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组装表面连接化学以最小化生物传感器材料上的非特异性吸附。

Assembling Surface Linker Chemistry with Minimization of Non-Specific Adsorption on Biosensor Materials.

作者信息

Sheng Jack Chih-Chieh, De La Franier Brian, Thompson Michael

机构信息

Department of Chemistry, University of Toronto, 80 St. George Street, Toronto, ON M5S 3H6, Canada.

出版信息

Materials (Basel). 2021 Jan 19;14(2):472. doi: 10.3390/ma14020472.

Abstract

The operation of biosensors requires surfaces that are both highly specific towards the target analyte and that are minimally subject to fouling by species present in a biological fluid. In this work, we further examined the thiosulfonate-based linker in order to construct robust and durable self-assembling monolayers (SAMs) onto hydroxylated surfaces such as silica. These SAMs are capable of the chemoselective immobilization of thiol-containing probes (for analytes) under aqueous conditions in a single, straightforward, reliable, and coupling-free manner. The efficacy of the method was assessed through implementation as a biosensing interface for an ultra-high frequency acoustic wave device dedicated to the detection of avidin via attached biotin. Fouling was assessed via introduction of interfering bovine serum albumin (BSA), IgG antibody, or goat serum. Improvements were investigated systematically through the incorporation of an oligoethylene glycol backbone employed together with a self-assembling diluent without a functional distal group. This work demonstrates that the incorporation of a diluent of relatively short length is crucial for the reduction of fouling. Included in this work is a comparison of the surface attachment of the linker to SiN and AlN, both materials used in sensor technology.

摘要

生物传感器的运行需要对目标分析物具有高度特异性且受生物流体中存在的物质污染最小的表面。在这项工作中,我们进一步研究了基于硫代磺酸盐的连接体,以便在诸如二氧化硅等羟基化表面上构建坚固耐用的自组装单分子层(SAMs)。这些SAMs能够在水性条件下以单一、直接、可靠且无偶联的方式对含硫醇的探针(用于分析物)进行化学选择性固定。通过将该方法用作专门用于通过附着的生物素检测抗生物素蛋白的超高频声波装置的生物传感界面来评估该方法的有效性。通过引入干扰性牛血清白蛋白(BSA)、IgG抗体或山羊血清来评估污染情况。通过引入与没有功能性远端基团的自组装稀释剂一起使用的低聚乙二醇主链来系统地研究改进情况。这项工作表明,引入相对较短长度的稀释剂对于减少污染至关重要。这项工作还包括比较连接体在SiN和AlN上的表面附着情况,这两种材料都用于传感器技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a7c7/7835736/b5ab8c1b547a/materials-14-00472-g001.jpg

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