Institute for Research in Biomedicine (IRB Barcelona), Barcelona, Spain; Nanobiotechnological Polymers Division, Ecopol Tech S.L., L'Arboç, Spain.
Functional Validation & Preclinical Research (FVPR), Drug Delivery and Targeting Group, CIBBIM-Nanomedicine, Vall d'Hebron Institut de Recerca (VHIR), Universitat Autònoma de Barcelona (UAB), Barcelona, Spain; Networking Research Center on Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), Barcelona, Spain.
Nanomedicine. 2018 Feb;14(2):257-267. doi: 10.1016/j.nano.2017.10.009. Epub 2017 Nov 7.
Glutathione degradable polyurethane-polyurea nanoparticles (PUUa NP) with a disulfide-rich multiwalled structure and a cyclic RGD peptide as a targeting moiety were synthesized, incorporating a very lipophilic chemotherapeutic drug named Plitidepsin. In vitro studies indicated that encapsulated drug maintained and even improved its cytotoxic activity while in vivo toxicity studies revealed that the maximum tolerated dose (MTD) of Plitidepsin could be increased three-fold after encapsulation. We also found that pharmacokinetic parameters such as maximum concentration (Cmax), area under the curve (AUC) and plasma half-life were significantly improved for Plitidepsin loaded in PUUa NP. Moreover, biodistribution assays in mice showed that RGD-decorated PUUa NP accumulate less in spleen and liver than non-targeted conjugates, suggesting that RGD-decorated nanoparticles avoid sequestration by macrophages from the reticuloendothelial system. Overall, our results indicate that polyurethane-polyurea nanoparticles represent a very valuable nanoplatform for the delivery of lipophilic drugs by improving their toxicological, pharmacokinetic and whole-body biodistribution profiles.
具有富含二硫键的多壁结构和作为靶向部分的环状 RGD 肽的谷胱甘肽可降解型聚氨酯-聚脲纳米粒子(PUUa NP)被合成,其中包含一种名为普替地司他的非常亲脂性的化疗药物。体外研究表明,包裹的药物保持甚至提高了其细胞毒性活性,而体内毒性研究表明,包裹后普替地司他的最大耐受剂量(MTD)可以增加三倍。我们还发现,包裹在 PUUa NP 中的普替地司他的药代动力学参数,如最大浓度(Cmax)、曲线下面积(AUC)和血浆半衰期,均得到显著改善。此外,在小鼠中的分布研究表明,与非靶向缀合物相比,RGD 修饰的 PUUa NP 在脾脏和肝脏中的积累减少,这表明 RGD 修饰的纳米粒子可避免被网状内皮系统中的巨噬细胞隔离。总体而言,我们的结果表明,聚氨酯-聚脲纳米粒子通过改善亲脂性药物的毒理学、药代动力学和全身分布特征,代表了一种非常有价值的纳米载体,可用于递送亲脂性药物。
Curr Drug Deliv. 2018
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