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通过识别隧穿对糖异构体进行电子单分子鉴定。

Electronic single-molecule identification of carbohydrate isomers by recognition tunnelling.

机构信息

Biodesign Institute, Arizonan State University, Tempe, Arizona 85287, USA.

Department of Physics, Arizonan State University, Tempe, Arizona 85287, USA.

出版信息

Nat Commun. 2016 Dec 21;7:13868. doi: 10.1038/ncomms13868.

Abstract

Carbohydrates are one of the four main building blocks of life, and are categorized as monosaccharides (sugars), oligosaccharides and polysaccharides. Each sugar can exist in two alternative anomers (in which a hydroxy group at C-1 takes different orientations) and each pair of sugars can form different epimers (isomers around the stereocentres connecting the sugars). This leads to a vast combinatorial complexity, intractable to mass spectrometry and requiring large amounts of sample for NMR characterization. Combining measurements of collision cross section with mass spectrometry (IM-MS) helps, but many isomers are still difficult to separate. Here, we show that recognition tunnelling (RT) can classify many anomers and epimers via the current fluctuations they produce when captured in a tunnel junction functionalized with recognition molecules. Most importantly, RT is a nanoscale technique utilizing sub-picomole quantities of analyte. If integrated into a nanopore, RT would provide a unique approach to sequencing linear polysaccharides.

摘要

碳水化合物是生命的四大基本组成部分之一,可分为单糖(糖)、寡糖和多糖。每种糖都可以有两种互为差向异构体(在 C-1 位的一个羟基有不同的取向),并且每对糖都可以形成不同的表异构体(连接糖的立体中心周围的异构体)。这导致了组合的复杂性,质谱仪无法处理,并且需要大量的样品进行 NMR 表征。将碰撞截面与质谱(IM-MS)的测量相结合有所帮助,但仍有许多异构体难以分离。在这里,我们表明,通过在由识别分子功能化的隧道结中捕获时产生的电流波动,识别隧道(RT)可以对许多差向异构体和表异构体进行分类。最重要的是,RT 是一种利用纳升级别分析物的亚皮摩尔数量的纳米技术。如果将其集成到纳米孔中,RT 将为线性多糖测序提供一种独特的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/689d/5187581/4cd48c91f48b/ncomms13868-f1.jpg

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