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Triggered Polycatenated DNA Scaffolds for DNA Sensors and Aptasensors by a Combination of Rolling Circle Amplification and DNAzyme Amplification

机译:滚动环扩增和DNAzyme扩增相结合的DNA传感器和Aptasensors触发的多级DNA支架

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The concept of triggered polycatenated DNA scaffolds has been elegantly introduced into ultrasensitive biosensing applications by a combination of rolling circle amplification (RCA) and DNAzyme amplification. As compared to traditional methods in which one target could only initiate the formation of one circular template for RCA reaction, in the present study two species of linear single-stranded DNA (ssDNA) monomers are self-assembled into mechanically interlocked polycatenated nanostructures on capture probe-tagged magnetic nanoparticles (MNPs) only upon the introduction of one base mutant DNA sequence as initiator for single-nucleotide polymorphisms (SNPs) analysis. The resultant topologically polycatenated DNA ladder is further available for RCA process by using the serially ligated circular DNA as template for the synthesis of hemin/G-quadruplex HRP-mimicking DNAzyme chains, which act as biocatalytic labels for the luminol-H_(2)O_(2) chemiluminescence (CL) system. Notably, the problem of high background induced by excess hemin itself is circumvented by immobilizing the biotinylated RCA products on streptavidin-modified MNPs via biotin-streptavidin interaction. Similarly, a universal strategy is contrived by substitutedly employing aptamer as initiator for the construction of polycatenated DNA scaffolds to accomplish ultrasensitive detection of proteins based on structure-switching of aptamer upon target binding, which is demonstrated by using thrombin as a model analyte in this study. Overall, with two successive amplification steps and one magnetic separation procedure, this flexible biosensing system exhibits not only high sensitivity and specificity with the detection limits of SNPs and thrombin as low as 71 aM and 6.6 pM, respectively, but also excellent performance in real human serum assay with no PCR preamplification for SNPs assay. Given the unique and attractive characteristics, this study illustrates the potential of DNA nanotechnology in bioanalytical applications for both fundamental and practical research.
机译:通过结合滚环扩增(RCA)和DNAzyme扩增,已触发多链DNA支架的概念已被优雅地引入超灵敏生物传感应用。与其中一个目标只能启动一个环状模板进行RCA反应的传统方法相比,在本研究中,两种线性单链DNA(ssDNA)单体物种在捕获探针上自组装成机械互锁的多链纳米结构标记的磁性纳米颗粒(MNPs)仅在引入一个碱基突变的DNA序列作为引发剂进行单核苷酸多态性(SNPs)分析时引入。通过使用连续连接的环状DNA作为模板合成合成hemin / G-quadruplex HRP-模仿DNAzyme链的模板,所得的拓扑多链DNA阶梯可进一步用于RCA过程,其充当luminol-H_(2)O_的生物催化标记(2)化学发光(CL)系统。值得注意的是,通过生物素-链霉抗生物素蛋白的相互作用将生物素化的RCA产物固定在链霉抗生物素蛋白修饰的MNPs上,可以避免由过量的血红素自身引起的高背景问题。类似地,通过替代使用适体作为引发剂来构建多链DNA支架以完成基于靶标结合后适体结构转换的蛋白质的超灵敏检测,设计了一种通用策略,这在本研究中通过使用凝血酶作为模型分析物得到了证明。 。总体而言,通过两个连续的扩增步骤和一个磁分离程序,这种灵活的生物传感系统不仅具有高灵敏度和特异性,而且SNP和凝血酶的检出限分别低至71 aM和6.6 pM,而且在真实人类中也具有出色的性能。血清检测,无用于SNPs检测的PCR预扩增。鉴于其独特而诱人的特性,本研究说明了DNA纳米技术在生物分析应用中对基础研究和实践研究的潜力。

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