Department of Pharmaceutics, University of Minnesota, Minneapolis, Minnesota 55455, United States.
Mol Pharm. 2012 Jul 2;9(7):2103-10. doi: 10.1021/mp2005388. Epub 2012 Jun 13.
The oral absorption of drugs that have poor bioavailability can be enhanced by encapsulation in polymeric nanoparticles. Transcellular transport of nanoparticle-encapsulated drug, possibly through transcytosis, is likely the major mechanism through which nanoparticles improve drug absorption. We hypothesized that the cellular uptake and transport of nanoparticles can be further increased by targeting the folate receptors expressed on the intestinal epithelial cells. The objective of this research was to study the effect of folic acid functionalization on transcellular transport of nanoparticle-encapsulated paclitaxel, a chemotherapeutic with poor oral bioavailability. Surface-functionalized poly(D,L-lactide-co-glycolide) (PLGA) nanoparticles loaded with paclitaxel were prepared by the interfacial activity assisted surface functionalization technique. Transport of paclitaxel-loaded nanoparticles was investigated using Caco-2 cell monolayers as an in vitro model. Caco-2 cells were found to express folate receptor and the drug efflux protein, p-glycoprotein, to high levels. Encapsulation of paclitaxel in PLGA nanoparticles resulted in a 5-fold increase in apparent permeability (Papp) across Caco-2 cells. Functionalization of nanoparticles with folic acid further increased the transport (8-fold higher transport compared to free paclitaxel). Confocal microscopic studies showed that folic acid functionalized nanoparticles were internalized by the cells and that nanoparticles did not have any gross effects on tight junction integrity. In conclusion, our studies indicate that folic acid functionalized nanoparticles have the potential to enhance the oral absorption of drugs with poor oral bioavailability.
药物的口服吸收生物利用度较差,可以通过封装在聚合物纳米粒子中来增强。纳米粒子包封药物的跨细胞转运,可能通过胞吞作用,是纳米粒子提高药物吸收的主要机制。我们假设通过靶向在肠上皮细胞上表达的叶酸受体,可以进一步增加纳米粒子的细胞摄取和转运。本研究的目的是研究叶酸功能化对紫杉醇(一种口服生物利用度较差的化疗药物)的跨细胞转运的影响。通过界面活性辅助表面功能化技术制备了载紫杉醇的表面功能化聚(D,L-丙交酯-co-乙交酯)(PLGA)纳米粒子。使用 Caco-2 细胞单层作为体外模型研究了紫杉醇负载纳米粒子的转运。发现 Caco-2 细胞高水平表达叶酸受体和药物外排蛋白 P-糖蛋白。将紫杉醇包封在 PLGA 纳米粒子中可使表观渗透系数(Papp)增加 5 倍。纳米粒子用叶酸进行功能化进一步增加了转运(比游离紫杉醇高 8 倍)。共焦显微镜研究表明,叶酸功能化的纳米粒子被细胞内化,并且纳米粒子对紧密连接完整性没有任何明显影响。总之,我们的研究表明,叶酸功能化的纳米粒子具有增强口服生物利用度较差的药物口服吸收的潜力。