Sussman Eric M, Clarke Michael B, Shastri V Prasad
Department of Bioengineering, University of Pennsylvania, Philadelphia, PA 19104, USA.
Langmuir. 2007 Nov 20;23(24):12275-9. doi: 10.1021/la701997x. Epub 2007 Oct 27.
Nanoparticles (NPs) are a versatile medium for the localization of therapeutics to tumors and for cellular and tissue imaging. The ability to impart targeting capability or enhance cellular uptake is dependent in part on the presentation of relevant surface functionality, among other design parameters. Currently, the production of functionalized polymeric NPs requires the a priori synthesis of polymers bearing such functionality. Here we describe a process to produce functionalized polymeric NPs derived from nonfunctional polymers in a single step. This was achieved by tailoring the solvation of the polymer using a binary solvent system such that the addition of an aqueous phase rich in water-soluble polymer or polyelectrolytes results in the formation of NPs with the concomitant functionalization of NP surfaces with the polymeric moieties introduced into the aqueous phase. This strategy also allows for easy control over NP size independent of surface functionality. We have demonstrated that poly(lactic-co-glycolic acid) (PLGA) NPs bearing surface functionality as diverse as biological polysaccharides such as heparin, water-soluble ionic polymers, and poly(ethylene glycol) can be prepared under identical conditions in a single step, with surface coverage (mass %) ranging from 3 to >70%. We expect this novel process to enable complex surface engineering of NP chemistry that hitherto was impossible using existing approaches.
纳米颗粒(NPs)是一种多功能介质,可用于将治疗剂定位到肿瘤以及进行细胞和组织成像。赋予靶向能力或增强细胞摄取的能力部分取决于相关表面功能的呈现以及其他设计参数。目前,功能化聚合物纳米颗粒的生产需要先合成具有此类功能的聚合物。在此,我们描述了一种一步法从非功能性聚合物制备功能化聚合物纳米颗粒的过程。这是通过使用二元溶剂系统调整聚合物的溶剂化来实现的,即添加富含水溶性聚合物或聚电解质的水相会导致形成纳米颗粒,同时纳米颗粒表面会被引入水相的聚合物部分功能化。该策略还允许在不考虑表面功能的情况下轻松控制纳米颗粒的大小。我们已经证明,带有诸如肝素等生物多糖、水溶性离子聚合物和聚乙二醇等多种表面功能的聚乳酸-乙醇酸共聚物(PLGA)纳米颗粒可以在相同条件下一步制备,表面覆盖率(质量%)范围为3%至>70%。我们期望这种新方法能够实现纳米颗粒化学的复杂表面工程,而这是使用现有方法迄今为止无法做到的。