扩大基于核酸的电化学传感器的单层范围,超越金上的硫醇:ITO上的烷基膦酸。

ECS sensors plus Pub Date : 2023-03-01 Epub Date: 2023-03-29 DOI:10.1149/2754-2726/acc4d9
Alexander Shaver, Netzahualcóyotl Arroyo-Currás
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引用次数: 0

摘要

电化学生物传感器是一种强大且快速发展的分子监测技术。连续血糖监测仪在治疗1型糖尿病方面的成功证明,这些传感器能够在未经处理的生物环境中进行精确、准确的测量。基于核酸的电化学传感器(NBE)是一种特殊类型的生物传感器,它利用核酸的靶标结合和构象动力学进行信号转导。目前,绝大多数NBE是通过烷基硫醇在Au电极上的自组装制备的。然而,这种结构的范围是有限的,因为Au电极并不能普遍用于所有潜在的NBE应用。在这里,为了扩大可以制造NBE的材料库,我们描述了在导电氧化物表面上创建烷基膦酸传感单层的多步骤程序。在涂有氧化铟锡(ITO)的载玻片上使用这种单层,我们偶联了氧化还原报告基因修饰的核酸,并证明了缓冲液和人血清中普鲁卡因结合NBE传感器的信号传导。我们研究了这些NBE传感器的操作稳定性,以揭示相对于金传感层上的基准硫醇更快的信号损失,这是由于底层ITO的稳定性差而产生的结果。最后,我们讨论了NBE传感器材料和应用的未来发展方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Expanding the Monolayer Scope for Nucleic Acid-Based Electrochemical Sensors Beyond Thiols on Gold: Alkylphosphonic Acids on ITO.

Electrochemical biosensors are a powerful and rapidly evolving molecular monitoring technology. Evidenced by the success of the continuous glucose monitor in managing Type 1 Diabetes, these sensors are capable of precise, accurate measurements in unprocessed biological environments. Nucleic acid-based electrochemical sensors (NBEs) are a specific type of biosensor that employs the target binding and conformational dynamics of nucleic acids for signal transduction. Currently, the vast majority of NBEs are fabricated via self-assembly of alkylthiols on Au electrodes. However, this architecture is limited in scope, as Au electrodes are not universally deployable for all potential NBE applications. Here, to expand the repertoire of materials on which NBEs can be made, we describe the multistep procedure for creating sensing monolayers of alkylphosphonic acids on a conductive oxide surface. Using such monolayers on indium tin oxide (ITO)-coated glass slides, we couple redox reporter-modified nucleic acids and demonstrate signaling of procaine-binding NBE sensors in buffer and human serum. We investigate the operational stability of these NBE sensors to reveal faster signal loss relative to benchmark thiol-on-gold sensing layers, a result that arises due to poor stability of the underlying ITO. Finally, we discuss future directions to continue expansion of NBE sensor materials and applications.

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