Related Experiment Video
Updated: Jan 12, 2026

Four-Dimensional CT Analysis Using Sequential 3D-3D Registration
Published on: November 23, 2019
Dynamic coronal plane knee alignment: Femoral anatomy determines kinematic curve morphology, tibial anatomy
Petros Ismailidis1,2,3, Anthony Leicht2,4, Kenji Doma1,2
1The Orthopaedic Research Institute of Queensland (ORIQL), Pimlico, Queensland, Australia.
Purpose:
A single hip-knee-ankle angle (HKA) angle does not reflect the biomechanics of native, arthritic or prosthetic knees. Since HKA varies throughout flexion, dynamic coronal alignment is best represented by a kinematic curve plotting HKA against the range of motion. This study aimed to evaluate the relationship between kinematic HKA curves and the bony morphology of the distal femur and proximal tibia. We hypothesised that variations in distal femoral and proximal tibial anatomy are associated with distinct patterns of dynamic coronal alignment.
Methods:
This was an experimental study using a non-weight-bearing articulated surgical education bone model including hemipelvis, femur and tibia. Articular surfaces and bony landmarks were registered with a computer navigation system. Using medial opening wedge femoral and tibial osteotomies and a rotational femoral osteotomy, 70 morphotypes were created by altering distal femoral angle (DFA), proximal tibial angle (PTA) and femoral axial angle (FAA). For each configuration, a coronal kinematic curve was recorded from 0° to 120° of flexion.
Results:
Five curve morphotypes were identified: straight, drift, inverse drift, C-shaped and inverse C-shaped. DFA and FAA differed significantly among morphotypes (p < 0.001), whereas PTA had no effect (p = 0.084). Paired comparisons confirmed significant differences in DFA and FAA across curve types.
Conclusion:
In this sawbone model, dynamic coronal plane alignment curve morphology was determined by distal femoral coronal and torsional anatomy, while tibial anatomy shifted the curve position without altering morphology. Restoring the pre-arthritic curve in TKA requires restoring DFA and FAA, whereas achieving a neutral straight curve requires individualised FAA adjustment. Consistently producing a neutral straight curve is not possible without computer-assisted or robotic surgery. These findings require validation in cadaveric or clinical studies but may guide surgical strategies aiming to reproduce native knee kinematics.
Level Of Evidence:
N/A.
Related Concept Videos
Knee Joint
A total of seven ligaments support the knee joint. The patellar ligament, which is also attached to the quadriceps femoris...
Bones of the Lower Limb: Femur and Patella
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...
Functional Classification of Joints
The functional classification of joints is determined by the amount of mobility between the adjacent bones. Joints are functionally classified as a synarthrosis or immobile joint, an amphiarthrosis or slightly moveable joint, or as a diarthrosis, a freely moveable joint. Fibrous and cartilaginous joints can be functionally classified as either synarthroses or amphiarthroses, whereas all synovial joints are classified as diarthroses.
Synarthrosis
An...
Unsymmetric Bending - Angle of Neutral Axis
When a bending moment is applied at an angle θ concerning the vertical axis of a symmetrical member, it can be resolved into components along the member's principal...
Eccentric Axial Loading in a Plane of Symmetry

