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评估金属基纳米粒子与血脑屏障相互作用的研究方法标准化:现状与未来展望。

Standardization of research methods employed in assessing the interaction between metallic-based nanoparticles and the blood-brain barrier: Present and future perspectives.

机构信息

Bernal Institute, University of Limerick, Limerick, Ireland; School of Engineering, University of Limerick, Limerick, Ireland.

School of Chemistry, University College Cork, Cork, Ireland.

出版信息

J Control Release. 2019 Feb 28;296:202-224. doi: 10.1016/j.jconrel.2019.01.022. Epub 2019 Jan 18.

Abstract

Treating diseases of the central nervous system (CNS) is complicated by the presence of the blood-brain barrier (BBB), a semipermeable boundary layer protecting the CNS from toxins and homeostatic disruptions. However, this layer also excludes almost 100% of therapeutics, impeding the treatment of CNS diseases. The advent of nanoparticles, in particular metallic-based nanoparticles, presents the potential to overcome this barrier and transport drugs into the CNS. Recent interest in metallic-based nanoparticles has generated an immense array of information pertaining to nanoparticles of different materials, sizes, morphologies, and surface properties. Nanoparticles with different physico-chemical properties lead to distinct nanoparticle-host interactions; yet, comprehensive characterization is often not completed. Similarly, in vivo testing has involved a mixed evaluation of parameters, including: BBB permeability, integrity, biodistribution, and toxicity. The methods applied to assess these parameters are inconsistent; this complicates the comparison of different nanoparticle-host system responses. A systematic review was conducted to investigate the methods by which metallic-based nanoparticles are characterized and assessed in vivo. The introduction of a standardized approach to nanoparticle characterization and in vivo testing is crucial if research is to transition to a clinical setting. The approach suggested, herein, is based on equipment and techniques that are accessible and informative to facilitate the routine incorporation of this standardized, informative approach into different research settings. Thorough characterization could lead to improved interpretation of in vivo responses, which could clarify nanoparticle properties that result in favorable in vivo outcomes whilst exposing nanoparticle-specific weaknesses. Only then will researchers successfully identify nanoparticles capable of delivering life-saving therapeutics across the blood-brain barrier.

摘要

治疗中枢神经系统 (CNS) 的疾病很复杂,因为存在血脑屏障 (BBB),这是一层半透性的边界层,可保护 CNS 免受毒素和体内平衡紊乱的影响。然而,这层也几乎排除了 100%的治疗药物,阻碍了 CNS 疾病的治疗。纳米粒子的出现,特别是基于金属的纳米粒子,为克服这一障碍并将药物输送到 CNS 提供了潜力。最近对基于金属的纳米粒子的兴趣产生了大量关于不同材料、大小、形态和表面特性的纳米粒子的信息。具有不同理化性质的纳米粒子会导致不同的纳米粒子-宿主相互作用;然而,通常没有完成全面的表征。同样,体内测试涉及对参数的混合评估,包括:BBB 通透性、完整性、生物分布和毒性。用于评估这些参数的方法不一致;这使得不同纳米粒子-宿主系统反应的比较复杂化。进行了系统评价,以研究用于表征和体内评估基于金属的纳米粒子的方法。如果研究要过渡到临床环境,就必须引入一种标准化的纳米粒子表征和体内测试方法。本文提出的方法基于易于获取和信息丰富的设备和技术,以促进将这种标准化、信息丰富的方法常规纳入不同的研究环境。彻底的表征可能会导致对体内反应的更好解释,这可以阐明导致有利的体内结果的纳米粒子特性,同时暴露纳米粒子特有的弱点。只有这样,研究人员才能成功地识别出能够跨越血脑屏障输送救生治疗药物的纳米粒子。

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