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首页> 外文期刊>ACS nano >Amplification of Single Molecule Translocation Signal Using β-Strand Peptide Functionalized Nanopores
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Amplification of Single Molecule Translocation Signal Using β-Strand Peptide Functionalized Nanopores

机译:使用β链肽功能化的纳米孔放大单分子易位信号

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Changes in ionic current flowing through nanopores due to binding or translocation of single biopolymer molecules enable their detection and characterization. It is, however, much more challenging to detect small molecules due to their rapid and small signal signature. Here we demonstrate the use of de novo designed peptides for functionalization of nanopores that enable the detection of a small analytes at the single molecule level. The detection relies on cooperative peptide conformational change that is induced by the binding of the small molecule to a receptor domain on the peptide. This change results in alteration of the nanopore effective diameter and hence induces current perturbation signal. On the basis of this approach, we demonstrate here the detection of diethyl 4-nitrophenyl phosphate (paraoxon), a poisonous organophosphate molecule. Paraoxon binding is induced by the incorporation of the catalytic triad of acetylcholine esterase in the hydrophilic domain of a short amphiphilic peptide and promotes β-sheet assembly of the peptide both in solution and for peptide molecules immobilized on solid surfaces. Nanopores coated with this peptide allowed the detection of paraoxon at the single molecule level revealing two binding arrangements. This unique approach, hence, provides the ability to study interactions of small molecules with the corresponding engineered receptors at the single molecule level. Furthermore, the suggested versatile platform may be used for the development of highly sensitive small analytes sensors.
机译:由于单个生物聚合物分子的结合或易位,流经纳米孔的离子电流的变化使其能够被检测和表征。但是,由于小分子的快速和小信号特征,检测小分子更具挑战性。在这里,我们展示了从头设计的肽用于纳米孔功能化的能力,这些功能可在单个分子水平上检测小的分析物。该检测依赖于由小分子与肽上的受体结构域的结合诱导的合作肽构象变化。这种变化导致纳米孔有效直径的改变,并因此引起电流扰动信号。在此方法的基础上,我们在这里证明了有毒的有机磷酸酯分子二乙基4-硝基苯基磷酸酯(对氧磷)的检测。通过将乙酰胆碱酯酶的催化三联体掺入短两亲性肽的亲水域中来诱导对氧磷结合,并促进该肽在溶液中和固定在固体表面上的肽分子的β-折叠组装。用该肽包被的纳米孔可以在单分子水平上检测对氧磷,揭示出两种结合方式。因此,这种独特的方法提供了在单分子水平上研究小分子与相应工程化受体相互作用的能力。此外,建议的通用平台可用于开发高灵敏度的小型分析物传感器。

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