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Magnetic Nanoparticles in the Central Nervous System: Targeting Principles Applications and Safety Issues

机译:中枢神经系统中的磁性纳米粒子:靶向原理应用和安全问题

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摘要

One of the most challenging goals in pharmacological research is overcoming the Blood Brain Barrier (BBB) to deliver drugs to the Central Nervous System (CNS). The use of physical means, such as steady and alternating magnetic fields to drive nanocarriers with proper magnetic characteristics may prove to be a useful strategy. The present review aims at providing an up-to-date picture of the applications of magnetic-driven nanotheranostics agents to the CNS. Although well consolidated on physical ground, some of the techniques described herein are still under investigation on in vitro or in silico models, while others have already entered in—or are close to—clinical validation. The review provides a concise overview of the physical principles underlying the behavior of magnetic nanoparticles (MNPs) interacting with an external magnetic field. Thereafter we describe the physiological pathways by which a substance can reach the brain from the bloodstream and then we focus on those MNP applications that aim at a nondestructive crossing of the BBB such as static magnetic fields to facilitate the passage of drugs and alternating magnetic fields to increment BBB permeability by magnetic heating. In conclusion, we briefly cite the most notable biomedical applications of MNPs and some relevant remarks about their safety and potential toxicity.
机译:药理学研究中最具挑战性的目标之一是克服血脑屏障(BBB),以将药物输送到中枢神经系统(CNS)。使用物理手段(例如稳定磁场和交变磁场)来驱动具有适当磁特性的纳米载体可能证明是一种有用的策略。本综述旨在提供有关磁性驱动的纳米热力学试剂在中枢神经系统中应用的最新情况。尽管在物理基础上已得到很好的整合,但本文所述的某些技术仍在体外或计算机模拟中进行研究,而其他技术已进入或接近临床验证。该评论简要概述了磁性纳米粒子(MNP)与外部磁场相互作用的行为的物理原理。此后,我们描述了一种物质可以从血流到达大脑的生理学途径,然后我们重点研究那些旨在无损穿越BBB的MNP应用,例如,静磁场,以促进药物通过和交变磁场通过。通过磁加热增加BBB磁导率。总之,我们简要引用了MNP的最著名的生物医学应用以及有关其安全性和潜在毒性的一些相关评论。

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