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基于聚合酶辅助光致电子转移策略的无猝灭剂荧光法检测汞(II)

Quencher-Free Fluorescence Method for the Detection of Mercury(II) Based on Polymerase-Aided Photoinduced Electron Transfer Strategy.

作者信息

Liu Haisheng, Ma Linbin, Ma Changbei, Du Junyan, Wang Meilan, Wang Kemin

机构信息

State Key Laboratory of Medical Genetics & School of Life Sciences, Central South University, Changsha 410013, China.

Department of Environmental Monitoring, Changsha Environmental Protection Technology Vocational College, Changsha 410004, China.

出版信息

Sensors (Basel). 2016 Nov 18;16(11):1945. doi: 10.3390/s16111945.

Abstract

A new quencher-free Hg ion assay method was developed based on polymerase-assisted photoinduced electron transfer (PIET). In this approach, a probe is designed with a mercury ion recognition sequence (MRS) that is composed of two T-rich functional areas separated by a spacer of random bases at the 3'-end, and a sequence of stacked cytosines at the 5'-end, to which a fluorescein (FAM) is attached. Upon addition of Hg ions into this sensing system, the MRS folds into a hairpin structure at the 3'-end with Hg-mediated base pairs. In the presence of DNA polymerase, it will catalyze the extension reaction, resulting in the formation of stacked guanines, which will instantly quench the fluorescence of FAM through PIET. Under optimal conditions, the limit of detection for Hg ions was estimated to be 5 nM which is higher than the US Environmental Protection Agency (EPA) standard limit. In addition, no labeling with a quencher was requiring, and the present method is fairly simple, fast and low cost. It is expected that this cost-effective fluorescence method might hold considerable potential in the detection of Hg ions in real biological and environmental samples.

摘要

基于聚合酶辅助光诱导电子转移(PIET)开发了一种新的无猝灭剂汞离子检测方法。在这种方法中,设计了一种探针,其具有汞离子识别序列(MRS),该序列由3'端两个富含T的功能区组成,中间由随机碱基间隔区隔开,5'端有一段堆积的胞嘧啶序列,其上连接有荧光素(FAM)。向该传感系统中加入汞离子后,MRS在3'端折叠成发夹结构,形成汞介导的碱基对。在DNA聚合酶存在的情况下,它将催化延伸反应,导致形成堆积的鸟嘌呤,这将通过PIET立即淬灭FAM的荧光。在最佳条件下,汞离子的检测限估计为5 nM,高于美国环境保护局(EPA)的标准限值。此外,无需用猝灭剂标记,本方法相当简单、快速且成本低。预计这种具有成本效益的荧光方法在实际生物和环境样品中汞离子的检测方面可能具有相当大的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26d1/5134604/c25fd197bf8b/sensors-16-01945-g001.jpg

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