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一步合成载金径向介孔硅纳米球和负载脂质双层功能化:迈向生物多功能传感器。

One step synthesis of gold-loaded radial mesoporous silica nanospheres and supported lipid bilayer functionalization: towards bio-multifunctional sensors.

机构信息

Institut Charles Gerhardt Montpellier, Equipe MACS, 8 rue de l'Ecole, Normale, Montpellier Cedex 5, France.

出版信息

Small. 2012 Dec 7;8(23):3674-82. doi: 10.1002/smll.201200758. Epub 2012 Sep 12.

Abstract

A simple synthetic route is developed to achieve gold functionalized radial mesoporous silica nanoparticles (Au-MsNP) synthesized by a one step procedure fully compatible with basic conditions required for the preparation of monodispersed nanospheres. In a second step, Au-MsNP particles have been coated with phospholipid bilayers in order to design an advanced biofunctional platform with the gold metallic nanoparticles previously grown into the pore channels and responsible for a plasmonic activity relevant for biosensing. The size of Au-MsNP is checked by dynamic light scattering while zeta potential measurements reflect their surface charge. The particle morphology is characterized by transmission and scanning electron microscopy and the Si/Au ratios are obtained from energy dispersive X-ray analysis. The textural properties of Au-MsNP, specific surface area and pore size, are determined from N(2) adsorption. The supported bilayers are achieved from vesicles of different phospholipids incubated with Au-MsNP particles. The coating efficiency is investigated by zeta potential and cryo- transmission electron microscopy. The plasmonic activities of bare Au-MsNP particles and coated lipid bilayer Au-MsNP platform are evidenced for two model systems: direct adsorption of bovine serum albumin and molecular recognition events between avidin molecules and biotin receptors integrated in the supported lipid bilayer.

摘要

开发了一种简单的合成路线,以实现金功能化的径向介孔硅纳米粒子(Au-MsNP),该合成路线通过一步法合成,完全与单分散纳米球制备所需的基本条件相兼容。在第二步中,Au-MsNP 颗粒用磷脂双层包覆,以设计具有先进生物功能的平台,其中先前生长在孔道中的金纳米颗粒具有等离子体活性,可用于生物传感。通过动态光散射检查 Au-MsNP 的粒径,而 ζ 电位测量则反映其表面电荷。通过透射电子显微镜和扫描电子显微镜对颗粒形态进行了表征,并通过能谱分析获得 Si/Au 比值。Au-MsNP 的结构特性、比表面积和孔径通过 N(2)吸附确定。通过不同磷脂的囊泡与 Au-MsNP 颗粒孵育来实现负载的双层。通过 ζ 电位和冷冻传输电子显微镜研究了涂层效率。对裸 Au-MsNP 颗粒和包覆脂质双层 Au-MsNP 平台的等离子体活性进行了两种模型系统的验证:牛血清白蛋白的直接吸附和整合在负载脂质双层中的亲和素分子和生物素受体之间的分子识别事件。

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