A Multiphysics Model for Bone Repair Using Magnetic Scaffolds for Targeted Drug Delivery

IF 1.5 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Journal on Multiscale and Multiphysics Computational Techniques Pub Date : 2021-12-13 DOI:10.1109/JMMCT.2021.3134786
Matteo Bruno Lodi;Alessandro Fanti;Andrea Vargiu;Maurizio Bozzi;Giuseppe Mazzarella
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引用次数: 6

Abstract

Magnetic bone substitutes are multifunctional nanocomposite biomaterials designed to serve as an in-situ attraction platform for magnetic carriers of growth factors. The morphological and functional properties of these biomaterials were characterized so far, but very little is known on the treatment dynamics, and the latter cannot be designed from an engineering point of view. For the first time, this work deals with the mathematical modeling of the use of magnetic scaffolds and functionalized nanoparticles to evaluate the enhancement of osteogenesis and bone repair. The non-linear magnetization of the scaffolds is considered to simulate the attraction and transport of magnetic nanoparticles. Different biomaterials and drug carriers from the literature are analyzed. The drug release via RF-heating is modeled considering the multiphysics nature of the phenomena. The physiological process of bone healing is reproduced using nine non-linear equations. The influence of the delivered growth factor on osteogenesis is assessed and quantified in silico, while compared to numerical simulations of intravenous injection of growth factor and to its release from the biomaterial. The exploitation of magnetic carriers of biomolecules with magnetic scaffolds allows to produce a more homogeneous and uniform distribution of mature bone, overcoming the limitation of traditional drug delivery techniques.
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利用磁性支架进行骨修复的多物理场模型
磁性骨替代物是一种多功能纳米复合生物材料,可作为生长因子磁性载体的原位吸引平台。到目前为止,这些生物材料的形态和功能特性已经被表征,但对治疗动力学知之甚少,后者无法从工程的角度设计。这项工作首次涉及磁性支架和功能化纳米颗粒使用的数学模型,以评估骨生成和骨修复的增强。考虑支架的非线性磁化来模拟磁性纳米颗粒的吸引和运输。从文献中分析了不同的生物材料和药物载体。考虑到该现象的多物理场性质,通过射频加热对药物释放进行了建模。用九个非线性方程再现了骨愈合的生理过程。生长因子对骨生成的影响在计算机上进行了评估和量化,同时与静脉注射生长因子的数值模拟及其从生物材料中的释放进行了比较。利用磁性支架作为生物分子的磁性载体,可以使成熟骨的分布更加均匀,克服了传统给药技术的局限性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.30
自引率
0.00%
发文量
27
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