The effect of fixed charge density and cartilage swelling on mechanics of knee joint cartilage during simulated gait

被引:0
|
作者
Rasanen, Lasse P. [1 ,2 ]
Tanska, Petri [1 ]
Zbyn, Stefan [3 ,4 ]
van Donkelaar, Corrinus C. [5 ]
Trattnig, Siegfried [4 ,6 ]
Nieminen, Miika T. [3 ,7 ,8 ,9 ]
Korhonen, Rami K. [1 ,2 ]
机构
[1] Univ Eastern Finland, Dept Appl Phys, POB 1627, FI-70210 Kuopio, Finland
[2] Kuopio Univ Hosp, Diagnost Imaging Ctr, Kuopio, Finland
[3] Univ Oulu, Res Unit Med Imaging Phys & Technol, Oulu, Finland
[4] Med Univ Vienna, Dept Biomed Imaging & Image Guided Therapy, High Field MR Ctr, Vienna, Austria
[5] Eindhoven Univ Technol, Dept Biomed Engn, Orthopaed Biomech, Eindhoven, Netherlands
[6] CD Lab Clin Mol MR Imaging, Vienna, Austria
[7] Oulu Univ Hosp, Dept Diagnost Radiol, Oulu, Finland
[8] Univ Oulu, Med Res Ctr, Oulu, Finland
[9] Oulu Univ Hosp, Oulu, Finland
基金
芬兰科学院; 欧洲研究理事会;
关键词
Knee joint; Articular cartilage; Fixed charge density; Proteoglycans; Swelling; Gait; Finite element analysis; SPLIT-LINE PATTERN; 3D FINITE-ELEMENT; ARTICULAR-CARTILAGE; CONSTITUTIVE COMPONENTS; COMPUTATIONAL MODEL; TENSILE PROPERTIES; REPAIR TECHNIQUES; NA-23; MRI; IN-VIVO; COLLAGEN;
D O I
10.1016/jjbiomech.2017.06.041
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The effect of swelling of articular cartilage, caused by the fixed charge density (FCD) of proteoglycans, has not been demonstrated on knee joint mechanics during simulated walking before. In this study, the influence of the depth -wise variation of FCD was investigated on the internal collagen fibril strains and the mechanical response of the knee joint cartilage during gait using finite element (FE) analysis. The FCD distribution of tibial cartilage was implemented from sodium (Na-23) MRI into a 3-D FE -model of the knee joint ("Healthy model"). For comparison, models with decreased FCD values were created according to the decrease in FCD associated with the progression of osteoarthritis (OA) ("Early OA" and "Advanced OA" models). In addition, a model without FCD was created ("No FCD" model). The effect of FCD was studied with five different collagen fibril network moduli of cartilage. Using the reference fibril network moduli, the decrease in FCD from "Healthy model" to "Early OA" and "Advanced OA" models resulted in increased axial strains (by +2 and +6%) and decreased fibril strains (by 3 and 13%) throughout the stance, respectively, calculated as mean values through cartilage depth in the tibiofemoral contact regions. Correspondingly, compared to the "Healthy model", the removal of the FCD altogether in "NoFCD model" resulted in increased mean axial strains by +16% and decreased mean fibril strains by 24%. This effect was amplified as the fibril network moduli were decreased by 80% from the reference. Then mean axial strains increased by +6, +19 and +49% and mean fibril strains decreased by 9, 20 and 32%, respectively. Our results suggest that the FCD in articular cartilage has influence on cartilage responses in the knee during walking. Furthermore, the FCD is suggested to have larger impact on cartilage function as the collagen network degenerates e.g. in OA. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:34 / 44
页数:11
相关论文
共 50 条
  • [1] Spatial variation of fixed charge density in knee joint cartilage from sodium MRI - Implication on knee joint mechanics under static loading
    Rasanen, Lasse P.
    Tanska, Petri
    Mononen, Mika E.
    Lammentausta, Eveliina
    Zbyn, Stefan
    Venalainen, Mikko S.
    Szomolanyi, Pavol
    van Donkelaar, Corrinus C.
    Jurvelin, Jukka S.
    Trattnig, Siegfried
    Nieminen, Miika T.
    Korhonen, Rami K.
    [J]. JOURNAL OF BIOMECHANICS, 2016, 49 (14) : 3387 - 3396
  • [2] Fixed charge density and cartilage biornechanics
    Wilkins, RJ
    Hopewell, B
    Urban, JPG
    [J]. MANY FACES OF OSTEOARTHRITIS, 2002, : 387 - 395
  • [3] Importance of Patella, Quadriceps Forces, and Depthwise Cartilage Structure on Knee Joint Motion and Cartilage Response During Gait
    Halonen, K. S.
    Mononen, M. E.
    Jurvelin, J. S.
    Toyras, J.
    Klodowski, A.
    Kulmala, J. -P.
    Korhonen, R. K.
    [J]. JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2016, 138 (07):
  • [4] Gait Mechanics Influence Healthy Cartilage Morphology and Osteoarthritis of the Knee
    Andriacchi, Thomas P.
    Koo, Seungbum
    Scanlan, Sean F.
    [J]. JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 2009, 91A : 95 - 101
  • [5] Matrix Fixed Charge Density Modulates Exudate Concentration during Cartilage Compression
    Ko, Lok Shun
    Quinn, Thomas M.
    [J]. BIOPHYSICAL JOURNAL, 2013, 104 (04) : 943 - 950
  • [6] Effect of cartilage deformation on the laxity of the knee joint
    Huss, R.A.
    Holstein, H.
    O'Connor, J.J.
    [J]. Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine, 1999, 213 (01): : 19 - 32
  • [7] The effect of cartilage deformation on the laxity of the knee joint
    Huss, RA
    Holstein, H
    O'Connor, JJ
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART H-JOURNAL OF ENGINEERING IN MEDICINE, 1999, 213 (H1) : 19 - 32
  • [8] THE EFFECT OF SIMULATED FRACTURE-ANGULATIONS OF THE TIBIA ON CARTILAGE PRESSURES IN THE KNEE-JOINT
    MCKELLOP, HA
    SIGHOLM, G
    REDFERN, FC
    DOYLE, B
    SARMIENTO, A
    LUCK, JV
    [J]. JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1991, 73A (09): : 1382 - 1391
  • [9] Quantitative determination of joint incongruity and pressure distribution during simulated gait and cartilage thickness in the human hip joint
    von Eisenhart, R
    Adam, C
    Steinlechner, M
    Müller-Gerbl, M
    Eckstein, F
    [J]. JOURNAL OF ORTHOPAEDIC RESEARCH, 1999, 17 (04) : 532 - 539
  • [10] A musculoskeletal finite element model of rat knee joint for evaluating cartilage biomechanics during gait
    Orozco, Gustavo A.
    Karjalainen, Kalle
    Moo, Eng Kuan
    Stenroth, Lauri
    Tanska, Petri
    Rios, Jaqueline Lourdes
    Tuomainen, Teemu, V
    Nissi, Mikko J.
    Isaksson, Hanna
    Herzog, Walter
    Korhonen, Rami K.
    [J]. PLOS COMPUTATIONAL BIOLOGY, 2022, 18 (06)