Key Laboratory of Analytical Science for Food Safety and Biology (MOE & Fujian Province), Department of Chemistry , Fuzhou University , Fuzhou 350116 , People's Republic of China.
Chair for Analytical Chemistry and Water Chemistry, Institute of Hydrochemistry , Technische Universität München , Marchioninistrasse 17 , D-81377 München , Germany.
Anal Chem. 2019 Feb 5;91(3):2447-2454. doi: 10.1021/acs.analchem.8b05265. Epub 2019 Jan 16.
This work presented an innovative and rationally engineered palindromic molecular beacon (PMB) based "Z-scheme" photoelectrochemical (PEC) biosensing protocol for the selective screening of kanamycin (Kana) through DNA hybridization-induced conformational conversion. Interestingly, the ingeniously designed PMB integrated the multifunctional elements including recognition region, primer-like palindromic fragment, and polymerization-nicking template. The cosensitized structures consisted of CdS quantum dot functionalized hairpin DNA2 (QD-HP2) and region-selectively deposited gold nanoparticles onto {001} facets of bismuth oxychloride (BiOCl-Au). Compared with BiOCl-Au alone, the attachment of CdS QDs onto BiOCl-Au (i.e., BiOCl-Au-CdS QDs) exhibited evidently enhanced photocurrent intensity thanks to the synergistic effect of Z-scheme BiOCl-Au-CdS QDs. After incubation with target Kana, Kana-aptamer binding could induce the exposure of PMB region for hairpin DNA1 (HP1). The exposed palindromic tails hybridized with each other (like a molecular machine) to consume the substrates (dNTPs) and fuels (enzyme) for the releasing of numerous nick fragments (Nick). The as-generated nick fragments could specifically hybridize with the complementary region of QD-HP2, thus resulting in decreasing photocurrent because of the increasing spatial distance for electron transfer between two-type photosensitizers. Under optimum conditions, the PMB-based sensing system exhibited satisfying photocurrent responses toward target Kana within the working range from 50 to 5000 fM at a low detection limit of 29 fM. Impressively, the concept of a palindromic fragment-mediated primer-free biosensing strategy offers a new avenue for advanced development of efficient and convenient biodetection systems.
这项工作提出了一种基于回文分子信标(PMB)的创新理性设计“Z 型”光电流化学(PEC)生物传感协议,通过 DNA 杂交诱导的构象转换,选择性筛选卡那霉素(Kana)。有趣的是,精心设计的 PMB 集成了多功能元件,包括识别区域、类似引物的回文片段和聚合切口模板。共敏化结构由 CdS 量子点功能化发夹 DNA2(QD-HP2)和区域选择性沉积在氯氧化铋(BiOCl-Au){001}面上的金纳米颗粒组成。与单独的 BiOCl-Au 相比,CdS QDs 附着在 BiOCl-Au 上(即 BiOCl-Au-CdS QDs)由于 Z 型 BiOCl-Au-CdS QDs 的协同效应,表现出明显增强的光电流强度。与靶标 Kana 孵育后,Kana-适体结合可诱导 PMB 区域暴露于发夹 DNA1(HP1)。暴露的回文尾巴彼此杂交(像分子机器一样),消耗底物(dNTPs)和燃料(酶),释放大量的切口片段(Nick)。产生的切口片段可以特异性地与 QD-HP2 的互补区域杂交,从而由于两种类型的光敏剂之间的电子转移的空间距离增加,导致光电流减小。在最佳条件下,基于 PMB 的传感系统在工作范围内对目标 Kana 表现出令人满意的光电流响应,检测下限低至 29 fM。令人印象深刻的是,回文片段介导的无引物生物传感策略的概念为高效便捷的生物检测系统的先进发展提供了新途径。