Javascript must be enabled to continue!
Biomechanics of the medial meniscus in the osteoarthritic knee joint
View through CrossRef
Background
Increased mechanical loading and pathological response of joint tissue to the abnormal mechanical stress can cause degradation of cartilage characteristic of knee osteoarthritis (OA). Despite osteoarthritis is risk factor for the development of meniscal lesions the mechanism of degenerative meniscal lesions is still unclear. Therefore, the aim of the study is to investigate the influence of medial compartment knee OA on the stress state and deformation of the medial meniscus.
Methods
The finite element method was used to simulate the stance phase of the gait cycle. An intact knee model was prepared based on magnetic resonance scans of the left knee joint of a healthy volunteer. Degenerative changes in the medial knee OA model were simulated by nonuniform reduction in articular cartilage thickness in specific areas and by a decrease in the material parameters of cartilage and menisci. Two additional models were created to separately evaluate the effect of alterations in articular cartilage geometry and material parameters of the soft tissues on the results. A nonlinear dynamic analysis was performed for standardized knee loads applied to the tibia bone.
Results
The maximum von Mises stress of 26.8 MPa was observed in the posterior part of the medial meniscus body in the OA model. The maximal hoop stress for the first peak of total force was 83% greater in the posterior horn and only 11% greater in the anterior horn of the medial meniscus in the OA model than in the intact model. The reduction in cartilage thickness caused an increase of 57% in medial translation of the medial meniscus body. A decrease in the compressive modulus of menisci resulted in a 2.5-fold greater reduction in the meniscal body width compared to the intact model.
Conclusions
Higher hoop stress levels on the inner edge of the posterior part of the medial meniscus in the OA model than in the intact model are associated with a greater medial translation of the meniscus body and a greater reduction in its width. The considerable increase in hoop stresses shows that medial knee OA may contribute to the initiation of meniscal radial tears.
Title: Biomechanics of the medial meniscus in the osteoarthritic knee joint
Description:
Background
Increased mechanical loading and pathological response of joint tissue to the abnormal mechanical stress can cause degradation of cartilage characteristic of knee osteoarthritis (OA).
Despite osteoarthritis is risk factor for the development of meniscal lesions the mechanism of degenerative meniscal lesions is still unclear.
Therefore, the aim of the study is to investigate the influence of medial compartment knee OA on the stress state and deformation of the medial meniscus.
Methods
The finite element method was used to simulate the stance phase of the gait cycle.
An intact knee model was prepared based on magnetic resonance scans of the left knee joint of a healthy volunteer.
Degenerative changes in the medial knee OA model were simulated by nonuniform reduction in articular cartilage thickness in specific areas and by a decrease in the material parameters of cartilage and menisci.
Two additional models were created to separately evaluate the effect of alterations in articular cartilage geometry and material parameters of the soft tissues on the results.
A nonlinear dynamic analysis was performed for standardized knee loads applied to the tibia bone.
Results
The maximum von Mises stress of 26.
8 MPa was observed in the posterior part of the medial meniscus body in the OA model.
The maximal hoop stress for the first peak of total force was 83% greater in the posterior horn and only 11% greater in the anterior horn of the medial meniscus in the OA model than in the intact model.
The reduction in cartilage thickness caused an increase of 57% in medial translation of the medial meniscus body.
A decrease in the compressive modulus of menisci resulted in a 2.
5-fold greater reduction in the meniscal body width compared to the intact model.
Conclusions
Higher hoop stress levels on the inner edge of the posterior part of the medial meniscus in the OA model than in the intact model are associated with a greater medial translation of the meniscus body and a greater reduction in its width.
The considerable increase in hoop stresses shows that medial knee OA may contribute to the initiation of meniscal radial tears.
Related Results
Concomitant Medial Meniscal Root Repair with Extrusion Repair (Centralization Technique)
Concomitant Medial Meniscal Root Repair with Extrusion Repair (Centralization Technique)
Background:
Meniscal extrusion is a phenomenon in which a degenerative posterior horn tear, radial tear, or root tear results in displacement of the body of the meniscu...
Meniscus Medial Posterior Root Tear Management
Meniscus Medial Posterior Root Tear Management
Medial meniscus posterior root tear (MMPRT) refers to the avulsion or complete radial tear occurring within a distance of 1 cm from the posterior tibial attachment of the medial me...
Ramp Lesions of the Posterior Segment of the Medial Meniscus: What Is Repaired? A Qualitative Histological Study of the Meniscocapsular and Meniscotibial Attachments
Ramp Lesions of the Posterior Segment of the Medial Meniscus: What Is Repaired? A Qualitative Histological Study of the Meniscocapsular and Meniscotibial Attachments
Abstract
Background
Lesions of the posterior segment of the medial meniscus are the most common intraarticular lesions associated with ACL injuri...
Inside-Out Repair of Medial Meniscal Ramp Lesions in Patients Undergoing Anterior Cruciate Ligament Reconstruction
Inside-Out Repair of Medial Meniscal Ramp Lesions in Patients Undergoing Anterior Cruciate Ligament Reconstruction
Background:
Medial meniscal ramp lesions are disruptions at the meniscocapsular junction and/or meniscotibial attachment of the posterior horn of the medial meniscus, a...
Porous Polymer Prosthesis for Meniscal Regeneration
Porous Polymer Prosthesis for Meniscal Regeneration
Meniscus is the most commonly injured structure in the knee joint. Resection of the
meniscus as well as the torn menisci is known to induce the degeneration of the articular cartil...
ANALISIS INFORMASI ANATOMI PENGGUNAAN PROYEKSI SKYLINE PADA PEMERIKSAAN KNEE JOINT POST ARTHROSCOPY
ANALISIS INFORMASI ANATOMI PENGGUNAAN PROYEKSI SKYLINE PADA PEMERIKSAAN KNEE JOINT POST ARTHROSCOPY
Latar belakang: knee Joint atau sendi lutut merupakan salah satu sendi terbesar dalam tubuh, sendi ini merupakan sendi yang kompleks. Osteoarthritis merupakan kelainan sendi degene...
Effect of different defect areas of medial femoral condyle cartilage on Meniscal articular Cartilage stress: three-dimensional finite element analysis
Effect of different defect areas of medial femoral condyle cartilage on Meniscal articular Cartilage stress: three-dimensional finite element analysis
Abstract
Background
The present-day three-dimensional finite element analysis (FEM) is widely used in human biomechanics research, but there are few studies on the effect ...
Three-dimensional meniscus allograft sizing—a study of 280 healthy menisci
Three-dimensional meniscus allograft sizing—a study of 280 healthy menisci
Abstract
Background
Inaccurate meniscus allograft size is still an important problem of the currently used sizing methods. The purpose of this study...

