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一种纳入细胞表型特异性活性的机械调节性骨愈合模型。

A mechano-regulatory bone-healing model incorporating cell-phenotype specific activity.

作者信息

Isaksson Hanna, van Donkelaar Corrinus C, Huiskes Rik, Ito Keita

机构信息

AO Research Institute, AO Foundation, Clavadelerstrasse 8, 7270 Davos, Switzerland; Department of Biomedical Engineering, Eindhoven University of Technology, Den Dolech 2, PO Box 513, 5600 MB Eindhoven, The Netherlands.

出版信息

J Theor Biol. 2008 May 21;252(2):230-46. doi: 10.1016/j.jtbi.2008.01.030. Epub 2008 Feb 9.

Abstract

Phenomenological computational models of tissue regeneration and bone healing have been only partially successful in predicting experimental observations. This may be a result of simplistic modeling of cellular activity. Furthermore, phenomenological models are limited when considering the effects of combined physical and biological interventions. In this study, a new model of cell and tissue differentiation, using a more mechanistic approach, is presented and applied to fracture repair. The model directly couples cellular mechanisms to mechanical stimulation during bone healing and is based on the belief that the cells act as transducers during tissue regeneration. In the model, the cells within the matrix proliferate, differentiate, migrate, and produce extracellular matrix, all at cell-phenotype specific rates, based on the mechanical stimulation they experience. The model is assembled from coupled partial differentiation equations, which are solved using a newly developed finite element formulation. The evolution of four cell types, i.e. mesenchymal stem cells, fibroblasts, chondrocytes and osteoblasts, and the production of extracellular matrices of fibrous tissue, cartilage and bone are calculated. The material properties of the tissues are iteratively updated based on actual amounts of extracellular matrix in material elements at progressive time points. A two-dimensional finite element model of a long bone osteotomy was used to evaluate the model's potential. The additional value of the presented model and the importance of including cell-phenotype specific activities when modeling tissue differentiation and bone healing, were demonstrated by comparing the predictions with phenomenological models. The model's capacity was established by showing that it can correctly predict several aspects of bone healing, including cell and tissue distributions during normal fracture healing. Furthermore, it was able to predict experimentally established alterations due to excessive mechanical stimulation, periosteal stripping and impaired effects of cartilage remodeling.

摘要

组织再生和骨愈合的现象学计算模型在预测实验观察结果方面仅取得了部分成功。这可能是由于细胞活动建模过于简单。此外,在考虑物理和生物联合干预的影响时,现象学模型存在局限性。在本研究中,提出了一种采用更机械论方法的细胞和组织分化新模型,并将其应用于骨折修复。该模型在骨愈合过程中将细胞机制与机械刺激直接耦合,基于细胞在组织再生过程中充当传感器的信念。在模型中,基质内的细胞根据所经历的机械刺激,以细胞表型特异性速率进行增殖、分化、迁移并产生细胞外基质。该模型由耦合的偏微分方程组装而成,使用新开发的有限元公式求解。计算了四种细胞类型,即间充质干细胞、成纤维细胞、软骨细胞和成骨细胞的演变,以及纤维组织、软骨和骨的细胞外基质的产生。根据不同时间点材料单元中细胞外基质的实际数量,对组织的材料特性进行迭代更新。使用长骨截骨的二维有限元模型来评估该模型的潜力。通过将预测结果与现象学模型进行比较,证明了所提出模型的附加价值以及在对组织分化和骨愈合进行建模时纳入细胞表型特异性活动的重要性。通过表明该模型能够正确预测骨愈合的几个方面,包括正常骨折愈合过程中的细胞和组织分布,确立了该模型的能力。此外,它能够预测由于过度机械刺激、骨膜剥离和软骨重塑受损效应而通过实验确定的改变。

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