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用于皮摩尔级人血清白蛋白测定的半共价印迹反蛋白石聚噻吩薄膜沉积中的分级模板。

Hierarchical templating in deposition of semi-covalently imprinted inverse opal polythiophene film for femtomolar determination of human serum albumin.

机构信息

Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland.

Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland.

出版信息

Biosens Bioelectron. 2017 Aug 15;94:155-161. doi: 10.1016/j.bios.2017.02.046. Epub 2017 Mar 1.

Abstract

Nanostructured artificial receptor materials with unprecedented hierarchical structure for determination of human serum albumin (HSA) are designed and fabricated. For that purpose a new hierarchical template is prepared. This template allowed for simultaneous structural control of the deposited molecularly imprinted polymer (MIP) film on three length scales. A colloidal crystal templating with optimized electrochemical polymerization of 2,3'-bithiophene enables deposition of an MIP film in the form of an inverse opal. Thickness of the deposited polymer film is precisely controlled with the number of current oscillations during potentiostatic deposition of the imprinted poly(2,3'-bithiophene) film. Prior immobilization of HSA on the colloidal crystal allows formation of molecularly imprinted cavities exclusively on the internal surface of the pores. Furthermore, all binding sites are located on the surface of the imprinted cavities at locations corresponding to positions of functional groups present on the surface of HSA molecules due to prior derivatization of HSA molecules with appropriate functional monomers. This synergistic strategy results in a material with superior recognition performance. Integration of the MIP film as a recognition unit with a sensitive extended-gate field-effect transistor (EG-FET) transducer leads to highly selective HSA determination in the femtomolar concentration range.

摘要

设计并制备了具有前所未有的分级结构的纳米结构人工受体材料,用于测定人血清白蛋白(HSA)。为此,制备了一种新的分级模板。该模板允许在三个长度尺度上同时控制沉积的分子印迹聚合物(MIP)膜的结构。通过优化 2,3'-联噻吩的胶体晶体模板的电化学聚合,能够以反蛋白石的形式沉积 MIP 膜。通过在恒电位沉积印迹聚(2,3'-联噻吩)膜期间进行电流振荡的次数,可以精确控制沉积的聚合物膜的厚度。在胶体晶体上预先固定 HSA 允许在孔的内表面上仅形成分子印迹腔。此外,由于 HSA 分子与适当的功能单体进行了衍生化,因此所有的结合位点都位于印迹腔的表面上,位于 HSA 分子表面上存在的官能团的位置处。这种协同策略导致具有优异识别性能的材料。将 MIP 膜作为识别单元与灵敏的扩展门场效应晶体管(EG-FET)换能器集成在一起,可在飞摩尔浓度范围内实现对 HSA 的高选择性测定。

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