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基于 3D DNAzyme 巡行者的电化学生物传感器用于检测纳摩尔级 microRNA-155。

3D DNAzyme walker based electrochemical biosensor for attomolar level microRNA-155 detection.

机构信息

Key Laboratory for Biorheological Science and Technology of Ministry of Education, Bioengineering College of Chongqing University, Chongqing, 400044, PR China.

Chongqing Engineering and Technology Research Center of Intelligent Rehabilitation and Eldercare, Chongqing City Management College, Chongqing, 401331, PR China.

出版信息

Anal Chim Acta. 2023 Oct 2;1276:341642. doi: 10.1016/j.aca.2023.341642. Epub 2023 Jul 18.

Abstract

Herein, an ultrasensitive electrochemical biosensor for microRNA-155 (miR-155) detection based on the powerful catalytic and continuous walking signal amplification capability of 3D DNAzyme walker and the gold nanoparticles/graphene aerogels carbon fiber paper-based (AuNPs/GAs/CFP) flexible sensing electrode with excellent electrochemical performance was successfully constructed. In a proof-of-concept experiment, in the presence of miR-155, the DNAzyme strands anchored on the streptavidin-modified magnetic beads (MBs) silenced by locked strands can be activated, thus generating the walking arm of the 3D DNAzyme walker. Meanwhile, the substrate strands modified with Fe-MOF-NH nanoparticles were evenly distributed on the surface of MBs and served as tracks of the 3D DNAzyme walker. Once the DNAzyme strand was activated, the catalytic site in the substrate strand can be cleaved in the presence of Mn, and a large number of stumps modified with Fe-MOF-NH nanoparticles (output@Fe-MOF-NH) will be generated during the continuous and efficient walking cleavage of the DNAzyme walker, driving the recognition-catalysis-release cycle process for signal amplification. Immediately afterwards, the signal was read out through the base complementary pairing of capture probe (PS) immobilized on the surface of the paper-based flexible sensing electrode AuNPs/GAs/CFP and signal probes output@Fe-MOF-NH, thus achieving the quantitative detection of miR-155. Under optimal experimental conditions, the designed 3D DNAzyme walker-based biosensor exhibited a relatively lower limit of detection (LOD) of 56.23 aM, with a linear range of 100 aM to 100 nM. Overall, the proposed 3D DNAzyme walker biosensor exhibited good interference and reproducibility, demonstrating a promising future in the field of clinical disease diagnosis.

摘要

本文构建了一种基于强大的催化和连续行走信号放大能力的三维 DNA walker 和具有优异电化学性能的金纳米粒子/石墨烯气凝胶碳纤维纸基(AuNPs/GAs/CFP)柔性传感电极的超灵敏电化学生物传感器,用于检测 microRNA-155(miR-155)。在概念验证实验中,在 miR-155 的存在下,被锁定链沉默的链上锚定的 DNAzyme 链可以被激活,从而产生三维 DNA walker 的行走臂。同时,用 Fe-MOF-NH 纳米粒子修饰的底物链均匀分布在 MBs 表面上,作为三维 DNA walker 的轨道。一旦 DNAzyme 链被激活,在 Mn 的存在下,底物链中的催化位点可以被切割,并且在 DNAzyme walker 的连续和高效行走切割过程中,会产生大量用 Fe-MOF-NH 纳米粒子修饰的残端(输出@Fe-MOF-NH),驱动信号放大的识别-催化-释放循环过程。随后,通过固定在基于纸的柔性传感电极 AuNPs/GAs/CFP 表面上的捕获探针(PS)和信号探针输出@Fe-MOF-NH 的碱基互补配对读出信号,从而实现 miR-155 的定量检测。在最佳实验条件下,所设计的基于三维 DNA walker 的生物传感器表现出相对较低的检测限(LOD)为 56.23 aM,线性范围为 100 aM 至 100 nM。总体而言,所提出的三维 DNA walker 生物传感器表现出良好的干扰和重现性,在临床疾病诊断领域具有广阔的应用前景。

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