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基于使用市售试剂组合的指示剂置换分析法开发的糖类化学传感器阵列。

A Saccharide Chemosensor Array Developed Based on an Indicator Displacement Assay Using a Combination of Commercially Available Reagents.

作者信息

Sasaki Yui, Zhang Zhoujie, Minami Tsuyoshi

机构信息

Institute of Industrial Science, University of Tokyo, Tokyo, Japan.

出版信息

Front Chem. 2019 Feb 25;7:49. doi: 10.3389/fchem.2019.00049. eCollection 2019.

Abstract

Herein, a very simple colorimetric chemosensor array is reported for saccharides (-glucose, -fructose, -xylose, -galactose, -mannose, -rhamnose, and -acetyl--gluosamine). While various types of chemosensors for saccharides have been investigated extensively to-this-date, tremendous additional efforts are still required on a regular basis for the syntheses of new chemosensors. Complicated syntheses would be a bottleneck, given that artificial receptor-based chemosensing systems are not so popular in comparison to biomaterial-based (e.g., enzyme-based) sensing systems. Toward this end, chemosensor array systems using molecular self-assembled materials can avoid the abovementioned synthetic efforts and achieve simultaneous qualitative and quantitative detection of a number of guest saccharides. Using a practical approach, we focus on an indicator displacement assay (IDA) to fabricate a chemosensor array for colorimetric saccharide sensing. On this basis, 3-nitrophenylboronic acid (3-NPBA) spontaneously reacts with catechol dyes such as alizarin red S (ARS), bromopyrogallol red (BPR), pyrogallol red (PR), and pyrocatechol violet (PV), and yields boronate ester derivatives with color changes. The addition of saccharides into the aqueous solution of the boronate esters induces color recovery owing to the higher binding affinity of 3-NPBA for saccharides, thus resulting in the release of dyes. By employing this system, we have succeeded in discriminating saccharides qualitatively and quantitatively with a classification success rate of 100%. Most importantly, our chemosensor array has been fabricated by only mixing low cost commercially available reagents , which means that complicated synthetic processes are avoided for saccharide sensing. We believe this simple colorimetric assay that uses only commercially available reagents can create new, user-friendly supramolecular sensing pathways for saccharides.

摘要

在此,我们报道了一种用于糖类(α-葡萄糖、α-果糖、α-木糖、α-半乳糖、α-甘露糖、α-鼠李糖和N-乙酰-α-葡萄糖胺)检测的非常简单的比色化学传感器阵列。尽管迄今为止已经对各种类型的糖类化学传感器进行了广泛研究,但仍需要定期付出巨大努力来合成新的化学传感器。鉴于与基于生物材料(例如基于酶)的传感系统相比,基于人工受体的化学传感系统不太受欢迎,复杂的合成过程可能会成为一个瓶颈。为此,使用分子自组装材料的化学传感器阵列系统可以避免上述合成工作,并实现对多种客体糖类的同时定性和定量检测。我们采用一种实用的方法,专注于指示剂置换分析(IDA)来构建用于比色糖类传感的化学传感器阵列。在此基础上,3-硝基苯硼酸(3-NPBA)与茜素红S(ARS)、溴邻苯三酚红(BPR)、邻苯三酚红(PR)和焦儿茶酚紫(PV)等儿茶酚染料自发反应,并产生颜色变化的硼酸酯衍生物。由于3-NPBA对糖类具有更高的结合亲和力,向硼酸酯的水溶液中添加糖类会导致颜色恢复,从而使染料释放出来。通过采用该系统,我们成功地对糖类进行了定性和定量区分,分类成功率为100%。最重要的是,我们的化学传感器阵列仅通过混合低成本的市售试剂制备而成,这意味着避免了用于糖类传感的复杂合成过程。我们相信这种仅使用市售试剂的简单比色分析可以为糖类创造新的、用户友好的超分子传感途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3309/6397832/b45b5659dd3d/fchem-07-00049-g0001.jpg

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