School of Basic Sciences, IIT Bhubaneswar, Khordha 752050, India.
Microvasc Res. 2021 Jan;133:104099. doi: 10.1016/j.mvr.2020.104099. Epub 2020 Nov 2.
The conventional techniques in treating cancerous cells in a human body are conducted either by surgery or oral medication or injecting anticancer drugs, which may have several side effects on healthy cells. Compared to these techniques, site-specific delivery of drugs can be one of the pillars of cancer treatment. It could allow for better treatment efficiency and lesser adverse effects. A promising drug delivery approach is magnetic drug targeting, which can be realized if a drug delivery vehicle possesses an intense magnetic moment. Here, we discuss different types of magnetic nanomaterials, which can be used as magnetic drug delivery vehicles, approaches to magnetically targeted delivery, and promising strategies for the enhancement of the imaging-guided delivery and the therapeutic action. The present study aims to discuss all significant factors that influence the process of magnetic drug targeting through microvessels, such as fluidic force, magnetic force, particle-particle interaction, inertia force, Saffman lift force, and permeability of the microvessel. We consider the nature of blood flow as non-Newtonian in single-phase and two-phase models so that a realistic rheological model for an effective magnetic drug targeting can be established through proper comparison. Here we present a comprehensive mathematical model on magnetic drug targeting that could help the medical experts and biomedical engineers in applying the methodology of magnetic drug targeting effectively to cure cancerous disease.
在人体中治疗癌细胞的常规技术是通过手术、口服药物或注射抗癌药物进行的,这些方法可能对健康细胞有几种副作用。与这些技术相比,药物的靶向递药可以成为癌症治疗的支柱之一。它可以提高治疗效率,减少不良反应。一种有前途的药物递送方法是磁性药物靶向,这可以通过使药物递送载体具有强烈的磁矩来实现。在这里,我们讨论了不同类型的磁性纳米材料,它们可以用作磁性药物递送载体、磁靶向递送的方法,以及增强成像引导递送和治疗作用的有前途的策略。本研究旨在讨论通过微血管影响磁性药物靶向过程的所有重要因素,例如流体力、磁力、颗粒-颗粒相互作用、惯性力、萨夫曼升力和微血管的渗透性。我们将单相和两相模型中的血流性质视为非牛顿型,以便通过适当的比较为有效的磁性药物靶向建立现实的流变学模型。在这里,我们提出了一个关于磁性药物靶向的综合数学模型,这可以帮助医学专家和生物医学工程师有效地将磁性药物靶向方法应用于治疗癌症。