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Related Concept Videos

Knee Joint01:23

Knee Joint

The knee joint is the most complicated joint in the body. It consists of three articulations– two tibiofemoral and one patellofemoral. As is characteristic of synovial joints, the knee joint has a thin articular capsule that partially surrounds this joint cavity. Additionally, several ligaments, muscles, and cartilaginous structures support the movement of the knee.
A total of seven ligaments support the knee joint. The patellar ligament, which is also attached to the quadriceps femoris group...
Bones of the Lower Limb: Femur and Patella01:16

Bones of the Lower Limb: Femur and Patella

The femur is the body's longest and strongest bone spanning the thigh region. Its head articulates with the acetabulum of the hip bone to form the hip joint. A minor indentation on the medial side of the femoral head, called the fovea capitis, serves as the site of attachment for the ligament of the head of the femur. This weak ligament spans the femur and acetabulum and supports the hip joint. The narrowed region below the head is the neck of the femur. The inclination angle between the neck...
Unsymmetric Bending01:18

Unsymmetric Bending

Unsymmetrical bending occurs when the bending moment applied to a structural member does not align with its principal axis. This misalignment leads to complex stress distributions and deflection patterns that differ from those in symmetrical bending, and are essential for designing structures to withstand different loading conditions. In unsymmetrical bending, the neutral axis—where stress is zero—does not necessarily align with the geometric axes of the cross-section. The orientation of the...
Muscles that Move the Leg01:23

Muscles that Move the Leg

The movement of the legs is facilitated by numerous muscles located within the anterior, medial, and posterior compartments of the thigh.
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 to...
Deformations in a Symmetric Member in Bending01:18

Deformations in a Symmetric Member in Bending

When analyzing the deformation of a symmetric prismatic member subjected to bending by equal and opposite couples, it becomes clear that as the member bends, the originally straight lines on its wider faces curve into circular arcs, with a constant radius centered at a point known as Point C. This phenomenon helps to understand the stress and strain distribution within the member more clearly.
When the member is segmented into tiny cubic elements, it is observed that the primary stress...
Unsymmetric Bending - Angle of Neutral Axis01:15

Unsymmetric Bending - Angle of Neutral Axis

Unsymmetrical bending occurs when a structural member is subjected to bending moments in a plane that does not align with the member's principal axes. This scenario typically arises in beams and other structural components when loads are applied at non-ideal angles, introducing complexities in stress analysis.
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 centroidal axes. The...

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The knee in full flexion: an anatomical study.

V Pinskerova1, K M Samuelson, J Stammers

  • 11st Orthopaedic Clinic, Charles University, Faculty Hospital Motol, Prague, Czech Republic.

The Journal of Bone and Joint Surgery. British Volume
|June 2, 2009
PubMed
Summary

This study examines the anatomy of the knee joint when bent to its maximum range, between 120 and 160 degrees. By using imaging and dissection, researchers found that this extreme range of motion involves unique joint movements that differ from standard bending. These findings suggest that current knee replacement implants may struggle to replicate this full range of motion.

Keywords:
knee kinematicsmeniscus compressionjoint replacementdeep flexion

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Area of Science:

  • Orthopedic surgery research within the field of tibiofemoral joint anatomy
  • Biomechanical analysis of knee flexion facet movement

Background:

Limited data exists regarding the structural behavior of the knee joint during extreme bending angles. Historical investigations into this specific range remain sparse, leaving a significant gap in our current orthopedic knowledge. Prior research has shown that standard joint motion models often fail to account for deep bending mechanics. That uncertainty drove the need for a comprehensive anatomical evaluation of the tibiofemoral interface. No prior work had resolved the precise interaction between the femoral condyles and menisci at these high angles. This gap motivated a detailed examination of the joint beyond standard operational limits. Previous studies focused primarily on lower flexion ranges, neglecting the complexities of deep knee bending. Understanding these structural shifts is vital for improving surgical outcomes in patients requiring full joint mobility.

