Division of Pharmaceutical Sciences, University of Missouri Kansas City, Kansas City, MO, 64108, USA.
Hough Ear Institute, Oklahoma City, OK, 73112, USA.
J Neuroimmune Pharmacol. 2017 Mar;12(1):84-98. doi: 10.1007/s11481-016-9698-1. Epub 2016 Jul 23.
At present, brain tumor is among the most challenging diseases to treat and the therapy is limited by the lack of effective methods to deliver anticancer agents across the blood-brain barrier (BBB). BBB is a selective barrier that separates the circulating blood from the brain extracellular fluid. In its neuroprotective function, BBB prevents the entry of toxins, as well as most of anticancer agents and is the main impediment for brain targeted drug delivery approaches. Nanotechnology-based delivery systems provide an attractive strategy to cross the BBB and reach the central nervous system (CNS). The incorporation of anticancer agents in various nanovehicles facilitates their delivery across the BBB. Moreover, a more powerful tool in brain tumor therapy has relied surface modifications of nanovehicles with specific ligands that can promote their passage through the BBB and favor the accumulation of the drug in CNS tumors. This review describes the physiological and anatomical features of the brain tumor and the BBB, and summarizes the recent advanced approaches to deliver anticancer drugs into brain tumor using nanobiotechnology-based drug carrier systems. The role of specific ligands in the design of functionalized nanovehicles for targeted delivery to brain tumor is reviewed. The current trends and future approaches in the CNS delivery of therapeutic molecules to tumors are also discussed.
目前,脑肿瘤是治疗最具挑战性的疾病之一,由于缺乏有效的方法将抗癌药物递送到血脑屏障 (BBB) 内,治疗受到限制。BBB 是一种选择性的屏障,将循环血液与脑细胞外液分隔开来。在其神经保护功能中,BBB 可以防止毒素以及大多数抗癌药物进入大脑,这也是脑靶向药物递送方法的主要障碍。基于纳米技术的递药系统为跨越 BBB 并到达中枢神经系统 (CNS) 提供了一种有吸引力的策略。将抗癌药物纳入各种纳米载体中,有助于将其递送到 BBB 内。此外,脑肿瘤治疗中更强大的工具是通过具有特定配体的纳米载体进行表面修饰,这些配体可以促进它们穿过 BBB,并有利于药物在 CNS 肿瘤中的积累。本文综述了脑肿瘤和 BBB 的生理和解剖学特征,并总结了最近利用基于纳米生物技术的药物载体系统将抗癌药物递送到脑肿瘤的先进方法。本文还综述了特定配体在设计用于脑肿瘤靶向递药的功能化纳米载体中的作用。讨论了治疗分子向肿瘤的中枢神经系统递药的当前趋势和未来方法。