Key Laboratory of Drug Targeting and Drug Delivery System, West China School of Pharmacy, Sichuan University, Chengdu 610041, PR China.
Key Laboratory of Drug Targeting and Drug Delivery System, West China School of Pharmacy, Sichuan University, Chengdu 610041, PR China.
J Control Release. 2017 May 28;254:34-43. doi: 10.1016/j.jconrel.2017.03.034. Epub 2017 Mar 27.
Blood-brain barrier (BBB) represents the greatest challenge that hampers therapeutic molecules entering the brain. Here, we described a novel brain-specific delivery strategy targeting to pyrilamine-sensitive H/OC antiporter to facilitate therapeutic molecules cross the BBB and penetrate into the brain. In this study, four cyclic tertiary amines were selected as the brain-targeting moieties to modify naproxen (NP), a non-steroidal anti-inflammatory drug. The obtained NP conjugates displayed cell uptake efficiencies over 144-fold higher than that of unmodified NP in endothelial cells. The cell uptake process of the conjugates was primarily driven by pyrilamine-sensitive H/OC antiporter in a pH-dependent, Na-independent, and membrane potential-independent pathway, which could be further inhibited by pyrilamine, propranolol, and imipramine. Moreover, the NP conjugates showed significantly higher AUC and C in the brain compared with unmodified NP, and significantly higher accumulation than NP in the in situ brain perfusion study. Also, the conjugates showed superior neuroprotective effect in vitro and in vivo. Thus, the chemical modification of therapeutics with a cyclic tertiary amine moiety represents a promising and efficient strategy for brain-specific drug delivery via pyrilamine-sensitive H/OC antiporter.
血脑屏障 (BBB) 是阻碍治疗分子进入大脑的最大障碍。在这里,我们描述了一种新的针对吡咯烷敏感的 H/OC 转运体的脑靶向递药策略,以促进治疗分子穿过 BBB 并渗透到大脑中。在这项研究中,选择了四种环状叔胺作为脑部靶向部分来修饰非甾体抗炎药萘普生 (NP)。所得 NP 缀合物在血管内皮细胞中的细胞摄取效率比未修饰的 NP 高 144 倍以上。缀合物的细胞摄取过程主要由吡咯烷敏感的 H/OC 转运体驱动,呈 pH 依赖性、Na 非依赖性和膜电位非依赖性,可被吡咯烷、普萘洛尔和丙咪嗪进一步抑制。此外,NP 缀合物在脑中的 AUC 和 C 明显高于未修饰的 NP,并且在原位脑灌注研究中比 NP 积累更多。此外,缀合物在体外和体内均表现出优异的神经保护作用。因此,用环状叔胺部分修饰治疗药物代表了一种通过吡咯烷敏感的 H/OC 转运体进行脑靶向药物递送的有前途且有效的策略。