首页> 外文会议>ASME summer bioengineering conference;SBC2010 >DETERMINATION OF IN SITU ARTICULAR CARTILAGE PERICELLULAR MATRIX PROPERTIES VIA INVERSE BEM ANALYSIS OF CHONDRON DEFORMATION
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DETERMINATION OF IN SITU ARTICULAR CARTILAGE PERICELLULAR MATRIX PROPERTIES VIA INVERSE BEM ANALYSIS OF CHONDRON DEFORMATION

机译:通过CHONDRON变形的反边界元法确定关节软骨周围基质的原位分布。

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The pericellular matrix (PCM) of articular cartilage is the narrow tissue region surrounding all chondrocytes. Together, the chondrocyte and its surrounding PCM have been termed the chondron. In normal cartilage, the presence of type VI collagen is exclusive to the PCM, and the PCM is believed to play a critical role in regulating biomechanical cell-matrix interactions. Since the PCM is stiffer than the chondrocyte, it has been hypothesized to play a critical role in protecting the cell while, simultaneously, facilitating the transmission of mechanical signals to the cell. Previous studies that represent the cell, PCM and extracellular matrix (ECM) as linear biphasic materials have supported this hypothesized role for the PCM [1-4]. Previous in vitro micropipette studies of isolated chondrons [5-7] have shown that the PCM Young's modulus ranges between 25-70kPa in middle and deep zone cartilage, separating it by an order of magnitude from both the chondrocyte stiffness (~lkPa) and ECM stiffness (~lMPa). In recent years, Choi et al. [8] measured changes in the three-dimensional morphology of the chondron, in situ within the ECM, under equilibrium unconfined compression of porcine cartilage explants subjected to 10-50% compressive strain (Fig. 1). Their study employed a novel 3D confocal microscopy technique, based on immunolabeling of type VI collagen, that yielded ellipsoidal approximations of undeformed and deformed chondron shapes in the superficial, middle and deep zones of the explant. In this study, an efficient computational model, based on the boundary element method (BEM), was developed and used to estimate cartilage PCM linear elastic properties based on the data reported in Choi et al. [8] for the case of middle zone cartilage under 10% compressive strain.
机译:关节软骨的细胞周围基质(PCM)是围绕所有软骨细胞的狭窄组织区域。软骨细胞及其周围的PCM一起被称为软骨。在正常软骨中,VI型胶原蛋白的存在是PCM独有的,并且认为PCM在调节生物力学细胞-基质相互作用中起关键作用。由于PCM比软骨细胞坚硬,因此可以认为它在保护细胞的同时起着至关重要的作用,同时又促进了机械信号向细胞的传递。先前将细胞,PCM和细胞外基质(ECM)表示为线性双相材料的研究支持了PCM的这种假设作用[1-4]。先前对离体软骨的体外微量移液研究[5-7]表明,中,深层软骨的PCM杨氏模量在25-70kPa之间,与软骨细胞硬度(〜lkPa)和ECM分开一个数量级。刚度(〜lMPa)。近年来,Choi等。文献[8]测量了在受到10-50%压缩应变的猪软骨外植体平衡无限制压缩条件下,ECM内部软骨的三维形态变化。(图1)。他们的研究采用了一种新型的3D共聚焦显微镜技术,该技术基于VI型胶原蛋白的免疫标记,可在外植体的表层,中层和深层区域产生未变形和变形的软骨形状的椭圆形近似值。在这项研究中,开发了一种基于边界元方法(BEM)的有效计算模型,并根据Choi等人的报告数据估算了软骨PCM的线性弹性。 [8]对于在10%压缩应变下的中区软骨。

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  • 会议地点 Naples, FL(US);Naples, FL(US)
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    Department of MathematicsNorth Carolina State UniversityRaleigh NC Current Address: Dept. of MathematicsUniversity of Notre DameNotre Dame IN;

    Division of Orthopaedic SurgerDepartment of SurgeryDuke University Medical CenterDurham NC;

    Department of MathematicsNorth Carolina State UniversityRaleigh NC;

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