Smith Isadora Takako, Zhang Elric, Yildirim Yagmur Akin, Campos Manuel Alberteris, Abdel-Mottaleb Mostafa, Yildirim Burak, Ramezani Zeinab, Andre Victoria Louise, Scott-Vandeusen Aidan, Liang Ping, Khizroev Sakhrat
Department of Electrical and Computer Engineering, University of Miami, Coral Gables, Florida, USA.
Cellular Nanomed, Inc. (CNMI), Irvine, California, USA.
Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2023 Mar;15(2):e1849. doi: 10.1002/wnan.1849. Epub 2022 Sep 3.
Unlike any other nanoparticles known to date, magnetoelectric nanoparticles (MENPs) can generate relatively strong electric fields locally via the application of magnetic fields and, vice versa, have their magnetization change in response to an electric field from the microenvironment. Hence, MENPs can serve as a wireless two-way interface between man-made devices and physiological systems at the molecular level. With the recent development of room-temperature biocompatible MENPs, a number of novel potential medical applications have emerged. These applications include wireless brain stimulation and mapping/recording of neural activity in real-time, targeted delivery across the blood-brain barrier (BBB), tissue regeneration, high-specificity cancer cures, molecular-level rapid diagnostics, and others. Several independent in vivo studies, using mice and nonhuman primates models, demonstrated the capability to deliver MENPs in the brain across the BBB via intravenous injection or, alternatively, bypassing the BBB via intranasal inhalation of the nanoparticles. Wireless deep brain stimulation with MENPs was demonstrated both in vitro and in vivo in different rodents models by several independent groups. High-specificity cancer treatment methods as well as tissue regeneration approaches with MENPs were proposed and demonstrated in in vitro models. A number of in vitro and in vivo studies were dedicated to understand the underlying mechanisms of MENPs-based high-specificity targeted drug delivery via application of d.c. and a.c. magnetic fields. This article is categorized under: Nanotechnology Approaches to Biology > Nanoscale Systems in Biology Therapeutic Approaches and Drug Discovery > Nanomedicine for Neurological Disease Therapeutic Approaches and Drug Discovery > Nanomedicine for Oncologic Disease Therapeutic Approaches and Drug Discovery > Emerging Technologies.
与迄今所知的任何其他纳米颗粒不同,磁电纳米颗粒(MENPs)可以通过施加磁场在局部产生相对较强的电场,反之,其磁化会因微环境中的电场而发生变化。因此,MENPs可以在分子水平上作为人造设备与生理系统之间的无线双向接口。随着室温生物相容性MENPs的最新发展,出现了许多新颖的潜在医学应用。这些应用包括无线脑刺激和实时神经活动的映射/记录、跨血脑屏障(BBB)的靶向递送、组织再生、高特异性癌症治疗、分子水平的快速诊断等。几项独立的体内研究,使用小鼠和非人类灵长类动物模型,证明了通过静脉注射将MENPs递送至脑内穿过血脑屏障的能力,或者通过鼻内吸入纳米颗粒绕过血脑屏障。几个独立的研究小组在不同的啮齿动物模型中,在体外和体内都证明了使用MENPs进行无线深部脑刺激。提出并在体外模型中证明了使用MENPs的高特异性癌症治疗方法以及组织再生方法。许多体外和体内研究致力于通过施加直流和交流磁场来理解基于MENPs的高特异性靶向药物递送的潜在机制。本文分类如下:纳米技术在生物学中的应用>生物学中的纳米尺度系统;治疗方法与药物发现>神经疾病的纳米医学;治疗方法与药物发现>肿瘤疾病的纳米医学;治疗方法与药物发现>新兴技术。