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将核酸适体与 1 维纳米结构协同作用,作为无标记场效应晶体管生物传感器。

Synergizing nucleic acid aptamers with 1-dimensional nanostructures as label-free field-effect transistor biosensors.

机构信息

University of Milan-Bicocca, Department of Materials Science, Via R. Cozzi 53, I-20125 Milan, Italy.

出版信息

Biosens Bioelectron. 2013 Dec 15;50:278-93. doi: 10.1016/j.bios.2013.06.033. Epub 2013 Jul 1.

DOI:10.1016/j.bios.2013.06.033
PMID:23872609
Abstract

Since the introduction by Gold et al. in 1990, nucleic acid aptamers had evolved to become a true contender in biosensors for protein and cell detections. Aptamers are short strands of synthetically designed DNA or RNA oligonucleotides that can be self-assembled into unique 3-dimensional structures and can bind to different proteins, cells or even small molecules at a high level of specificity and affinity. In recent years, there had been many reports in literature in using aptamers in place of conventional antibodies as capture biomolecules on the surface. This is mainly due to the better thermal stability properties and ease in production. Consequently, also these characteristics allowed the aptamers to find use in field effect transistors (FETs) based upon 1D nanostructured (1D-NS) as label-free biosensing. In terms of designing label-free platforms for biosensors applications, 1D-NS FET had been an attractive option due to reported high sensitivities toward protein targets arising from the large surface area for detection as well as to their label-free nature. Since the first aptamer-based 1D-NS FET biosensor had surfaced in 2005, there had been many more improvements in the overall design and sensitivity in recent years. In this review, the latest developments in synergizing these two interesting areas of research (aptamers and 1D-NS FET) will be discussed for a range of different nanowire types as well as for the detection results.

摘要

自 1990 年 Gold 等人引入以来,核酸适体已发展成为蛋白质和细胞检测生物传感器的真正竞争者。适体是短链合成设计的 DNA 或 RNA 寡核苷酸,可以自我组装成独特的三维结构,并能以高度特异性和亲和力与不同的蛋白质、细胞甚至小分子结合。近年来,文献中有许多关于在表面上使用适体替代传统抗体作为捕获生物分子的报道。这主要是由于其更好的热稳定性和易于生产。因此,这些特性还允许适体在基于 1D 纳米结构(1D-NS)的场效应晶体管(FET)中找到无标记生物传感的用途。在设计无标记生物传感器平台方面,由于报道的 1D-NS FET 对蛋白质靶标具有高灵敏度,这是由于检测的大表面积以及其无标记的特性,因此 1D-NS FET 是一个有吸引力的选择。自 2005 年第一个基于适体的 1D-NS FET 生物传感器问世以来,近年来在整体设计和灵敏度方面有了许多改进。在这篇综述中,将讨论将这两个有趣的研究领域(适体和 1D-NS FET)结合起来的最新进展,涵盖了各种不同的纳米线类型以及检测结果。

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