Literature DB >> 2045979

Tensions in the anterior and posterior cruciate ligaments of the knee during passive loading: predicting ligament loads from in situ measurements.

J W Vahey1, L F Draganich.   

Abstract

Cruciate ligament tensions were predicted for anteroposterior (AP) tibial translation at 20 degrees, 30 degrees, 80 degrees, and 90 degrees of knee flexion based on in vitro measurements from six cadaver knees. A three-dimensional trigonometric equation was derived to calculate cruciate ligament tension as functions of AP force applied to the tibia and knee flexion angle (KFA). AP forces less than or equal to 150 N were applied. Ligament tension increased with applied AP force. The relationship between ligament tension and applied AP force appeared linear, but a Hotteling's T2 test failed to demonstrate a linear relationship. Tensions in the anterior cruciate ligament (ACL) attained magnitudes of approximately equal to 140 N. Tensions in the posterior cruciate ligament (PCL) attained magnitudes of approximately equal to 220 N. An analysis was performed to determine the sensitivity of ligament tension to hypothetical errors in the experimentally measured parameters used to compute ligament tension. The new method we report can be used to determine tensions in the ligaments of the knee or other joints for various loading conditions.

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Mesh:

Year:  1991        PMID: 2045979     DOI: 10.1002/jor.1100090408

Source DB:  PubMed          Journal:  J Orthop Res        ISSN: 0736-0266            Impact factor:   3.494


  11 in total

1.  Anterior opening wedge high tibial osteotomy: the effect of increasing posterior tibial slope on ligament strain.

Authors:  Paul A Martineau; Stephen D Fening; Anthony Miniaci
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2.  Effect of surgery to implant motion and force sensors on vertical ground reaction forces in the ovine model.

Authors:  Safa T Herfat; Jason T Shearn; Denis L Bailey; R Michael Greiwe; Marc T Galloway; Cindi Gooch; David L Butler
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Review 3.  Quantification of quadriceps and hamstring antagonist activity.

Authors:  E Kellis
Journal:  Sports Med       Date:  1998-01       Impact factor: 11.136

4.  In-situ forces in the human posterior cruciate ligament in response to posterior tibial loading.

Authors:  G J Carlin; G A Livesay; C D Harner; Y Ishibashi; H S Kim; S L Woo
Journal:  Ann Biomed Eng       Date:  1996 Mar-Apr       Impact factor: 3.934

5.  Determination of the in situ forces and force distribution within the human anterior cruciate ligament.

Authors:  G A Livesay; H Fujie; S Kashiwaguchi; D A Morrow; F H Fu; S L Woo
Journal:  Ann Biomed Eng       Date:  1995 Jul-Aug       Impact factor: 3.934

6.  Effect of knee flexion on the in situ force distribution in the human anterior cruciate ligament.

Authors:  J W Xerogeanes; Y Takeda; G A Livesay; Y Ishibashi; H S Kim; F H Fu; S L Woo
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  1995       Impact factor: 4.342

Review 7.  Review on tension in the natural and reconstructed anterior cruciate ligament.

Authors:  H N Andersen; A A Amis
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  1994       Impact factor: 4.342

Review 8.  Posterior cruciate ligament injuries in the athlete: an anatomical, biomechanical and clinical review.

Authors:  Fabrizio Margheritini; Jeff Rihn; Volker Musahl; Pier P Mariani; Christopher Harner
Journal:  Sports Med       Date:  2002       Impact factor: 11.136

9.  Arthroscopic treatment of acute acromioclavicular joint dislocation by coracoclavicular ligament augmentation.

Authors:  Xudong Liu; Xiaoqiao Huangfu; Jinzhong Zhao
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  2013-12-10       Impact factor: 4.342

10.  The effects of modified posterior tibial slope on anterior cruciate ligament strain and knee kinematics: a human cadaveric study.

Authors:  Stephen D Fening; Jeffrey Kovacic; Helen Kambic; Scott McLean; Jacob Scott; Anthony Miniaci
Journal:  J Knee Surg       Date:  2008-07       Impact factor: 2.757

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