Department of Chemical Biological, and Pharmaceutical Engineering, New Jersey Institute of Technology, Newark, NJ, 07102, USA.
Shanghai Jiao Tong University School of Pharmacy, 800 Dongchuan Road, Shanghai, 200240, China.
Small. 2017 Nov;13(43). doi: 10.1002/smll.201701921. Epub 2017 Oct 16.
A major obstacle facing brain diseases such as Alzheimer's disease, multiple sclerosis, brain tumors, and strokes is the blood-brain barrier (BBB). The BBB prevents the passage of certain molecules and pathogens from the circulatory system into the brain. Therefore, it is nearly impossible for therapeutic drugs to target the diseased cells without the assistance of carriers. Nanotechnology is an area of growing public interest; nanocarriers, such as polymer-based, lipid-based, and inorganic-based nanoparticles can be engineered in different sizes, shapes, and surface charges, and they can be modified with functional groups to enhance their penetration and targeting capabilities. Hence, understanding the interaction between nanomaterials and the BBB is crucial. In this Review, the components and properties of the BBB are revisited and the types of nanocarriers that are most commonly used for brain drug delivery are discussed. The properties of the nanocarriers and the factors that affect drug delivery across the BBB are elaborated upon in this review. Additionally, the most recent developments of nanoformulations and nonconventional drug delivery strategies are highlighted. Finally, challenges and considerations for the development of brain targeting nanomedicines are discussed. The overall objective is to broaden the understanding of the design and to develop nanomedicines for the treatment of brain diseases.
血脑屏障(BBB)是阿尔茨海默病、多发性硬化症、脑肿瘤和中风等脑部疾病面临的主要障碍。BBB 阻止某些分子和病原体从循环系统进入大脑。因此,如果没有载体的帮助,治疗药物几乎不可能靶向病变细胞。纳米技术是公众日益关注的领域;纳米载体,如基于聚合物、基于脂质和基于无机的纳米颗粒,可以设计成不同的大小、形状和表面电荷,并可以用官能团进行修饰,以增强其穿透和靶向能力。因此,了解纳米材料与 BBB 之间的相互作用至关重要。在这篇综述中,重新审视了 BBB 的组成和特性,并讨论了最常用于脑内药物递送的纳米载体类型。本文详细阐述了纳米载体的特性以及影响药物穿过 BBB 递送的因素。此外,还强调了纳米制剂和非传统药物递送策略的最新进展。最后,讨论了开发脑靶向纳米药物的挑战和考虑因素。总的目标是拓宽对设计的理解,并开发用于治疗脑部疾病的纳米药物。