Department of Chemistry , University of Wisconsin-Madison , 1101 University Avenue , Madison , Wisconsin 53706 , United States.
School of Medicine, Department of Pharmacology and Cleveland Center for Membrane and Structural Biology , Case Western Reserve University , 10900 Euclid Avenue , Cleveland , Ohio 44106 , United States.
Langmuir. 2019 Oct 1;35(39):12765-12772. doi: 10.1021/acs.langmuir.9b01519. Epub 2019 Sep 18.
Colloidal oil-in-water nanoemulsions are gaining increasing interest as a nanoparticle delivery system because of their large oil droplet core that can carry a large payload. In order to formulate these particles with long-term stability, an appropriate oil media and block copolymer pair must be selected. The interaction between the nanoemulsion core and the polymer shell is critical to forming stable nanoparticles. Herein, we probed how interactions between various polymers with hydrocarbon and perfluorocarbon oil media influenced nanoemulsion formation, stability, and size. Through a series of nanoemulsions with unique polymer/oil media combinations, we examined the effects of oil core hydrophobicity, fluorophilicity, surface charge, and volume as well as the effects of polymer tail composition. Surprisingly, we found that nanoemulsions formulated with pure perfluorocarbon oil cores versus perfluoro poly(ether) oil cores exhibited very different characteristics. We also found that both hydrocarbon and fluorocarbon polymer tails interacted favorably with perfluoro poly(ethers) as well as hydrocarbon oil cores forming stable nanoemulsions. We believe these results are focused on the unique properties of perfluorocarbons especially their rigidity, low polarizability, and near-zero surface charge. Interestingly, we saw that perfluoro poly(ethers) deviated from these expected properties resulting in an increased versatility when formulating nanoemulsions with perfluoro poly(ether) oil cores compared to pure perfluorocarbon oil cores. Nanoemulsion size, stability, growth rate, and life time were explored to probe these factors. Experimental and computational data are presented as a rationale.
水包油纳米乳剂作为一种纳米颗粒传递系统,由于其较大的油滴核心可以携带较大的有效载荷,因此越来越受到关注。为了使这些颗粒具有长期稳定性,必须选择适当的油介质和嵌段共聚物对。纳米乳剂核心与聚合物壳之间的相互作用对于形成稳定的纳米颗粒至关重要。在此,我们探讨了各种具有烃类和全氟碳油介质的聚合物之间的相互作用如何影响纳米乳剂的形成、稳定性和粒径。通过一系列具有独特聚合物/油介质组合的纳米乳剂,我们考察了油核疏水性、亲氟性、表面电荷和体积以及聚合物尾部组成的影响。令人惊讶的是,我们发现用纯全氟碳油核心配制的纳米乳剂与全氟聚醚油核心配制的纳米乳剂表现出非常不同的特性。我们还发现,烃类和氟碳聚合物尾部都与全氟聚醚以及烃类油核心相互作用良好,形成稳定的纳米乳剂。我们认为这些结果集中在全氟碳的独特性质上,特别是它们的刚性、低极化率和近零表面电荷。有趣的是,我们发现全氟聚醚偏离了这些预期的性质,因此与用纯全氟碳油核心相比,用全氟聚醚油核心配制纳米乳剂具有更高的多功能性。研究了纳米乳剂的粒径、稳定性、增长率和寿命,以探讨这些因素。提出了实验和计算数据作为原理。