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Updated: Feb 4, 2026

DNA Virus Detection System Based on RPA-CRISPR/Cas12a-SPM and Deep Learning
Published on: May 10, 2024
A new split DNA-based activation of CRISPR/Cas12a for amplification-free and dual-stimulus responsive detection and
Longjin Liang1, Bin Xu1, Shixiu Xiao1
1Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources (Ministry of Education of China), Guangxi Key Laboratory of Chemistry and Molecular Engineering of Medicinal Resources, University Engineering Research Center for Chemistry of Characteristic Medicinal Resources (Guangxi), School of Chemistry and Pharmaceutical Sciences, Guangxi Normal University, Guilin, 541004, China.
Abstract:
The CRISPR/Cas12a system is a genome editing technology that has been widely applied in biosensing and molecular diagnostics. However, the detection and regulation of its core components remain challenging. Therefore, we constructed a new split DNA-based activation method for the regulation of CRISPR/Cas12a, and based on that, an APE1-assisted activation CRISPR/Cas12a system for miRNA detection and a precise imaging method was also developed without amplification and complex design. Two split DNA were used as activators and embedded in two hairpins. When APE1 and miRNA-221 were simultaneously input, the DNA logic gate was started, thus releasing the determinant activation chain to activate the trans-shearing activity of the CRISPR/Cas12a system, so that the fluorescent probe signal can be significantly recovered. Different cleavage-activated chain hairpins were designed, and the influence on the trans-shear activity of CRISPR/Cas12a and the activation effect were discussed. And the method was successfully applied to detect the expression levels of miRNA-221 in cell lysates. The detection limit for miRNA-221 is 9.71 pmol/L (S/N = 3). At the same time, the method was applied for precise imaging of miRNA-221 within different cells and can effectively distinguish tumor cells. This study combines the regulation of the CRISPR/Cas system by split activators with the advantages of dual-responsive DNA logic circuits. The dual-response activation design effectively reduces false positive signals, thereby enhancing the detection and imaging accuracy. This method provides a novel design concept for utilizing split-DNA activation of the CRISPR/Cas system for nucleic acid detection and cell imaging.
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