Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, Ministry of Education, Shandong Key Laboratory of Biochemical Analysis, and College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, P. R. China.
Small. 2024 Jul;20(27):e2309502. doi: 10.1002/smll.202309502. Epub 2024 Jan 28.
Accurate detection of trace tetracyclines (TCs) in complex matrices is of great significance for food and environmental safety monitoring. However, traditional recognition and amplification tools exhibit poor specificity and sensitivity. Herein, a novel dual-machine linkage nanodevice (DMLD) is proposed for the first time to achieve high-performance analysis of TC, with a padlock aptamer component as the initiation command center, nucleic acid-encoded multispike virus-like Au nanoparticles (nMVANs) as the signal indicator, and cascade walkers circuit as the processor. The existence of spike vertices and interspike nanogaps in MVANs enables intense electromagnetic near-field focusing, allowing distinct surface-enhanced Raman scattering (SERS) activity. Moreover, through the sequential activation between multistage walker catalytic circuits, the DLMD system converts the limited TC recognition into massive engineering assemblies of SERS probes guided by DNA amplicons, resulting in synergistic enhancement of bulk plasmonic hotspot entities. The continuously guaranteed target recognition and progressively promoted signal enhancement ensure highly specific amplification analysis of TC, with a detection limit as low as 7.94 × 10 g mL. Furthermore, the reliable recoveries in real samples confirm the practicability of the proposed sensing platform, highlighting the enormous potential of intelligent nanomachines for analyzing the trace hazards in the environment and food.
准确检测复杂基质中的痕量四环素(TCs)对于食品安全和环境监测具有重要意义。然而,传统的识别和放大工具特异性和灵敏度较差。本文首次提出了一种新型双机器联动纳米器件(DMLD),用于实现 TC 的高性能分析,以发夹适体组件作为起始命令中心、核酸编码多刺病毒样金纳米粒子(nMVANs)作为信号指示剂、级联 walker 电路作为处理器。MVANs 中的尖峰顶点和尖峰纳米间隙的存在允许强烈的电磁近场聚焦,从而产生明显的表面增强拉曼散射(SERS)活性。此外,通过多级 walker 催化电路的顺序激活,DLMD 系统将有限的 TC 识别转化为 DNA 扩增子引导的大量 SERS 探针的工程组装,从而协同增强体等离子体热点实体。持续保证目标识别和逐步促进信号增强确保了 TC 的高特异性放大分析,检测限低至 7.94×10 g mL。此外,实际样品中的可靠回收率证实了所提出的传感平台的实用性,突出了智能纳米机器在分析环境和食品中痕量危害方面的巨大潜力。