Computational Model of the Human Elbow and Forearm: Application to Complex Varus Instability

被引:23
作者
Spratley, Edward M.
Wayne, Jennifer S. [1 ]
机构
[1] Virginia Commonwealth Univ, Dept Biomed Engn, Orthopaed Res Lab, Richmond, VA 23284 USA
关键词
Lateral collateral ligament; Radial head; Coronoid process; Biomechanical; Joint contact; Ligament tension; CT; Three dimensional; MUSCULOSKELETAL MODEL; INTEROSSEOUS MEMBRANE; JOINT; LUBRICATION; STABILITY; LIGAMENT;
D O I
10.1007/s10439-010-0224-y
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Computational modeling is an effective way to predict the response of complex systems to perturbations that are difficult or impossible to measure experimentally. A computational model of the human elbow was developed wherein joint function was dictated by three-dimensional osteoarticular interactions, soft tissue constraints, muscle action, and external loading. The model was validated against two cadaveric experiments that examined the significance of coronoid process (CP) fractures, lateral ulnar collateral ligament (LUCL) ruptures, and radial head (RH) resection in varus stability. The model was able to accurately reproduce the trend of decreasing resistance to varus displacement with increased CP resection, with a significant drop in stability observed at > 50% resection. In addition, the model showed that isolated repair of either the LUCL or RH conferred significant varus stability to the joint in the presence of a deficient coronoid, with the ligament responsible for the greatest increase in stability. Predicted magnitudes of joint contact force support claims that the ulnohumeral articulation is the most significant osseous stabilizer of the joint in varus, with the radiohumeral articulation having an increased role with increasing coronoid resection at low flexion angles. With confidence in the predictive ability of this computational model, future simulations could further investigate joint function under other loading scenarios and injury states.
引用
收藏
页码:1084 / 1091
页数:8
相关论文
共 29 条
[1]  
BEGGS JS, 1983, KINEMATICS, V223
[2]   Muscular resistance to varus and valgus loads at the elbow [J].
Buchanan, TS ;
Delp, SL ;
Solbeck, JA .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1998, 120 (05) :634-639
[3]   Complex varus elbow instability: A terrible triad model [J].
Fern, Stephen E. ;
Owen, John R. ;
Ordyna, Nicholas J. ;
Wayne, Jennifer S. ;
Boardman, N. Douglas, III .
JOURNAL OF SHOULDER AND ELBOW SURGERY, 2009, 18 (02) :269-274
[4]  
FISK JP, 2007, BIOMEDICAL ENG, P144
[5]   Development and Validation of a Computational Musculoskeletal Model of the Elbow and Forearm [J].
Fisk, Justin P. ;
Wayne, Jennifer S. .
ANNALS OF BIOMEDICAL ENGINEERING, 2009, 37 (04) :803-812
[6]   Anatomy and biomechanics of the elbow joint [J].
Fornalski, S ;
Gupta, R ;
Lee, TQ .
SPORTS MEDICINE AND ARTHROSCOPY REVIEW, 2003, 11 (01) :1-9
[7]   Passive strain distribution in the interosseous ligament of the forearm: Implications for injury reconstruction [J].
Gabriel, MT ;
Pfaeffle, HJ ;
Stabile, KJ ;
Tomaino, MM ;
Fischer, KJ .
JOURNAL OF HAND SURGERY-AMERICAN VOLUME, 2004, 29A (02) :293-298
[8]  
Garner BRIAN A., 1999, Comput Methods Biomech Biomed Engin, V2, P107, DOI 10.1080/10255849908907981
[9]   AUTOMATIC INTEGRATION OF ORDINARY DIFFERENTIAL EQUATIONS [J].
GEAR, CW .
COMMUNICATIONS OF THE ACM, 1971, 14 (03) :176-&
[10]   Development and evaluation of a musculoskeletal model of the elbow joint complex [J].
Gonzalez, RV ;
Hutchins, EL ;
Barr, RE ;
Abraham, LD .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1996, 118 (01) :32-40