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Understanding Signal and Background in a Thermally Resolved Single-Branched DNA Assay Using Square Wave Voltammetry

机译:使用方波伏安法在热拆分单分支DNA分析中了解信号和背景

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摘要

Electrochemical bioanalytical sensors with oligonucleotide transducer molecules have been recently extended for quantifying a wide range of biomolecules, from small drugs to large proteins. Short DNA or RNA strands have gained attention recently due to the existence of circulating oligonucleotides in human blood, yet challenges remain for adequately sensing these targets at electrode surfaces. In this work, we have developed a quantitative electrochemical method which uses target-induced proximity of a single-branched DNA structure to drive hybridization at an electrode surface, with readout by square-wave voltammetry (SWV). Using custom instrumentation, we first show that precise control of temperature can provide both electrochemical signal amplification and background signal depreciation in SWV readout of small oligonucleotides. Next, we thoroughly compared 25 different combinations of binding energies by their signal-to-background ratios and differences. These data served as a guide to select the optimal parameters of binding energy, SWV frequency, and assay temperature. Finally, the influence of experimental workflow on the sensitivity and limit of detection (LOD) of the sensor is demonstrated. This study highlights the importance of precisely controlling temperature and SWV frequency in DNA-driven assays on electrode surfaces while also presenting a novel instrumental design for fine-tuning of such systems.
机译:最近,具有寡核苷酸换能器分子的电化学生物分析传感器已得到扩展,用于定量从小型药物到大型蛋白质的各种生物分子。由于人类血液中循环寡核苷酸的存在,短的DNA或RNA链近来引起了人们的关注,但是如何在电极表面充分感测这些靶标仍然存在挑战。在这项工作中,我们开发了一种定量电化学方法,该方法使用靶标诱导的单支DNA结构的邻近性来驱动电极表面的杂交,并通过方波伏安法(SWV)进行读数。使用定制仪器,我们首先显示对温度的精确控制可以在小型寡核苷酸的SWV读数中提供电化学信号放大和背景信号折旧。接下来,我们通过结合能的信噪比和差异彻底比较了25种不同的结合能组合。这些数据可作为选择结合能,SWV频率和测定温度的最佳参数的指南。最后,证明了实验工作流程对传感器的灵敏度和检测限(LOD)的影响。这项研究强调了在电极表面上的DNA驱动测定中精确控制温度和SWV频率的重要性,同时还提出了一种用于微调此类系统的新颖仪器设计。

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