Wang Wenqian, Hassan Md Musfizur, Mao Guangzhao
School of Chemical Engineering, University of New South Wales (UNSW Sydney), Sydney, New South Wales 2052, Australia.
Langmuir. 2023 Mar 7;39(9):3235-3245. doi: 10.1021/acs.langmuir.2c02949. Epub 2023 Feb 24.
This article describes a new approach in targeted drug delivery to the central nervous system (CNS) in a significant departure from the predominant systematic drug administration attempting to penetrate the blood-brain barrier (BBB). Nanoparticles chemically conjugated to neural tract tracer proteins are capable of path-specific axonal retrograde transport, transneuronal transport, and anatomical tract flow to bypass the BBB. To celebrate the work by Dr. Bettye Washington Greene on the physical chemistry of colloidal particles, this article focuses on the physiochemical characteristics of the nanoparticles, various colloidal forces that impact the colloidal stability of nanoparticles in biological media, and surface chemistry strategies to avoid nanoparticle aggregation-induced poor therapeutic outcomes. The biological environment for the anatomical retrograde transport of neural tract tracers is examined to directly link factors impacting the colloidal stability of the new class of CNS-targeting nanoconjugates such as nanoconjugate size, shape, surface charge, surface chemistry, ionic strength, pH, and protein adsorption on the nanoparticle. We conclude with opportunities and challenges for future research.
本文描述了一种用于中枢神经系统(CNS)靶向给药的新方法,该方法与试图穿透血脑屏障(BBB)的主要全身给药方式有显著不同。与神经束示踪蛋白化学偶联的纳米颗粒能够进行路径特异性轴突逆行运输、跨神经元运输和解剖束流,从而绕过血脑屏障。为了纪念贝蒂·华盛顿·格林博士在胶体颗粒物理化学方面的工作,本文重点关注纳米颗粒的物理化学特性、影响纳米颗粒在生物介质中胶体稳定性的各种胶体作用力,以及避免纳米颗粒聚集导致治疗效果不佳的表面化学策略。研究了神经束示踪剂解剖逆行运输的生物环境,以直接关联影响新型中枢神经系统靶向纳米缀合物胶体稳定性的因素,如纳米缀合物的大小、形状、表面电荷、表面化学、离子强度、pH值以及纳米颗粒上的蛋白质吸附。我们最后讨论了未来研究的机遇与挑战。