FCT, Universidade Nova de Lisboa, Caparica, Portugal.
J Biomech. 2011 Jan 11;44(2):321-9. doi: 10.1016/j.jbiomech.2010.10.007. Epub 2010 Oct 30.
Natural biological materials usually present a hierarchical arrangement with various structural levels. The biomechanical behavior of the complex hierarchical structure of bone is investigated with models that address the various levels corresponding to different scales. Models that simulate the bone remodeling process concurrently at different scales are in development. We present a multiscale model for bone tissue adaptation that considers the two top levels, whole bone and trabecular architecture. The bone density distribution is calculated at the macroscale (whole bone) level, and the trabecular structure at the microscale level takes into account its mechanical properties as well as surface density and permeability. The bone remodeling process is thus formulated as a material distribution problem at both scales. At the local level, the biologically driven information of surface density and permeability characterizes the trabecular structure. The model is tested by a three-dimensional simulation of bone tissue adaptation for the human femur. The density distribution of the model shows good agreement with the actual bone density distribution. Permeability at the microstructural level assures interconnectivity of pores, which mimics the interconnectivity of trabecular bone essential for vascularization and transport of nutrients. The importance of this multiscale model relays on the flexibility to control the morphometric parameters that characterize the trabecular structure. Therefore, the presented model can be a valuable tool to define bone quality, to assist with diagnosis of osteoporosis, and to support the development of bone substitutes.
天然生物材料通常呈现出具有各种结构层次的层次排列。通过针对不同尺度的相应层次的模型来研究骨骼复杂层次结构的生物力学行为。同时在不同尺度上模拟骨骼重塑过程的模型正在开发中。我们提出了一种用于骨骼组织适应的多尺度模型,该模型考虑了两个最高层次,即整个骨骼和小梁结构。在宏观尺度(整个骨骼)上计算骨骼密度分布,在微观尺度上考虑小梁结构的机械性能以及表面密度和渗透性。因此,骨骼重塑过程被表述为两个尺度上的材料分布问题。在局部水平上,由表面密度和渗透性的生物驱动信息来表征小梁结构。通过对人体股骨的骨骼组织适应的三维模拟来测试该模型。模型的密度分布与实际骨骼密度分布吻合良好。微观结构水平的渗透性可确保孔隙的连通性,这模拟了小梁骨骼对于血管生成和营养物质运输的连通性至关重要。该多尺度模型的重要性在于控制特征小梁结构的形态计量参数的灵活性。因此,所提出的模型可以成为定义骨骼质量的有用工具,有助于骨质疏松症的诊断,并支持骨骼替代品的开发。