Wang Chen, Wang Ziqian, Gao Ming, Zhu Yihan, Zhu Honghai, Zhou Lizhuo, Zhou Yujie, Tian Xilin, Liu Yi, Zhang Yule, Sun Shuo, Meng Changle, Hong Xiangqian, Wang Yun, Yang Mingmin, Fan Ning, Huang Hao, Chen Zhi, Ge Yanqi, Li Jianqing, Jiang Ke, Zhang Han, Qiu Meng, Wang Huide
State Key Laboratory of Radio Frequency Heterogeneous Integration, International Collaborative Laboratory of 2D Materials for Optoelectronics Science and Technology, Institute for Advanced Study in Nuclear Energy and Safety, Interdisciplinary Center of High Magnetic Field Physics of Shenzhen University, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen518060, China.
Key Laboratory of Marine Chemistry Theory and Technology (Ministry of Education), College of Chemistry and Chemical Engineering, Ocean University of China, Qingdao266100, China.
ACS Appl Mater Interfaces. 2025 May 14;17(19):28585-28596. doi: 10.1021/acsami.5c03827. Epub 2025 May 1.
MicroRNAs (miRNAs) are important noncoding RNA molecules that participate in gene regulation and are widely associated with the occurrence and development of various cancers. Developing rapid, highly sensitive, low-cost, and highly stable miRNA detection methods is of great significance for clinical diagnosis. Field-effect transistors (FETs) based on two-dimensional (2D) materials have been proven to have great potential in the field of miRNA detection due to their label-free, rapid, highly sensitive, low-power, and portable features. However, biosensors based on 2D material FETs require the application of an external gate voltage in solution, which seriously hinders the integration, miniaturization, and signal stability of the devices. This study proposes a graphene-molybdenum disulfide heterojunction (G/MoS) FET biosensing platform to detect miRNA-21 and miRNA-155 without the need for an external gate voltage. The results demonstrate a detection time of approximately 30 min, a linear response range spanning from 10 fM to 10 nM, and limits of detection of 6.06 fM for miRNA-21 and 2.59 fM for miRNA-155. Through comparative experiments, the biosensor shows excellent selectivity and can distinguish target miRNAs from nontarget miRNAs. The G/MoS FET biosensor developed in this study provides a technical platform for miRNA detection and has a broad application prospect, especially in the early diagnosis of diseases and the screening of biomarkers.
微小RNA(miRNA)是参与基因调控的重要非编码RNA分子,与各种癌症的发生和发展广泛相关。开发快速、高灵敏度、低成本且高度稳定的miRNA检测方法对临床诊断具有重要意义。基于二维(2D)材料的场效应晶体管(FET)因其无标记、快速、高灵敏度、低功耗和便携等特点,已被证明在miRNA检测领域具有巨大潜力。然而,基于二维材料FET的生物传感器需要在溶液中施加外部栅极电压,这严重阻碍了器件的集成、小型化和信号稳定性。本研究提出了一种石墨烯-二硫化钼异质结(G/MoS)FET生物传感平台,用于检测miRNA-21和miRNA-155,无需外部栅极电压。结果表明,检测时间约为30分钟,线性响应范围为10 fM至10 nM,miRNA-21的检测限为6.06 fM,miRNA-155的检测限为2.59 fM。通过对比实验,该生物传感器显示出优异的选择性,能够区分目标miRNA和非目标miRNA。本研究开发的G/MoS FET生物传感器为miRNA检测提供了一个技术平台,具有广阔的应用前景,特别是在疾病的早期诊断和生物标志物的筛选方面。