Aims. In Asia and the Middle-East, people often flex their knees deeply
in order to perform activities of daily living. The purpose of this
study was to investigate the 3D kinematics of normal knees during
high-flexion activities. Our hypothesis was that the femorotibial
rotation, varus-valgus angle, translations, and kinematic pathway
of normal knees during high-flexion activities, varied according
to activity. Materials and Methods. We investigated the in vivo kinematics of eight
normal knees in four male volunteers (mean age 41.8 years; 37 to
53) using 2D and 3D registration technique, and modelled the knees
with a computer aided design program. Each subject squatted, kneeled,
and sat cross-legged. We evaluated the femoral rotation and varus-valgus
angle relative to the tibia and anteroposterior translation of the
medial and lateral side, using the transepicodylar axis as our femoral
reference relative to the perpendicular projection on to the tibial
plateau. This method evaluates the femur medially from what has
elsewhere been described as the extension facet centre, and differs
from the method classically applied. . Results. During squatting and kneeling, the knees displayed femoral external
rotation. When sitting cross-legged, femurs displayed internal rotation
from 10° to 100°. From 100°, femoral external rotation was observed.
No significant difference in varus-valgus angle was seen between
squatting and kneeling, whereas a varus position was observed from
140° when sitting cross-legged. The measure kinematic pathway using
our methodology found during squatting a medial pivoting pattern
from 0° to 40° and bicondylar rollback from 40° to 150°. During
kneeling, a medial pivot pattern was evident. When sitting cross-legged,
a lateral pivot pattern was seen from 0° to 100°, and a medial pivot
pattern beyond 100°. Conclusion. The kinematics of normal knees during
In this in vitro study of the
hip joint we examined which soft tissues act as primary and secondary
passive rotational restraints when the hip joint is functionally
loaded. A total of nine cadaveric left hips were mounted in a testing
rig that allowed the application of forces, torques and rotations
in all six degrees of freedom. The hip was rotated throughout a
complete range of movement (ROM) and the contributions of the iliofemoral
(medial and lateral arms), pubofemoral and ischiofemoral ligaments
and the ligamentum teres to rotational restraint was determined
by resecting a ligament and measuring the reduced torque required
to achieve the same angular position as before resection. The contribution
from the acetabular labrum was also measured. Each of the capsular
ligaments acted as the primary hip rotation restraint somewhere
within the complete ROM, and the ligamentum teres acted as a secondary
restraint in