Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, Chongqing Engineering Laboratory of Nanomaterials & Sensor Technologies, College of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, PR China.
Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, Chongqing Engineering Laboratory of Nanomaterials & Sensor Technologies, College of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, PR China.
Biosens Bioelectron. 2024 Sep 15;260:116459. doi: 10.1016/j.bios.2024.116459. Epub 2024 Jun 1.
In this study, an ultrasensitive photoelectrochemical (PEC) aptasensor based on dual-sensitized heterojunction AgS/ZnS/NiS composites as a signal probe was proposed for the detection of tobramycin (TOB) by combining a cascaded quadratic signal amplification strategy. Specifically, compared to the limited visible light-harvesting capability of single sensitized composites, AgS/ZnS/NiS composites with p-n and n-n heterojunction could greatly improve the light energy utilization to tremendously strengthen the optical absorption in the entire visible-light region. Moreover, dual-sensitized heterojunction could effectively hinder the rapid recombination of photoelectrons and holes (carriers) to obtain a good photocurrent for improving the sensitivity of the aptasensor. Furthermore, a cascaded quadratic signal amplification strategy was applied to convert trace target TOB into plentiful gold nanoclusters (Au NCs) labelled double-stranded DNA for the construction of PEC aptasensor, with a broad linear detection range from 0.01 to 100 ng mL and a low detection limit of 3.38 pg mL. Importantly, this study provided a versatile and sensitive PEC biosensing platform for TOB analysis, and demonstrated its successful application for TOB detection in milk samples. This protocol provides a novel dual-sensitized heterojunction composites to develop a highly efficient and harmfulless PEC aptasensor, which is expected to be used in food safety, environmental monitoring and other areas.
在这项研究中,通过结合级联二次信号放大策略,提出了一种基于双敏异质结 AgS/ZnS/NiS 复合材料作为信号探针的超灵敏光电化学(PEC)适体传感器,用于检测妥布霉素(TOB)。具体而言,与单敏复合材料有限的可见光收集能力相比,具有 p-n 和 n-n 异质结的 AgS/ZnS/NiS 复合材料可以大大提高光能利用率,从而极大地增强整个可见光区域的光学吸收。此外,双敏异质结可以有效抑制光生电子和空穴(载流子)的快速复合,从而获得良好的光电流,提高适体传感器的灵敏度。此外,应用级联二次信号放大策略将痕量靶标 TOB 转化为大量标记双链 DNA 的金纳米簇(Au NCs),用于构建 PEC 适体传感器,其线性检测范围从 0.01 到 100ng mL,检测下限低至 3.38pg mL。重要的是,本研究为 TOB 分析提供了一种通用且灵敏的 PEC 生物传感平台,并成功应用于牛奶样品中的 TOB 检测。该方案提供了一种新颖的双敏异质结复合材料,用于开发高效、无害的 PEC 适体传感器,有望应用于食品安全、环境监测等领域。