Key Laboratory of Optoelectronic Technology and System of the Education Ministry of China, Chongqing University, Chongqing 400044, China.
Department of Electrical Engineering and Computer Science, The University of Tennessee, Knoxville, TN 37996, USA.
Sensors (Basel). 2021 Jun 9;21(12):3985. doi: 10.3390/s21123985.
A sensitive and efficient method for microRNAs (miRNAs) detection is strongly desired by clinicians and, in recent years, the search for such a method has drawn much attention. There has been significant interest in using miRNA as biomarkers for multiple diseases and conditions in clinical diagnostics. Presently, most miRNA detection methods suffer from drawbacks, e.g., low sensitivity, long assay time, expensive equipment, trained personnel, or unsuitability for point-of-care. New methodologies are needed to overcome these limitations to allow rapid, sensitive, low-cost, easy-to-use, and portable methods for miRNA detection at the point of care. In this work, to overcome these shortcomings, we integrated capacitive sensing and alternating current electrokinetic effects to detect specific miRNA-16b molecules, as a model, with the limit of detection reaching 1.0 femto molar (fM) levels. The specificity of the sensor was verified by testing miRNA-25, which has the same length as miRNA-16b. The sensor we developed demonstrated significant improvements in sensitivity, response time and cost over other miRNA detection methods, and has application potential at point-of-care.
临床医生强烈希望有一种灵敏且高效的 microRNAs (miRNAs) 检测方法,近年来,人们对这种方法的研究引起了广泛关注。miRNA 作为多种疾病和病症的生物标志物,在临床诊断中具有重要意义。目前,大多数 miRNA 检测方法存在一些缺陷,例如灵敏度低、检测时间长、设备昂贵、需要专业人员操作或不适合即时检测。需要新的方法学来克服这些限制,以实现即时检测中 miRNA 检测的快速、灵敏、低成本、易于使用和便携。在这项工作中,为了克服这些缺点,我们将电容式传感和交流电动效应集成起来,以检测特定的 miRNA-16b 分子作为模型,检测限达到 1.0 飞摩尔 (fM) 水平。通过测试与 miRNA-16b 长度相同的 miRNA-25,验证了传感器的特异性。与其他 miRNA 检测方法相比,我们开发的传感器在灵敏度、响应时间和成本方面有了显著的提高,在即时检测方面具有应用潜力。