Department of Chemistry, Missouri University of Science and Technology, Rolla, Missouri, USA.
Center for Research in Energy and Environment, Missouri University of Science and Technology, Rolla, Missouri, USA.
Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2022 Jan;14(1):e1765. doi: 10.1002/wnan.1765. Epub 2021 Nov 3.
With the increasing importance of accurate and early disease diagnosis and the development of personalized medicine, DNA-based electrochemical biosensor has attracted broad scientific and clinical interests in the past decades due to its unique hybridization specificity, fast response time, and potential for miniaturization. In order to achieve high detection sensitivity, the design of DNA electrochemical biosensors depends critically on the improvement of the accessibility of target molecules and the enhancement of signal readout. Here, we summarize the recent advances in DNA probe immobilization and signal amplification strategies with a special focus on DNA nanostructure-supported DNA probe immobilization method, which provides the opportunity to rationally control the distance between probes and keep them in upright confirmation, as well as the contribution of functional nanomaterials in enhancing the signal amplification. The next challenge of biosensors will be the fabrication of point-of-care devices for clinical testing. The advancement of multidisciplinary areas, including nanofabrication, material science, and biochemistry, has exhibited profound promise in achieving such portable sensing devices. This article is categorized under: Diagnostic Tools > Biosensing Diagnostic Tools > Diagnostic Nanodevices Biology-Inspired Nanomaterials > Nucleic Acid-Based Structures.
由于独特的杂交特异性、快速的响应时间以及小型化的潜力,基于 DNA 的电化学生物传感器在过去几十年中引起了广泛的科学和临床兴趣。为了实现高检测灵敏度,DNA 电化学生物传感器的设计关键取决于提高目标分子的可及性和增强信号读出。在这里,我们总结了 DNA 探针固定化和信号放大策略的最新进展,特别关注 DNA 纳米结构支持的 DNA 探针固定化方法,该方法为合理控制探针之间的距离并保持它们垂直确认提供了机会,以及功能纳米材料在增强信号放大方面的贡献。生物传感器的下一个挑战将是用于临床测试的即时检测设备的制造。包括纳米制造、材料科学和生物化学在内的多个领域的进步,为实现这种便携式传感设备展示了广阔的前景。本文属于以下分类:诊断工具 > 生物传感诊断工具 > 诊断纳米器件 仿生纳米材料 > 基于核酸的结构。