清脆的
反式激活crRNA
计算生物学
药物发现
生物传感器
分析物
纳米技术
基因组编辑
计算机科学
生物
生物信息学
基因
材料科学
化学
遗传学
物理化学
作者
Jiahao Li,Lina Tang,Tingxian Li,Kun Li,Yulin Zhang,Wei Ni,Mengmeng Xiao,Youyun Zhao,Zhiyong Zhang,Guo‐Jun Zhang
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2022-09-08
卷期号:7 (9): 2680-2690
被引量:31
标识
DOI:10.1021/acssensors.2c01200
摘要
The path toward field-effect transistor (FET) application from laboratory to clinic has delivered a compelling push in the biomedical domain, yet ultrasensitive and timely pathogen identification without PCR remains a long-lasting challenge. Herein, we create a generic check station termed "CRISPR-FET", first incorporating the CRISPR/Cas13a system within the FET modality, for accelerated and unamplified detection of viral RNA. Unlike conventional FETs bearing target-specific receptors, this sensor holds three unique advancements: (i) an ingenious sensing mechanism is used, which converts the signal of a large-sized analyte into an on-chip cleavage response of an immobilized CRISPR reporter, enabling signal generation events to occur all within the Debye length; (ii) the multipurpose inspection of the CoV ORF1ab, CoV N gene, and HCV RNA unveils the potential for "one-for-all" scalable FET-based molecular diagnostics; and (iii) it is shown that Cas13a-crRNAs targeting different sites of the viral genome can be deployed in tandem to amplify the FET response, empowering the detection limit down to 1.56 aM, which is a world-record level of sensitivity in the FET for direct viral gene sensing. Notably, a brilliant clinical applicability was made in distinguishing HCV-infected patients from normal controls. Overall, this study sheds new insights into FET-based nucleic acid sensing technology and invokes a vision for its possible future roles in diagnosis of various viral diseases.
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