...
首页> 外文期刊>ACS nano >Cascading Effects of Nanoparticle Coatings: Surface Functionalization Dictates the Assemblage of Complexed Proteins and Subsequent Interaction with Model Cell Membranes
【24h】

Cascading Effects of Nanoparticle Coatings: Surface Functionalization Dictates the Assemblage of Complexed Proteins and Subsequent Interaction with Model Cell Membranes

机译:纳米粒子涂层的梯形效应:表面官能化决定络合物蛋白质的组装和随后与模型细胞膜相互作用

获取原文
获取原文并翻译 | 示例
           

摘要

Interactions of functionalized nanomaterials with biological membranes are expected to be governed by not only nanoparticle physiochemical properties but also coatings or "coronas" of biomacromolecules acquired after immersion in biological fluids. Here we prepared a library of 4-5 nm gold nanoparticles (AuNPs) coated with either omega-functionalized thiols or polyelectrolyte wrappings to examine the influence of surface functional groups on the assemblage of proteins complexing the nanoparticles and its subsequent impact on attachment to model biological membranes. We find that the initial nanoparticle surface coating has a cascading effect on interactions with model cell membranes by determining the assemblage of complexing proteins, which in turn influences subsequent interaction with model biological membranes. Each type of functionalized AuNP investigated formed complexes with a unique ensemble of serum proteins that depended on the initial surface coating of the nanoparticles. Formation of protein nanoparticle complexes altered the electrokinetic, hydrodynamic, and plasmonic properties of the AuNPs. Complexation of the nanoparticles with proteins reduced the attachment of cationic AuNPs and promoted attachment of anionic AuNPs to supported lipid bilayers; this trend is observed with both lipid bilayers comprising 100% zwitterionic phospholipids and those incorporating anionic phosphatidylinositol. Complexation with serum proteins led to attachment of otherwise noninteracting oligo (ethylene glycol)-functionalized AuNPs to bilayers containing phosphatidylinositol. These results demonstrate the importance of considering both facets of the nano-bio interface: functional groups displayed on the nanoparticle surface and proteins complexing the nanoparticles influence interaction with biological membranes as does the molecular makeup of the membranes themselves.
机译:预期官能化纳米材料与生物膜的相互作用不仅受纳米颗粒生理化学性能而且涂覆在生物液中浸泡后的生物致重组的涂层或“核”。在这里,我们制备了涂有ω-官能化硫醇或聚电解质包装的4-5nm金纳米颗粒(AUnps)的文库,以检查表面官能团对纳米颗粒络合的蛋白质组合的影响及其随后对模型生物学附着的影响膜。我们发现初始纳米颗粒表面涂层通过测定络合蛋白的组装,初始纳米颗粒表面涂层对模型细胞膜的相互作用,这反过来影响随后与模型生物膜相互作用。每种类型的官能化AUNP调查形成的复合物,其中血清蛋白的独特组合依赖于纳米颗粒的初始表面涂层。蛋白质纳米粒子复合物的形成改变了AUNP的电动,流体动力学和等离子体性能。纳米颗粒与蛋白质的络合降低了阳离子肛周的附着,并促进阴离子AUNP的附着在负载脂质双层中;用包含100%两性离子磷脂和包含阴离子磷脂酰肌醇的那些脂质双层观察到这种趋势。与血清蛋白质的络合导致含有磷脂酰肌醇的双层的非换体寡核苷酸(乙二醇) - 官能化的双层的附着。这些结果证明了考虑纳米生物界面的两个平面的重要性:纳米颗粒表面上显示的官能团和络合纳米颗粒的蛋白质与生物膜相互作用,如膜本身的分子构成。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号