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首页> 外文期刊>Biomechanics and modeling in mechanobiology >Osteoblasts infill irregular pores under curvature and porosity controls: a hypothesis-testing analysis of cell behaviours
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Osteoblasts infill irregular pores under curvature and porosity controls: a hypothesis-testing analysis of cell behaviours

机译:在曲率和孔隙率控制下填充剂细胞填充不规则孔隙:细胞行为的假设 - 测试分析

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The geometric control of bone tissue growth plays a significant role in bone remodelling, age-related bone loss, and tissue engineering. However, how exactly geometry influences the behaviour of bone-forming cells remains elusive. Geometry modulates cell populations collectively through the evolving space available to the cells, but it may also modulate the individual behaviours of cells. To factor out the collective influence of geometry and gain access to the geometric regulation of individual cell behaviours, we develop a mathematical model of the infilling of cortical bone pores and use it with available experimental data on cortical infilling rates. Testing different possible modes of geometric controls of individual cell behaviours consistent with the experimental data, we find that efficient smoothing of irregular pores only occurs when cell secretory rate is controlled by porosity rather than curvature. This porosity control suggests the convergence of a large scale of intercellular signalling to single bone-forming cells, consistent with that provided by the osteocyte network in response to mechanical stimulus. After validating the mathematical model with the histological record of a real cortical pore infilling, we explore the infilling of a population of randomly generated initial pore shapes. We find that amongst all the geometric regulations considered, the collective influence of curvature on cell crowding is a dominant factor for how fast cortical bone pores infill, and we suggest that the irregularity of cement lines thereby explains some of the variability in double labelling data as well as the overall speed of osteon infilling.
机译:骨组织生长的几何控制在骨重塑,年龄相关的骨丢失和组织工程中起着重要作用。然而,几何形状对骨形成细胞的行为仍然难以捉摸。几何形状通过对细胞可用的不断发展的空间共同调节细胞群,但也可以调节细胞的各个行为。要考虑几何形状的集体影响并获得各种细胞行为的几何调节,我们开发了渗入皮质骨吸孔的数学模型,并用它与皮质缺陷率的可用实验数据。测试与实验数据一致的各个细胞行为的不同可能模式,我们发现当细胞分泌率由孔隙率而不是曲率控制时,才会发生不规则孔的有效平滑。该孔隙率控制表明,大规模的细胞间信号传递到单个骨形成细胞的会聚,与骨细胞网络响应机械刺激而提供的。在用真正皮质孔隙缺陷的组织学记录验证数学模型后,我们探讨了随机产生的初始孔形状的缺陷。我们发现,在考虑的所有几何法规中,曲率对细胞拥挤的集体影响是皮质骨吸虫填充的快速填充的主要因素,我们建议水泥线的不规则性解释了双标签数据的一些可变性以及重孔infilling的整体速度。

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