Vene Elise, Barouti Ghislaine, Jarnouen Kathleen, Gicquel Thomas, Rauch Claudine, Ribault Catherine, Guillaume Sophie M, Cammas-Marion Sandrine, Loyer Pascal
INSERM UMR S-991, Foie, Métabolismes et Cancer; Université de Rennes 1; CHU Pontchaillou Rennes, 35033 Rennes, France.
Institut des Sciences Chimiques de Rennes; UMR 6226 CNRS; Université de Rennes 1, Campus de Beaulieu, 263 Avenue du Général Leclerc, F-35042 Rennes Cedex, France.
Int J Pharm. 2016 Nov 20;513(1-2):438-452. doi: 10.1016/j.ijpharm.2016.09.048. Epub 2016 Sep 15.
The present work reports the investigation of the biocompatibility, opsonisation and cell uptake by human primary macrophages and HepaRG cells of nanoparticles (NPs) formulated from poly(β-malic acid)-b-poly(β-hydroxybutyrate) (PMLA-b-PHB) and poly(β-malic acid)-b-poly(trimethylene carbonate) (PMLA-b-PTMC) diblock copolymers, namely PMLA-b-PHB, PMLA-b-PHB, PMLA-b-PTMC and PMLA-b-PTMC. NPs derived from PMLA-b-PHB and PMLA-b-PTMC do not trigger lactate dehydrogenase release and do not activate the secretion of pro-inflammatory cytokines demonstrating the excellent biocompatibility of these copolymers derived nano-objects. Using a protein adsorption assay, we demonstrate that the binding of plasma proteins is very low for PMLA-b-PHB-based nano-objects, and higher for those prepared from PMLA-b-PTMC copolymers. Moreover, a more efficient uptake by macrophages and HepaRG cells is observed for NPs formulated from PMLA-b-PHB copolymers compared to that of PMLA-b-PTMC-based NPs. Interestingly, the uptake in HepaRG cells of NPs formulated from PMLA-b-PHB is much higher than that of NPs based on PMLA-b-PHB. In addition, the cell internalization of PMLA-b-PHB based-NPs, probably through endocytosis, is strongly increased by serum pre-coating in HepaRG cells but not in macrophages. Together, these data strongly suggest that the binding of a specific subset of plasmatic proteins onto the PMLA-b-PHB-based NPs favors the HepaRG cell uptake while reducing that of macrophages.
本研究报告了由聚(β-苹果酸)-b-聚(β-羟基丁酸酯)(PMLA-b-PHB)和聚(β-苹果酸)-b-聚(碳酸三亚甲酯)(PMLA-b-PTMC)二嵌段共聚物制备的纳米颗粒(NPs),即PMLA-b-PHB、PMLA-b-PHB、PMLA-b-PTMC和PMLA-b-PTMC,在人原代巨噬细胞和HepaRG细胞中的生物相容性、调理作用和细胞摄取情况。源自PMLA-b-PHB和PMLA-b-PTMC的纳米颗粒不会引发乳酸脱氢酶释放,也不会激活促炎细胞因子的分泌,这表明这些共聚物衍生的纳米物体具有优异的生物相容性。通过蛋白质吸附试验,我们证明基于PMLA-b-PHB的纳米物体与血浆蛋白的结合非常低,而由PMLA-b-PTMC共聚物制备的纳米物体与血浆蛋白的结合更高。此外,与基于PMLA-b-PTMC的纳米颗粒相比,观察到由PMLA-b-PHB共聚物制备的纳米颗粒在巨噬细胞和HepaRG细胞中的摄取效率更高。有趣的是,由PMLA-b-PHB制备的纳米颗粒在HepaRG细胞中的摄取远高于基于PMLA-b-PHB的纳米颗粒。此外,基于PMLA-b-PHB的纳米颗粒在HepaRG细胞中的细胞内化(可能通过内吞作用)因血清预包被而显著增加,但在巨噬细胞中则不然。总之,这些数据有力地表明,血浆蛋白的特定子集与基于PMLA-b-PHB的纳米颗粒的结合有利于HepaRG细胞摄取,同时减少巨噬细胞的摄取。