School of Sensing Science and Engineering, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai Engineering Research Center for Intelligent diagnosis and treatment instrument, Key Laboratory of Thin Film and Microfabrication Technology (Ministry of Education), Shanghai, Shanghai, China.
School of Naval Architecture, Ocean and Civil Engineering, Shanghai Jiao Tong University, Shanghai, Shanghai, China.
Biotechnol Bioeng. 2022 Feb;119(2):347-360. doi: 10.1002/bit.28005. Epub 2021 Dec 11.
Nanomaterials, especially superparamagnetic nanomaterials, have recently played essential roles in point-of-care testing due to their intrinsic magnetic, electrochemical, and optical properties. The inherent superparamagnetism of magnetic nanoparticles makes them highly sensitive for quantitative detection. Among the various magnetic detection technologies, frequency mixing technology (FMT) technology is an emerging detection technique in the nanomedical field. FMT sensors have high potential for development in the field of biomedical quantitative detection due to their simple structure, and they are not limited to the materials used. In particular, they can be applied for large-scale disease screening, early tumor marker detection, and low-dose drug detection. This review summarizes the principles of FMT and recent advances in the fields of immunoadsorption, lateral flow assay detection, magnetic imaging, and magnetic nanoparticles recognition. The advantages and limitations of FMT sensors for robust, ultrasensitive biosensing are highlighted. Finally, the future requirements and challenges in the development of this technology are described. This review provides further insights for researchers to inspire the future development of FMT by integration into biosensing and devices with a broad field of applications in analytical sensing and clinical usage.
纳米材料,特别是超顺磁性纳米材料,由于其固有磁性、电化学和光学特性,最近在即时检测中发挥了重要作用。磁性纳米粒子的固有超顺磁性使它们能够进行高度灵敏的定量检测。在各种磁检测技术中,频率混合技术(FMT)技术是纳米医学领域中一种新兴的检测技术。FMT 传感器由于其结构简单,并且不受所用材料的限制,在生物医学定量检测领域具有很大的发展潜力。特别是,它们可用于大规模疾病筛查、早期肿瘤标志物检测和低剂量药物检测。本综述总结了 FMT 的原理以及在免疫吸附、侧向流动分析检测、磁成像和磁性纳米粒子识别领域的最新进展。强调了 FMT 传感器在稳健、超灵敏生物传感方面的优势和局限性。最后,描述了该技术发展的未来要求和挑战。本综述为研究人员提供了进一步的见解,通过将 FMT 集成到生物传感和设备中,为分析传感和临床应用领域的广泛应用激发 FMT 的未来发展。