINEERING, 2015, 43 (10) :2456-2466
[3]
Anterior cruciate ligament biomechanics during robotic and mechanical simulations of physiologic and clinical motion tasks: A systematic review and meta-analysis [J].
Bates, Nathaniel A. ;
Myer, Gregory D. ;
Shearn, Jason T. ;
Hewett, Timothy E. .
CLINICAL BIOMECHANICS, 2015, 30 (01) :1-13
[4]
Impact differences in ground reaction force and center of mass between the first and second landing phases of a drop vertical jump and their implications for injury risk assessment [J].
Bates, Nathaniel A. ;
Ford, Kevin R. ;
Myer, Gregory D. ;
Hewett, Timothy E. .
JOURNAL OF BIOMECHANICS, 2013, 46 (07) :1237-1241
[5]
Medial Collateral Ligament Injuries and Subsequent Load on the Anterior Cruciate Ligament A Biomechanical Evaluation in a Cadaveric Model [J].
Battaglia, Michael J., II ;
Lenhoff, Mark W. ;
Ehteshami, John R. ;
Lyman, Stephen ;
Provencher, Matthew T. ;
Wickiewicz, Thomas L. ;
Warren, Russell F. .
AMERICAN JOURNAL OF SPORTS MEDICINE, 2009, 37 (02) :305-311
[6]
BEYNNON B, 1992, INT ORTHOP, V16, P1
[7]
Mechanisms of anterior cruciate ligament injury [J].
Boden, BP ;
Dean, GS ;
Feagin, JA ;
Garrett, WE .
ORTHOPEDICS, 2000, 23 (06) :573-578
[8]
Boguszewski D.V., 2012, THESIS U CINCINNATI
[9]
Investigating the Effects of Anterior Tibial Translation on Anterior Knee Force in the Porcine Model: Is the Porcine Knee ACL Dependent? [J].
Boguszewski, Daniel V. ;
Shearn, Jason T. ;
Wagner, Christopher T. ;
Butler, David L. .
JOURNAL OF ORTHOPAEDIC RESEARCH, 2011, 29 (05) :641-646
[10]
LIGAMENTOUS RESTRAINTS TO ANTERIOR-POSTERIOR DRAWER IN THE HUMAN KNEE - BIOMECHANICAL STUDY [J].
BUTLER, DL ;
NOYES, FR ;
GROOD, ES .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1980, 62 (02) :259-270