Expand detection windows for identifying single nucleotide polymorphisms using a competitive toehold-mediated strand displacement ratiometric sensing platform

IF 3.7 1区 化学 Q1 CHEMISTRY, ANALYTICAL Sensors and Actuators B: Chemical Pub Date : 2025-03-22 DOI:10.1016/j.snb.2025.137666
Yunshan Zhang , Sisi Bu , Fang Yang , Tuo Huang , Hao Dong , Jing Ye , Wenlin Xie , Xianzhong Feng , Diming Zhang
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Abstract

The subtle free energy difference introduced by a single nucleotide mutation results in poor specificity of almost all DNA hybridization probe-based single nucleotide polymorphism (SNP) detection techniques. The development of SNP biosensing strategies with both specificity and sensitivity is a hot and difficult issue in the current field. In this study, we creatively constructed a competitive toehold-mediated strand displacement sensing platform (CTMSD) based on the traditional TMSD reaction, which increased the energy barrier through the intrinsic competition mechanism and expanded the detection window of SNPs. Furthermore, based on the characteristics of the CTMSD platform, the dual-signal detection mode was introduced to change the function model of the detection curve through reporting internal reference ratio signal. The new detection curve model not only compensated for sensitivity, significantly enhanced the discrimination factor, but also greatly expanded the detection window with infinite robustness factor over the detection range. The expansion of the detection window and the improvement of specificity of CTMSD for SNP recognition based on the ratiometric signal output model were verified by computer simulations and experiments. In addition, as a deformation of the strand displacement reaction, the CTMSD was readily adaptable to commonly used signal amplification techniques, such as catalytic hairpin assembly (CHA). Through the CTMSD-CHA performance analysis and real testing of cell genomic samples, the practical application value of CTMSD with the ratiometric signal output model was confirmed. This study provides an important reference for the design and improvement of SNP biosensors and even for all nucleic acid biosensors.
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利用竞争性的支点介导的链位移比例传感平台,扩大检测窗口以识别单核苷酸多态性
单核苷酸突变引入的细微自由能差导致几乎所有基于DNA杂交探针的单核苷酸多态性(SNP)检测技术的特异性较差。开发特异性和敏感性并重的SNP生物传感策略是当前研究领域的热点和难点问题。本研究在传统的TMSD反应的基础上,创造性地构建了竞争性支点介导链位移传感平台(CTMSD),通过内在竞争机制增加了能量势垒,扩大了snp的检测窗口。在此基础上,根据CTMSD平台的特点,引入双信号检测模式,通过上报内部参考比值信号改变检测曲线的函数模型。新的检测曲线模型不仅补偿了灵敏度,显著提高了识别因子,而且在检测范围内以无穷大的鲁棒性因子大大扩展了检测窗口。通过计算机模拟和实验验证了基于比率信号输出模型的CTMSD对SNP识别的检测窗口的扩大和特异性的提高。此外,作为链位移反应的变形,CTMSD很容易适用于常用的信号放大技术,如催化发夹组装(CHA)。通过CTMSD- cha性能分析和细胞基因组样品的实际测试,验证了CTMSD与比率信号输出模型的实际应用价值。本研究为SNP生物传感器乃至所有核酸生物传感器的设计和改进提供了重要参考。
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来源期刊
Sensors and Actuators B: Chemical
Sensors and Actuators B: Chemical 工程技术-电化学
CiteScore
14.60
自引率
11.90%
发文量
1776
审稿时长
3.2 months
期刊介绍: Sensors & Actuators, B: Chemical is an international journal focused on the research and development of chemical transducers. It covers chemical sensors and biosensors, chemical actuators, and analytical microsystems. The journal is interdisciplinary, aiming to publish original works showcasing substantial advancements beyond the current state of the art in these fields, with practical applicability to solving meaningful analytical problems. Review articles are accepted by invitation from an Editor of the journal.
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