A one-pot self-primer isothermal exponential amplification reaction (SP-EXPAR) combined with a CRISPR/Cas14a assay was developed for detecting KRAS G12C and G12D and demonstrated 100% sensitivity and 100% specificity compared with DNA sequencing.
Abstract
The highly specific and versatile detection of KRAS mutations in circulating tumor DNA (ctDNA) from plasma has critical clinical implications for non-small-cell-lung cancer (NSCLC). However, conventional isothermal amplification methods suffer from poor single-base discrimination, while CRISPR-12a-based detection is highly protospacer adjacent motif (PAM)-dependent. To address these challenges, a one-pot self-primer isothermal exponential amplification reaction (SP-EXPAR) combined with a CRISPR/Cas14a assay was developed for detecting KRAS G12C and G12D. Two synergistic strategies were devised to ensure high specificity: first, a carefully designed hairpin probe that permits selective amplification of mutant over wild-type sequences through differential binding affinity; second, optimization of the Cas14a sgRNA seed region, with the mutation positioned at the 11th nucleotide for stringent target recognition. The assay is further distinguished by a physical separation design, in which the Cas14a reagents are pre-loaded into the tube cap and mixed with the amplification products only after SP-EXPAR completion. This assay enables KRAS G12C detection within 1 h, with a limit of detection of 81.9 aM (0.1% mutation percentage) and a dynamic range from 100 aM to 1 nM. Furthermore, this assay further demonstrates its programmability and was successfully applied to detect KRAS G12D with comparable performance. In detecting 42 clinical samples, this assay demonstrated 100% sensitivity and 100% specificity compared with DNA sequencing. This approach holds great potential in disease diagnosis.
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Examination of the predicted secondary structure of the tracrRNA–crRNA duplex suggests that the features required for Cas9-catalyzed DNA cleavage at specific sites can be captured within a single chimeric RNA.
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Examination of the predicted secondary structure of the tracrRNA–crRNA duplex suggests that the features required for Cas9-catalyzed DNA cleavage at specific sites can be captured within a single chimeric RNA.
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Examination of the predicted secondary structure of the tracrRNA–crRNA duplex suggests that the features required for Cas9-catalyzed DNA cleavage at specific sites can be captured within a single chimeric RNA.
A. Udristioiu, Manole Cojocaru· Clinical Cancer Research· 0 citations
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