Nanomedicine Laboratory, Fondazione IRCCS Istituto Neurologico Carlo Besta, c/o AMADEOLAB, via G.A. Amadeo 42, 20133 Milan, Italy.
Nanoscale. 2018 Dec 21;10(47):22420-22428. doi: 10.1039/c8nr07182a. Epub 2018 Nov 26.
Diagnosis and treatment of brain disorders, such as epilepsy, neurodegenerative diseases and tumors, would benefit from innovative approaches to deliver therapeutic or diagnostic compounds into the brain parenchyma, with either a homogeneous or a targeted localized distribution pattern. To assess the mechanistic aspect of penetration of nanoparticles (NPs) into the brain parenchyma, a complex, yet controlled and facilitated environment was used: the isolated guinea pig brain maintained in vitro by arterial perfusion. In this unique preparation the blood-brain barrier and the interactions between vascular and neuronal compartments are morphologically and functionally preserved. In this study, superparamagnetic Au/Fe nanoparticles (MUS:OT Au/Fe NPs), recently studied as a promising magnetic resonance T2 contrast agent with high cellular penetration, were arterially perfused into the in vitro isolated brain and showed high and homogeneous penetration through transcytosis into the brain parenchyma. Ultramicroscopy investigation of the in vitro isolated brain sections by TEM analysis of the electron-dense core of the MUS:OT Au/Fe NPs was conducted to understand NPs' brain penetration through the BBB after in vitro arterial perfusion and their distribution in the parenchyma. Our data suggest that MUS:OT Au/Fe NPs enter the brain utilizing a physiological route and therefore can be exploited as brain penetrating nanomaterials with potential contrast agent and theranostics capabilities.
脑疾病(如癫痫、神经退行性疾病和肿瘤)的诊断和治疗将受益于将治疗或诊断化合物递送至脑实质的创新方法,具有均匀或靶向局部分布模式。为了评估纳米颗粒(NPs)进入脑实质的渗透机制,使用了一种复杂但可控和促进的环境:通过动脉灌注体外维持的分离豚鼠脑。在这种独特的制剂中,血脑屏障和血管与神经元隔室之间的相互作用在形态和功能上都得到了保留。在这项研究中,超顺磁 Au/Fe 纳米颗粒(MUS:OT Au/Fe NPs)最近被研究为一种具有高细胞穿透性的有前途的磁共振 T2 对比剂,经动脉灌注到体外分离的脑中,表现出通过转胞作用进入脑实质的高均匀穿透性。通过 TEM 分析 MUS:OT Au/Fe NPs 的电子致密核心对体外分离脑切片进行超微结构研究,以了解 NPs 在体外动脉灌注后通过 BBB 的脑穿透及其在实质中的分布。我们的数据表明,MUS:OT Au/Fe NPs 通过生理途径进入大脑,因此可以用作具有潜在对比剂和治疗潜力的穿透性脑纳米材料。