Wei Rukai, Shang Lei, Zhang Wei, Li Xiaojian, Jia Liping, Ma Rongna, Wang Huaisheng
Department of Chemistry, Liaocheng University, Liaocheng 252059, China.
Molecules. 2025 Apr 28;30(9):1951. doi: 10.3390/molecules30091951.
Electrochemiluminescence (ECL)/electrochemistry (EC) dual-mode sensors have garnered significant interest for their enhanced analytical reliability through the cross-verification of dual-signal outputs. However, conventional approaches necessitate two potential scans to acquire ECL and EC signals independently, resulting in temporal and environmental discrepancies between the two detection modes. In this paper, we present a novel synchronous ECL/EC dual-mode sensing platform for lead ion (Pb) detection via a one-step potential scan (0.2 to -0.4 V vs. Ag/AgCl) utilizing a G-quadruplex (G4)-hemin DNAzyme complex. This complex synergistically catalyzed the electrochemical reduction of dissolved oxygen, concurrently generating a distinct cathodic ECL emission from Ru(bpy) and a synchronous reduction current peak at -0.25 V. Pb quantification was achieved through its dose-dependent suppression of DNAzyme activity by destabilizing the G4-hemin interaction, thereby proportionally attenuating both ECL intensity and EC signal (reduction current). The integrated sensor demonstrated high sensitivity (detection limits of 1.51 nM for ECL detection and 2.03 nM for EC detection), robust anti-interference capability, and satisfactory reproducibility, with recoveries ranging from 95.5 to 103.1% in environmental water analysis. This work established a paradigm for one-step dual-mode sensor design, offering new prospects for environmental monitoring.
电化学发光(ECL)/电化学(EC)双模式传感器因其通过双信号输出的交叉验证提高了分析可靠性而备受关注。然而,传统方法需要进行两次电位扫描才能独立获取ECL和EC信号,导致两种检测模式之间存在时间和环境差异。在本文中,我们提出了一种新型的同步ECL/EC双模式传感平台,用于通过一步电位扫描(相对于Ag/AgCl为0.2至-0.4 V)利用G-四链体(G4)-血红素DNAzyme复合物检测铅离子(Pb)。该复合物协同催化溶解氧的电化学还原,同时产生来自Ru(bpy)的独特阴极ECL发射和在-0.25 V处的同步还原电流峰。通过破坏G4-血红素相互作用,以剂量依赖的方式抑制DNAzyme活性,从而按比例减弱ECL强度和EC信号(还原电流),实现了Pb的定量分析。该集成传感器具有高灵敏度(ECL检测的检测限为1.51 nM,EC检测的检测限为2.03 nM)、强大的抗干扰能力和令人满意的重现性,在环境水分析中的回收率为95.5%至103.1%。这项工作建立了一步双模式传感器设计的范例,为环境监测提供了新的前景。