An In Vitro Robotic Assessment of the Anterolateral Ligament, Part 1 Secondary Role of the Anterolateral Ligament in the Setting of an Anterior Cruciate Ligament Injury

被引:207
作者
Rasmussen, Matthew T. [1 ,2 ]
Nitri, Marco [1 ,2 ]
Williams, Brady T. [1 ,2 ]
Moulton, Samuel G. [1 ,2 ]
Cruz, Raphael Serra [1 ,2 ]
Dornan, Grant J. [1 ,2 ]
Goldsmith, Mary T. [1 ,2 ]
LaPrade, Robert F. [1 ,2 ,3 ]
机构
[1] Steadman Philippon Res Inst, Dept Biomed Engn, Vail, CO USA
[2] Steadman Philippon Res Inst, Vail, CO USA
[3] Steadman Clin, Vail, CO USA
关键词
anterolateral ligament; anterior cruciate ligament; rotational knee instability; pivot shift; Segond fracture; GRAFT FIXATION ANGLES; PATELLAR TENDON-BONE; PIVOT SHIFT TEST; BIOMECHANICAL EVALUATION; KNEE KINEMATICS; ANATOMY; SYSTEM; FORCES;
D O I
10.1177/0363546515618387
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
Background: Recent investigations have described the structural and functional behavior of the anterolateral ligament (ALL) of the knee through pull-apart and isolated sectioning studies. However, the secondary stabilizing role of the ALL in the setting of a complete anterior cruciate ligament (ACL) tear has not been fully defined for common simulated clinical examinations, such as the pivot-shift, anterior drawer, and internal rotation tests. Hypothesis: Combined sectioning of the ALL and ACL would lead to increased internal rotation and increased axial plane translation during a pivot-shift test when compared with isolated sectioning of the ACL. Study Design: Controlled laboratory study. Methods: Ten fresh-frozen human cadaveric knees were subjected to a simulated pivot-shift test with coupled 10-Nm valgus and 5-Nm internal rotation torques from 0 degrees to 60 degrees of knee flexion and a 5-Nm internal rotation torque and an 88-N anterior tibial load, both from 0 degrees to 120 degrees of knee flexion via a 6 degrees of freedom robotic system. Kinematic changes were measured and compared with the intact state for isolated sectioning of the ACL and combined sectioning of the ACL and ALL. Results: Combined sectioning of the ACL and ALL resulted in a significant increase in axial plane tibial translation during a simulated pivot shift at 0 degrees, 15 degrees, 30 degrees, and 60 degrees of knee flexion and a significant increase in internal rotation at 0 degrees, 15 degrees, 30 degrees, 45 degrees, 60 degrees, 75 degrees, 90 degrees, 105 degrees, and 120 degrees when compared with the intact and ACL-deficient states. Based on the model results, ALL sectioning resulted in an additional 2.1 mm (95% CI, 1.4-2.9 mm; P < .001) of axial plane translation during the pivot shift when compared with ACL-only sectioning, when pooling evidence over all flexion angles. Likewise, when subjected to IR torque, the ACL+ALL-deficient state resulted in an additional 3.2 degrees of internal rotation (95% CI, 2.4 degrees-4.1 degrees; P < .001) versus the intact state, and the additional sectioning of the ALL increased internal rotation by 2.7 degrees (95% CI, 1.8 degrees-3.6 degrees; P < .001) versus the ACL-deficient state. Conclusion: The results of this study confirm the ALL as an important lateral knee structure that provides rotatory stability to the knee. Specifically, the ALL was a significant secondary stabilizer throughout flexion during an applied internal rotation torque and simulated pivot-shift test in the context of an ACL-deficient knee.
引用
收藏
页码:585 / 592
页数:8
相关论文
共 38 条
[1]   CHRONIC ANTERIOR CRUCIATE LIGAMENT DEFICIENCY - LONG-TERM RESULTS OF MACINTOSH LATERAL SUBSTITUTION RECONSTRUCTION [J].
AMIRAULT, JD ;
CAMERON, JC ;
MACINTOSH, DL ;
MARKS, P .
JOURNAL OF BONE AND JOINT SURGERY-BRITISH VOLUME, 1988, 70 (04) :622-624
[2]  
[Anonymous], 1879, ProgMed
[3]  
[Anonymous], 1879, Progres Med
[4]  
[Anonymous], 2017, Miscellaneous functions for Grid Graphics R package gridExtra version 2.3
[5]   THE PIVOT SHIFT PHENOMENON - RESULTS AND DESCRIPTION OF A MODIFIED CLINICAL-TEST FOR ANTERIOR CRUCIATE LIGAMENT INSUFFICIENCY [J].
BACH, BR ;
WARREN, RF ;
WICKIEWICZ, TL .
AMERICAN JOURNAL OF SPORTS MEDICINE, 1988, 16 (06) :571-576
[6]   Anatomy of the anterolateral ligament of the knee [J].
Claes, Steven ;
Vereecke, Evie ;
Maes, Michael ;
Victor, Jan ;
Verdonk, Peter ;
Bellemans, Johan .
JOURNAL OF ANATOMY, 2013, 223 (04) :321-328
[7]  
Dodds AL, 2014, BONE JOINT J, V96B, P325, DOI [10.1302/0301620X.96B3.33033, 10.1302/0301-620X.96B3.33033]
[8]   Evaluation of a simulated pivot shift test: a biomechanical study [J].
Engebretsen, Lars ;
Wijdicks, Coen A. ;
Anderson, Colin J. ;
Westerhaus, Benjamin ;
LaPrade, Robert F. .
KNEE SURGERY SPORTS TRAUMATOLOGY ARTHROSCOPY, 2012, 20 (04) :698-702
[9]  
FEAGIN JA, 1985, CLIN SPORT MED, V4, P325
[10]   Distribution of in situ forces in the anterior cruciate ligament in response to rotatory loads [J].
Gabriel, MT ;
Wong, EK ;
Woo, SLY ;
Yagi, M ;
Debski, RE .
JOURNAL OF ORTHOPAEDIC RESEARCH, 2004, 22 (01) :85-89