Rapid and Amplification-free Nucleic Acid Detection with DNA Substrate-Mediated Autocatalysis of CRISPR/Cas12a

清脆的 核酸 反式激活crRNA DNA 寡核苷酸 脱氧核酶 分子生物学 Cas9 计算生物学 生物 生物物理学 生物化学 基因
作者
Zhongqi Zhou,Cia‐Hin Lau,Jianchao Wang,Rui Guo,Sheng Tong,Jiaqi Li,Wenjiao Dong,Zhihao Huang,Tao Wang,Jimmy Xiangji Huang,Ziqing Yu,Chiju Wei,Gang Chen,Hongman Xue,Haibao Zhu
出处
期刊:ACS omega [American Chemical Society]
卷期号:9 (26): 28866-28878 被引量:2
标识
DOI:10.1021/acsomega.4c03413
摘要

To enable rapid and accurate point-of-care DNA detection, we have developed a single-step, amplification-free nucleic acid detection platform, a DNA substrate-mediated autocatalysis of CRISPR/Cas12a (DSAC). DSAC makes use of the trans-cleavage activity of Cas12a and target template-activated DNA substrate for dual signal amplifications. DSAC employs two distinct DNA substrate types: one that enhances signal amplification and the other that negatively modulates fluorescent signals. The positive inducer utilizes nicked- or loop-based DNA substrates to activate CRISPR/Cas12a, initiating trans-cleavage activity in a positive feedback loop, ultimately amplifying the fluorescent signals. The negative modulator, which involves competitor-based DNA substrates, competes with the probes for trans-cleaving, resulting in a signal decline in the presence of target DNA. These DNA substrate-based DSAC systems were adapted to fluorescence-based and paper-based lateral flow strip detection platforms. Our DSAC system accurately detected African swine fever virus (ASFV) in swine's blood samples at femtomolar sensitivity within 20 min. In contrast to the existing amplification-free CRISPR/Dx platforms, DSAC offers a cost-effective and straightforward detection method, requiring only the addition of a rationally designed DNA oligonucleotide. Notably, a common ASFV sequence-encoded DNA substrate can be directly applied to detect human nucleic acids through a dual crRNA targeting system. Consequently, our single-step DSAC system presents an alternative point-of-care diagnostic tool for the sensitive, accurate, and timely diagnosis of viral infections with potential applicability to human disease detection.
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