Biomedical Applications of Biomaterials Functionalized with Magnetic Nanoparticles

M. B. Lodi, A. Fanti
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引用次数: 2

Abstract

The combination of magnetic nanoparticles and a biocompatible material leads to the manufacturing of a multifunctional and remotely controlled platform useful for diverse biomedical issues. If a static magnetic field is applied, a magnetic scaffold behaves like an attraction platform for magnetic carriers of growth factors, thus being a potential tool to enhance magnetic drug delivery in regenerative medicine. To translate in practice this potential application, a careful and critical description of the physics and the influence parameter is required. This chapter covers the mathematical modeling of the process and assesses the problem of establishing the influence of the drug delivery system on tissue regeneration. On the other hand, if a time-varying magnetic field is applied, the magnetic nanoparticles would dissipate heat, which can be exploited to perform local hyperthermia treatment on residual cancer cells in the bone tissue. To perform the treatment planning, it is necessary to account for the modeling of the intrinsic nonlinear nature of the heat dissipation dynamic in magnetic prosthetic implants. In this work, numeric experiments to investigate the physiopathological features of the biological system, linked to the properties of the nanocomposite magnetic material, to assess its effectiveness as therapeutic agents are presented.
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磁性纳米颗粒功能化生物材料的生物医学应用
磁性纳米颗粒和生物相容性材料的结合导致了多功能和远程控制平台的制造,可用于各种生物医学问题。如果施加静磁场,磁性支架就像一个吸引生长因子磁性载体的平台,因此在再生医学中是一个潜在的增强磁性药物递送的工具。为了在实践中转化这种潜在的应用,需要对物理和影响参数进行仔细和严格的描述。本章涵盖了该过程的数学建模,并评估了建立药物输送系统对组织再生的影响的问题。另一方面,如果施加时变磁场,磁性纳米颗粒会散发热量,这可以用来对骨组织中残留的癌细胞进行局部热疗。为了进行治疗计划,有必要考虑磁性假体植入体散热动力学固有的非线性特性的建模。在这项工作中,提出了数值实验来研究生物系统的生理病理特征,与纳米复合磁性材料的特性有关,以评估其作为治疗剂的有效性。
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