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Connecting biology and mechanics in fracture healing: An integrated mathematical modeling framework for the study of nonunions

机译:在骨折愈合中将生物学和力学联系起来:用于骨不愈合研究的集成数学建模框架

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Both mechanical and biological factors play an important role in normal as well as impaired fracture healing. This study aims to provide a mathematical framework in which both regulatory mechanisms are included. Mechanics and biology are coupled by making certain parameters of a previously established bioregulatory model dependent on local mechanical stimuli. To illustrate the potential added value of such a framework, this coupled model was applied to investigate whether local mechanical stimuli influencing only the angiogenic process can explain normal healing as well as overload-induced nonunion development. Simulation results showed that mechanics acting directly on angiogenesis alone was not able to predict the formation of overload-induced nonunions. However, the direct action of mechanics on both angiogenesis and osteogenesis was able to predict overload-induced nonunion formation, confirming the hypotheses of several experimental studies investigating the interconnection between angiogenesis and osteogenesis. This study shows that mathematical models can assist in testing hypothesis on the nature of the interaction between biology and mechanics.
机译:机械因素和生物学因素在正常以及受损的骨折愈合中都起着重要作用。这项研究旨在提供一个包含两个调节机制的数学框架。通过使先前建立的生物调节模型的某些参数依赖于局部机械刺激来耦合力学和生物学。为了说明这种框架的潜在附加价值,使用该耦合模型研究仅影响血管生成过程的局部机械刺激是否可以解释正常愈合以及超负荷引起的骨不连发展。仿真结果表明,仅直接作用于血管生成的机制无法预测超负荷诱导的骨不连的形成。但是,力学对血管生成和成骨的直接作用能够预测超负荷诱导的骨不连形成,从而证实了一些研究血管生成与成骨之间相互联系的实验假设。这项研究表明,数学模型可以帮助检验关于生物学和力学之间相互作用性质的假设。

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