Biological Products Laboratory, Chongqing Institute for Food and Drug Control, Chongqing, 430072, P. R. China.
College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, P. R. China.
Chembiochem. 2024 Aug 1;25(15):e202400266. doi: 10.1002/cbic.202400266. Epub 2024 Jul 12.
Nucleic acids exhibit exceptional functionalities for both molecular recognition and catalysis, along with the capability of predictable assembly through strand displacement reactions. The inherent programmability and addressability of DNA probes enable their precise, on-demand assembly and accurate execution of hybridization, significantly enhancing target detection capabilities. Decades of research in DNA nanotechnology have led to advances in the structural design of functional DNA probes, resulting in increasingly sensitive and robust DNA sensors. Moreover, increasing attention has been devoted to enhancing the accuracy and sensitivity of DNA-based biosensors by integrating multiple sensing procedures. In this review, we summarize various strategies aimed at enhancing the accuracy of DNA sensors. These strategies involve multiple guarantee procedures, utilizing dual signal output mechanisms, and implementing sequential regulation methods. Our goal is to provide new insights into the development of more accurate DNA sensors, ultimately facilitating their widespread application in clinical diagnostics and assessment.
核酸在分子识别和催化方面表现出了非凡的功能,并且可以通过链置换反应进行可预测的组装。DNA 探针的固有可编程性和可寻址性使其能够精确、按需组装,并准确执行杂交,从而显著提高了目标检测能力。几十年来,DNA 纳米技术的研究已经推动了功能 DNA 探针的结构设计的发展,从而产生了越来越灵敏和稳健的 DNA 传感器。此外,人们越来越关注通过整合多种传感程序来提高基于 DNA 的生物传感器的准确性和灵敏度。在这篇综述中,我们总结了旨在提高 DNA 传感器准确性的各种策略。这些策略涉及多种保证程序,利用双信号输出机制,并实施顺序调节方法。我们的目标是为更精确的 DNA 传感器的发展提供新的见解,最终促进其在临床诊断和评估中的广泛应用。