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Computational model of a synovial joint morphogenesis

机译:滑膜关节形态发生的计算模型

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Joints enable the relative movement between the connected bones. The shape of the joint is important for the joint movements since they facilitate and smooth the relative displacement of the joint's parts. The process of how the joints obtain their final shape is yet not well understood. Former models have been developed in order to understand the joint morphogenesis leaning only on the mechanical environment; however, the obtained final anatomical shape does not match entirely with a realistic geometry. In this study, a computational model was developed with the aim of explaining how the morphogenesis of joints and shaping of ossification structures are achieved. For this model, both the mechanical and biochemical environments were considered. It was assumed that cartilage growth was controlled by cyclic hydrostatic stress and inhibited by octahedral shear stress. In addition, molecules such as PTHrP and Wnt promote chondrocyte proliferation and therefore cartilage growth. Moreover, the appearance of the primary and secondary ossification centers was also modeled, for which the osteogenic index and PTHrP-Ihh concentrations were taken into account. The obtained results from this model show a coherent final shape of an interphalangeal joint, which suggest that the mechanical and biochemical environments are crucial for the joint morphogenesis process.
机译:关节使连接的骨骼之间的相对运动能够实现。关节的形状对于关节运动是重要的,因为它们有助于和平滑关节零件的相对位移。联合如何获得最终形状的过程尚未得到很好的理解。已经开发了前模型,以了解仅在机械环境上倾向的关节形态发生;然而,所获得的最终解剖结构与现实的几何形状完全不匹配。在该研究中,开发了一种计算模型,目的是解释如何实现关节的形态发生和骨化结构的成形。对于该模型,考虑了机械和生物化学环境。假设软骨生长由循环静压应力控制并被八面体剪切应力抑制。此外,PTHRP和WNT等分子促进软骨细胞增殖,从而促进软骨生长。此外,还建模了初级和次级骨化中心的外观,其中考虑了骨质发生指数和PTHRP-IHH浓度。来自该模型的所得结果表明了间邻关节的相干最终形状,这表明机械和生化环境对于关节形态发生过程至关重要。

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