Purpose Of The Study:

The aim of this investigation is to provide a comprehensive anatomical description of the knee joint during deep flexion. Researchers sought to clarify the structural behavior of the tibiofemoral interface between 120 and 160 degrees. This range is particularly relevant for the development of total knee replacement implants. Prior reports on this topic were limited, leaving the biomechanics of deep bending poorly understood. That uncertainty drove the need for a modern, multi-modal assessment of the joint. The study addresses the lack of detailed data regarding how femoral condyles interact with menisci at extreme angles. By examining both living and cadaveric specimens, the authors intended to resolve conflicting theories about joint movement. This work establishes a clearer picture of the anatomical constraints present during maximum knee bending.

Main Methods:

Review Approach involved analyzing eight cadaveric knees alongside one living subject to ensure comprehensive data collection. Researchers utilized magnetic resonance imaging to visualize soft tissue positioning during deep bending. Physical dissection provided direct observation of the internal joint structures at high angles. The team also incorporated previously published cryosections to validate their findings across different modalities. This multi-faceted design allowed for a robust comparison between living and preserved joint states. The investigators focused specifically on the range between 120 and 160 degrees of flexion. Every specimen underwent rigorous assessment to track the movement of the femoral condyles. This systematic approach ensured that the observed kinematics were consistent across all examined samples.

Main Results:

Key Findings From the Literature reveal that the flexion facet center of the medial femoral condyle shifts backward by 5 mm during deep bending. This movement causes the condyle to rise onto the posterior horn of the medial meniscus. At 160 degrees, the posterior horn becomes compressed within a synovial recess located between the femoral cortex and the tibia. This specific compression event serves to limit the total range of flexion. The lateral femoral condyle also exhibits a rollback motion, with the lateral meniscus moving in tandem. Both structures descend over the posterior tibia when the joint reaches 160 degrees. The authors report that these movements do not represent a simple continuation of standard kinematics observed below 120 degrees. Consequently, the researchers define this deep range as a separate and distinct arc of motion.

Conclusions:

Synthesis and Implications indicate that the deep flexion arc functions as a distinct mechanical phase. The authors propose that these unique anatomical shifts cannot be extrapolated from standard motion patterns. Their findings suggest that current prosthetic designs face significant challenges in replicating natural movement at extreme angles. The researchers highlight that the posterior horn compression acts as a physical barrier to further bending. This evidence implies that achieving physiological motion across the entire range remains a complex engineering hurdle. The study suggests that existing implant technology may not fully accommodate the requirements of deep flexion. These observations provide a framework for future developments in orthopedic implant geometry. The authors conclude that the distinct kinematics of this arc necessitate a reevaluation of current total knee replacement standards.

The researchers propose that deep flexion involves a distinct mechanical phase where the medial femoral condyle shifts backward by 5 mm. This movement forces the condyle onto the posterior horn of the medial meniscus, which becomes compressed within a synovial recess, ultimately restricting further joint rotation.

The study utilized magnetic resonance imaging, physical dissection of cadaveric specimens, and analysis of previously published cryosections. These combined approaches allowed for a comprehensive visualization of the joint structures in both living subjects and preserved tissues.

The authors state that the posterior horn of the medial meniscus is necessary to act as a physical buffer. It becomes trapped in a synovial recess between the femoral cortex and the tibia at 160 degrees, which prevents the joint from bending any further.

The researchers employed magnetic resonance imaging to capture soft tissue interactions in vivo. This data type was vital for observing how the menisci and femoral condyles shift relative to the posterior tibia during high-angle bending.

The authors measured the displacement of the flexion facet center of the medial femoral condyle. They observed a 5 mm posterior shift as the knee moved from 120 to 160 degrees of flexion, accompanied by an upward movement onto the posterior meniscus.

The researchers propose that designing a total knee replacement implant capable of physiological movement from 0 to 160 degrees is difficult. They argue that the unique anatomical features of the deep flexion arc are not compatible with standard implant kinematics.