4.2 Article

An Axisymmetric Boundary Element Model for Determination of Articular Cartilage Pericellular Matrix Properties In Situ via Inverse Analysis of Chondron Deformation

出版社

ASME
DOI: 10.1115/1.4000938

关键词

osteoarthritis; collagen; proteoglycan; aggrecan; numerical model; inverse problem

资金

  1. NIAMS NIH HHS [P01 AR050245, AR50245, R01 AR048852, AR48182, AR48852, R01 AR048182] Funding Source: Medline
  2. NIA NIH HHS [AG15768, R01 AG015768] Funding Source: Medline

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The pericellular matrix (PCM) is ate narrow tissue region surrounding all chondrocytes in articular cartilage and, together; the chondrocyte(s) and surrounding PCM have been termed the chondron. Previous theoretical and experimental studies suggest that ate structure and properties of the PCM significantly influence the biomechanical environment at the microscopic scale of the chondrsocytes within cartilage, In the present study, an axisymmetric boundary element method (BEM) was developed for linear elastic domains with internal interfaces. The new BEM was employed in a multiscale continuum model to determine linear elastic properties of the PCM in situ, via inverse analysis of previously reported experimental data for the three-dimensional morphological changes of chondrons within a cartilage explant in equilibrium unconfined compression (Choi, et al., 2007, Zonal Changes in the Three-Dimensional Morphology of the Chondron Under Compression: The Relationship Among Cellular; Pericellular; and Extracellular Deformation in Articular Cartilage, J. Biomech., 40, pp. 2596-2603). The microscale geometry of the chondmn (cell and PCM) within the cartilage extracellular matrix (ECM) was represented as a three-zone equilibrated biphasic region comprised of an ellipsoidal chondrocyte with encapsulating PCM that was embedded within a spherical ECM subjected to boundary conditions for unconfined compression at its outer boundary. Accuracy of the three-zone BEM model was evaluated and compared with analytical finite element solutions. The model was then integrated with a nonlinear optimization technique (Nelder Mead) to determine PCM elastic properties within the cartilage explant by solving an inverse problem associated with the in situ experimental data for chondron deformation. Depending on the assumed material properties of the ECM and the clzoice of cost function in the optimization, estimates of the PCM Young's modulus ranged from similar to 24 kPa to 59 kPa, consistent with previous measurements of PCM properties on extracted chondrons using micropipette aspiration. Taken together with previous experimental and theoretical studies of cell-matrix interactions in cartilage, these findings suggest an important role for the PCM in modulating the mechanical environment of the chondmcyte. [DOI: 10.1115/1.4000938]

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