A hybrid bioregulatory model of angiogenesis during bone fracture healing

被引:0
|
作者
Véronique Peiffer
Alf Gerisch
Dirk Vandepitte
Hans Van Oosterwyck
Liesbet Geris
机构
[1] Katholieke Universiteit Leuven,Division of Production Engineering, Machine design and Automation, Department of Mechanical Engineering
[2] Imperial College London,Department of Aeronautics
[3] Martin-Luther-Universität Halle-Wittenberg,Institut für Mathematik
[4] Technische Universität Darmstadt,Fachbereich Mathematik
[5] Katholieke Universiteit Leuven,Division of Biomechanics and Engineering Design, Department of Mechanical Engineering
[6] K.U. Leuven,Prometheus, Division of Skeletal Tissue Engineering
[7] Université de Liège,Biomechanics Research Unit
关键词
Bone regeneration; Endothelial cell; VEGF; Partial differential equation; Treatment strategy;
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中图分类号
学科分类号
摘要
Bone fracture healing is a complex process in which angiogenesis or the development of a blood vessel network plays a crucial role. In this paper, a mathematical model is presented that simulates the biological aspects of fracture healing including the formation of individual blood vessels. The model consists of partial differential equations, several of which describe the evolution in density of the most important cell types, growth factors, tissues and nutrients. The other equations determine the growth of blood vessels as a result of the movement of leading endothelial (tip) cells. Branching and anastomoses are accounted for in the model. The model is applied to a normal fracture healing case and subjected to a sensitivity analysis. The spatiotemporal evolution of soft tissues and bone, as well as the development of a blood vessel network are corroborated by comparison with experimental data. Moreover, this study shows that the proposed mathematical framework can be a useful tool in the research of impaired healing and the design of treatment strategies.
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页码:383 / 395
页数:12
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