Related Experiment Video
Updated: Apr 8, 2026

A Mini-Invasive Internal Fixation Technique for Studying Immobilization-Induced Knee Flexion Contracture in Rats
Published on: May 20, 2019
The Superficial Medial Collateral Ligament Is the Primary Restraint to External Tibial Rotation Among Medial Knee
Rikiya Itagaki1, Kousuke Shiwaku1,2,3, Hidenori Otsubo4
1Department of Orthopaedic Surgery, School of Medicine, Sapporo Medical University, Sapporo, Japan.
Background:
External rotational stress of the knee leads to several knee problems and persistent pain. Clarifying the role of knee structures in external rotational stability aids in optimizing nonoperative treatment and guiding surgical indications. No previous studies have simultaneously compared the biomechanical contributions of both medial and lateral soft tissue structures to external rotational stress using a robotic system.
Purpose:
To investigate the influence of multiple soft tissue knee structures on stability during external tibial rotation at 0° to 90° of flexion using a robotic testing system.
Study Design:
Descriptive laboratory study.
Methods:
A total of 9 fresh-frozen cadaveric knee specimens and a robotic testing system were used. First, 5 N·m of external tibial rotation was applied to the intact knee at 0°, 15°, 30°, 60°, and 90° of knee flexion. The anterior cruciate ligament, anterolateral capsule, lateral collateral ligament, popliteus tendon (PT), posterior root of the lateral meniscus, superficial medial collateral ligament (sMCL), posterior root of the medial meniscus (MMPR), and posterior cruciate ligament (PCL) were then completely transected in sequence. After each transection, intact knee motion was reproduced for each knee condition, applying 5 N·m of external tibial rotation. By employing the principle of superposition, the resultant force of each structure was determined based on the 6 degrees of freedom force/torque data of each state. Resultant forces were statistically compared using the Kruskal-Wallis test, followed by the post hoc Steel-Dwass test.
Results:
The sMCL exhibited the greatest resultant force across all knee flexion angles from 0° to 90°. Between 30° and 90°, the MMPR and PT generated the highest resultant forces after the sMCL, while the PCL showed the greatest force at 90° after the sMCL, MMPR, and PT. At 60° of knee flexion, the sMCL, MMPR, and PT showed significantly greater resultant forces than the other structures (P < .05).
Conclusion:
Our study demonstrated that the sMCL exhibited the greatest resultant force under external tibial rotation across all knee flexion angles from 0° to 90°.
Clinical Relevance:
This study emphasizes the need to avoid excessive external rotation during the nonoperative or postoperative management of sMCL injuries, as rotational stress may compromise healing and functional recovery of the sMCL.
Related Concept Videos
Ankle Joint
Muscles that Move the Leg
Anterior Compartment
The quadriceps femoris, the most visible muscle of the anterior compartment, is integral for leg extension and thigh flexion. It is formed by merging four distinct muscles — the vastus lateralis, vastus medialis, vastus intermedius, and rectus femoris. The quadriceps tendon, a shared tendon of the four quadriceps muscles, is affixed...
Knee Joint
A total of seven ligaments support the knee joint. The patellar ligament, which is also attached to the quadriceps femoris...
Muscles that Move the Thigh
Three other significant muscles are the gluteus maximus, gluteus medius, and gluteus minimus. The gluteus maximus originates from the posterior surface of the ilium, sacrum, and coccyx, and the thoracolumbar...
Bones of the Lower Limb: Tibia and Fibula
Muscles of the Leg that Move the Foot and Toes
Anterior Compartment
The anterior compartment includes muscles that contribute to the dorsiflexion of the foot. This compartment houses the tibialis anterior, extensor hallucis longus, and extensor digitorum longus muscles....

