Inner Mongolia Key Laboratory of Carbon Nanomaterials, Nano Innovation Institute (NII), College of Chemistry and Materials Science, Inner Mongolia Minzu University, Tongliao, 028000, China; Key Laboratory of Mongolian Medicine Research and Development Engineering, Ministry of Education, Inner Mongolia Minzu University, Tongliao, 028000, China.
Inner Mongolia Key Laboratory of Carbon Nanomaterials, Nano Innovation Institute (NII), College of Chemistry and Materials Science, Inner Mongolia Minzu University, Tongliao, 028000, China.
Anal Chim Acta. 2024 Aug 1;1315:342804. doi: 10.1016/j.aca.2024.342804. Epub 2024 Jun 4.
Rapid on-site detection of infectious diseases is considerably essential for preventing and controlling major epidemics and maintaining social and public safety. However, the complexity of the natural environment in which infectious disease pathogens exist severely disrupts the performance of on-site detection, and rapid detection can become meaningless because of the cumbersome sample pretreatment process.
Herein, a new detection platform based on a carbon sphere@FeO micromotor (CS@FeO) in combination with a graphene field-effect transistor (GFET) was designed and used for the on-site detection of SARS-CoV-2 coronavirus pathogens. The CS@FeO micromotor, surface-modified with anti-SARS-CoV-2 coronavirus antibody, could move at a velocity of 79.4 μm/s in a solution containing hydrogen peroxide (HO) and exhibited capture rates of 67.9% and 36.2% for the SARS-CoV-2 pathogen in phosphate buffered saline (PBS) and soil solutions, respectively. After magnetic field separation, the captured micromotor was used for GFET detection, with detection limits of 4.6 and 15.6 ag/mL in PBS and soil solutions, respectively.
This detection platform can be employed to avoid complex sample pretreatment procedures and achieve rapid on-site detection of SARS-CoV-2 coronavirus pathogens in complex environments. This study introduces a novel approach for the on-site detection of infectious diseases.
快速现场检测传染病对于预防和控制重大疫情以及维护社会和公共安全至关重要。然而,传染病病原体存在的自然环境的复杂性严重干扰了现场检测的性能,并且由于繁琐的样品预处理过程,快速检测可能变得毫无意义。
本文设计了一种基于碳球@FeO 微马达 (CS@FeO) 与石墨烯场效应晶体管 (GFET) 结合的新型检测平台,用于现场检测 SARS-CoV-2 冠状病毒病原体。表面修饰有抗 SARS-CoV-2 冠状病毒抗体的 CS@FeO 微马达在含有过氧化氢 (HO) 的溶液中以 79.4 μm/s 的速度移动,在磷酸盐缓冲盐水 (PBS) 和土壤溶液中对 SARS-CoV-2 病原体的捕获率分别为 67.9%和 36.2%。经过磁场分离后,捕获的微马达用于 GFET 检测,在 PBS 和土壤溶液中的检测限分别为 4.6 和 15.6 ag/mL。
该检测平台可用于避免复杂的样品预处理程序,并实现复杂环境中 SARS-CoV-2 冠状病毒病原体的快速现场检测。本研究介绍了一种用于现场检测传染病的新方法。