Garcia-Garcia E, Gil S, Andrieux K, Desmaële D, Nicolas V, Taran F, Georgin D, Andreux J P, Roux F, Couvreur P
Laboratory of Pharmaceutical Technology and Biopharmacy, UMR CNRS 8612, Faculty of Pharmacy, University of Paris-XI, 92296 Châtenay-Malabry, France.
Cell Mol Life Sci. 2005 Jun;62(12):1400-8. doi: 10.1007/s00018-005-5094-3.
Poly(MePEG2000cyanoacrylate-co-hexadecylcyanoacrylate) (PEG-PHDCA) nanoparticles have demonstrated their capacity to reach the rat central nervous system after intravenous injection. For insight into the transport of colloidal systems across the blood-brain barrier (BBB), we developed a relevant in vitro rat BBB model consisting of a coculture of rat brain endothelial cells (RBECs) and rat astrocytes. The RBECs used in our model displayed and retained structural characteristics of brain endothelial cells, such as expression of P-glycoprotein, occludin and ZO-1, and immunofluorescence studies showed the specific localization of occludin and ZO1. The high values of transendothelial electrical resistance and low permeability coefficients of marker molecules demonstrated the functionality of this model. The comparative passage of polyhexadecylcyanoacrylate and PEG-PHDCA nanoparticles through this model was investigated, showing a higher passage of PEGylated nanoparticles, presumably by endocytosis. This result was confirmed by confocal microscopy. Thanks to a good in vitro/in vivo correlation, this rat BBB model will help in understanding the mechanisms of nanoparticle translocation and in designing new types of colloidal carriers as brain delivery systems.
聚(甲氧基聚乙二醇2000氰基丙烯酸酯 - 共 - 十六烷基氰基丙烯酸酯)(PEG - PHDCA)纳米颗粒在静脉注射后已显示出其进入大鼠中枢神经系统的能力。为深入了解胶体系统穿越血脑屏障(BBB)的转运情况,我们建立了一种相关的体外大鼠血脑屏障模型,该模型由大鼠脑内皮细胞(RBECs)和大鼠星形胶质细胞共培养组成。我们模型中使用的RBECs表现并保留了脑内皮细胞的结构特征,如P - 糖蛋白、闭合蛋白和紧密连接蛋白1(ZO - 1)的表达,免疫荧光研究显示了闭合蛋白和ZO1的特定定位。跨内皮电阻的高值和标记分子的低渗透系数证明了该模型的功能。研究了聚十六烷基氰基丙烯酸酯和PEG - PHDCA纳米颗粒通过该模型的相对通过率,结果显示聚乙二醇化纳米颗粒的通过率更高,推测是通过内吞作用。共聚焦显微镜证实了这一结果。由于良好的体外/体内相关性,该大鼠血脑屏障模型将有助于理解纳米颗粒转运的机制,并有助于设计新型胶体载体作为脑递送系统。