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1.
Int J Numer Method Biomed Eng ; 35(6): e3196, 2019 06.
Artículo en Inglés | MEDLINE | ID: mdl-30835964

RESUMEN

Bone remodeling remains a highly researched topic investigated by many strands of science. The main purpose of this work is formulating a new computational framework for biological simulation, extending the version of the bone remodeling model previously proposed by Komarova. Thus, considering only the biological aspect of the remodeling process, the action of osteoclasts and osteoblasts is taken into account as well as its impact on bone mass. It is conducted a spatiotemporal analysis of a remodeling cycle obtaining a dynamic behavior of bone cells very similar to the biological process already described in the literature. The numerical example used is based on bone images obtained with scanning electron microscopy. During simulation, it is possible to observe the variation of bone's architecture through isomaps. These maps are obtained through the combination of biological bone remodeling models with three distinct numerical techniques-finite element method (FEM), radial point interpolation method (RPIM), and natural neighbor radial point interpolation method (NNRPIM). A study combining these numerical techniques allows to compare their performance. Ultimately, this work supports the inclusion of meshless methods due to their smoother results and its easiness to be combined with medical images from CT scans and MRI.


Asunto(s)
Algoritmos , Remodelación Ósea/fisiología , Simulación por Computador , Modelos Biológicos , Comunicación Autocrina , Densidad Ósea , Huesos/anatomía & histología , Huesos/fisiología , Recuento de Células , Análisis de Elementos Finitos , Humanos , Análisis Numérico Asistido por Computador , Tamaño de los Órganos , Osteoblastos/citología , Osteoclastos/citología , Comunicación Paracrina
2.
Comput Methods Biomech Biomed Engin ; 16(11): 1170-84, 2013.
Artículo en Inglés | MEDLINE | ID: mdl-22309146

RESUMEN

In this work, a novel anisotropic material law for the mechanical behaviour of the bone tissue is proposed. This new law, based on experimental data, permits to correlate the bone apparent density with the obtained level of stress. Combined with the proposed material law, a biomechanical model for predicting bone density distribution was developed, based on the assumption that the bone structure is a gradually self-optimising anisotropic biological material that maximises its own structural stiffness. The strain and the stress field required in the iterative remodelling process are obtained by means of an accurate meshless method, the Natural Neighbour Radial Point Interpolation Method (NNRPIM). Comparing with other numerical approaches, the inclusion of the NNRPIM presents numerous advantages such as the high accuracy and the smoother stress and strain field distribution. The natural neighbour concept permits to impose organically the nodal connectivity and facilitates the analysis of convex boundaries and extremely irregular meshes. The viability and efficiency of the model were tested on several trabecular benchmark patch examples. The results show that the pattern of the local bone apparent density distribution and the anisotropic bone behaviour predicted by the model for the microscale analysis are in good agreement with the expected structural architecture and bone apparent density distribution.


Asunto(s)
Algoritmos , Remodelación Ósea/fisiología , Análisis de Elementos Finitos , Modelos Biológicos , Anisotropía , Fenómenos Biomecánicos , Densidad Ósea , Huesos/metabolismo , Elasticidad
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