首页> 外文期刊>Analytical chemistry >Effective Enhancement of Fluorescence Detection Efficiency in Protein Microarray Assays: Application of a Highly Fluorinated Organosilane as the Blocking Agent on the Background Surface by a Facile Vapor-Phase Deposition Process
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Effective Enhancement of Fluorescence Detection Efficiency in Protein Microarray Assays: Application of a Highly Fluorinated Organosilane as the Blocking Agent on the Background Surface by a Facile Vapor-Phase Deposition Process

机译:蛋白质芯片检测中荧光检测效率的有效提高:通过简便的气相沉积工艺将高度氟化的有机硅烷作为封闭剂在背景表面上的应用

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Protein microarrays are emerging as an important enabling technology for the simultaneous investigation of complicated interactions among thousands of proteins. The solution-based blocking protocols commonly used in protein microarray assays often cause cross-contamination among probes and diminution of protein binding efficiency because of the spreading of blocking solution and the obstruction formed by the blocking molecules. In this paper, an alternative blocking process for protein microarray assays is proposed to obtain better performance by employing a vapor-phase deposition method to form self-assembled surface coatings using a highly fluorinated organosilane as the blocking agent on the background surfaces. Compared to conventional solution-based blocking processes, our experimental results showed that this vapor-phase process could shorten the blocking time from hours to less than 10 min, enhance the binding efficiency by up to 6 times, reduce the background noise by up to 16 times, and improve the S/N ratio by up to 64 times. This facile blocking process is compatible with current microarray assays using silica-based substrates and can be performed on many types of silane-modified surfaces.
机译:蛋白质微阵列正在成为一种重要的使能技术,用于同时研究数千种蛋白质之间的复杂相互作用。蛋白质微阵列分析中常用的基于溶液的封闭方案通常会导致探针之间的交叉污染,并且由于封闭溶液的扩散和封闭分子形成的阻塞而导致蛋白质结合效率降低。在本文中,提出了一种用于蛋白质微阵列分析的替代封闭方法,该方法通过采用气相沉积方法在背景表面使用高度氟化的有机硅烷作为封闭剂来形成自组装表面涂层,从而获得更好的性能。与传统的基于溶液的封闭方法相比,我们的实验结果表明,该气相方法可以将封闭时间从数小时缩短至不到10分钟,将结合效率提高6倍,将背景噪音降低16倍倍数,并将信噪比提高多达64倍。这种简便的封闭过程与当前使用基于二氧化硅的基质的微阵列分析兼容,并且可以在多种类型的硅烷改性表面上进行。

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