CAS Key Laboratory of Nano-Bio Interface, Suzhou Institute of Nano-Tech and Nano-Bionics (SINANO), Chinese Academy of Sciences, Suzhou, Jiangsu, PR China.
School of Nano-Tech and Nano-Bionics, University of Science and Technology of China (USTC), Hefei, Anhui, PR China.
Crit Rev Anal Chem. 2024;54(6):1399-1415. doi: 10.1080/10408347.2022.2115287. Epub 2022 Aug 26.
Heavy metals ions as metallic pollutants are a growing global issue due to their adverse effects on the aquatic ecosystem, and human health. Unfortunately, conventional detection methods such as atomic absorption spectrometry exhibit a relatively low limit of detection and hold numerous disadvantages, and therefore, the development of an efficient method for and real-time detection of heavy metal residues is of great importance. The aptamer-based sensors offer distinct advantages over antibodies and emerged as a robust sensing platform against various heavy metals due to their high sensitivity, ease of production, simple operations, excellent specificity, better stability, low immunogenicity, and cost-effectiveness. The nucleic acid aptamers in conjugation with nanomaterials can bind to the metal ions with good specificity/selectivity and can be used for on-site monitoring of metal ion residues. This review aimed to provide background information about nanomaterials-based aptasensor, recent advancements in aptamer conjunction on nanomaterials surface, the role of nanomaterials in improving signal transduction, recent progress of nanomaterials-based aptasening procedures (from 2010 to 2022), and future perspectives toward the practical applications of nanomaterials-based aptasensors against hazardous metal ions for food safety and environmental monitoring.
重金属离子作为金属污染物,由于其对水生生态系统和人类健康的不利影响,是一个日益严重的全球性问题。不幸的是,传统的检测方法,如原子吸收光谱法,其检测限相对较低,并且存在许多缺点,因此,开发一种高效的方法来实时检测重金属残留非常重要。与抗体相比,适配体传感器具有明显的优势,并且由于其高灵敏度、易于生产、操作简单、特异性好、稳定性好、免疫原性低、成本效益高,已成为针对各种重金属的强大传感平台。与纳米材料结合的核酸适配体可以与金属离子具有良好的特异性/选择性结合,可用于现场监测金属离子残留。本综述旨在提供有关基于纳米材料的适配体传感器的背景信息、适配体在纳米材料表面结合的最新进展、纳米材料在提高信号转导中的作用、基于纳米材料的适配体传感器的最新进展(2010 年至 2022 年),以及针对食品安全和环境监测中有害金属离子的基于纳米材料的适配体传感器的实际应用的未来展望。