Effects of combined knee loadings on posterior cruciate ligament force generation
- 1 July 1996
- journal article
- research article
- Published by Wiley in Journal of Orthopaedic Research
- Vol. 14 (4) , 633-638
- https://doi.org/10.1002/jor.1100140419
Abstract
Resultant forces in the posterior cruciate ligament were measured under paired combinations of posterior tibial force, internal and external tibial torque, and varus and valgus moment. The force generated in the ligament from a straight 100 N posterior tibial force was highly sensitive to the angle of knee flexion. For example, at 90 of flexion the mean resultant force in the posterior cruciate ligament was 112% of the applied posterior tibial force, whereas at 0°, only 16% of the applied posterior force was measured in the ligament. When the tibia was preloaded by 10 Nm of external torque, only 9–13% of the 100 N posterior tibial force was transmitted to the posterior cruciate ligament at flexion angles less than 60° at 90° of flexion, 61% was carried by the ligament. This “off-loading” of the posterior cruciate ligament also occurred when the tibia was preloaded by 10 Nm or internal torque, but only at knee flexion angles between 20 and 40°. The addition of 10 Nm of valgus moment to a knee loaded by a 100 N posterior tibial force increased the mean force in the posterior cruciate ligament at all flexion angles except hyperextension: this represents a common and potentially dangerous loading combination. The addition of 10 Nm of varus moment to a knee loaded by a 100 N posterior tibial force increased the mean force in the posterior cruciate ligament at all flexion angles except hyperextension; this represents a common and potentially dangerous loading combination. The addition of 10 Nm of varus moment to a knee loaded by a 100 N posterior tibial force decreased the mean force in the ligament between 10 and 70° of flexion. External tibial torque (alone or combined with varus or valgus moment) was not an important loading mechanism in the posterior cruciate ligament. The application of internal torque plus varus moment at 90° of flexion produced the greatest posterior cruciate ligament forces in our study and represented the only potential injury mechanism that did not involve posterior tibial force.Keywords
This publication has 15 references indexed in Scilit:
- Combined knee loading states that generate high anterior cruciate ligament forcesJournal of Orthopaedic Research, 1995
- Posterior cruciate ligament injuries in trauma patientsArthroscopy: The Journal of Arthroscopic & Related Surgery, 1993
- Direct measurement of resultant forces in the anterior cruciate ligament. An in vitro study performed with a new experimental technique.Journal of Bone and Joint Surgery, 1990
- Isolated posterior cruciate ligament injuries in athletesThe American Journal of Sports Medicine, 1987
- Acute straight lateral instability of the kneeThe American Journal of Sports Medicine, 1983
- Acute tears of the posterior cruciate ligament: Clinical study and results of operative treatment in 27 casesThe American Journal of Sports Medicine, 1983
- Arthroscopic examination of the posterior cruciate ligament.Journal of Bone and Joint Surgery, 1981
- INTERSTITIAL TEARS OF THE POSTERIOR CRUCIATE LIGAMENT OF THE KNEEPublished by SLACK, Inc. ,1980
- Injuries to the Posterior Cruciate LigamentPublished by Wolters Kluwer Health ,1980
- Diagnosis of acute knee injuries with hemarthrosisThe American Journal of Sports Medicine, 1980