One-pot CRISPR-Cas12 assay achieves 1 copy/μL sensitivity with closed-tube lateral flow readout
Investigators report a kinetically tuned one-pot CRISPR-Cas12 diagnostic platform that uses targeted crRNA scaffold mutations to balance amplification and cleavage rates. By delaying Cas12a activity until sufficient amplicons accumulate, the method achieves a limit of detection of 1 copy/μL for SARS-CoV-2 and influenza A within 15 minutes. Clinical testing on patient samples demonstrated 100% sensitivity and specificity, while integration with an instrument-free lateral flow strip and a low-cost microfluidic device enables a fully closed-tube workflow. This approach eliminates aerosol contamination risks and offers a scalable, field-deployable solution for rapid pathogen screening in resource-constrained settings.
The original study
Harmonizing amplification and cleavage kinetics through crRNA scaffold mutation enables robust one-pot CRISPR-Cas12 diagnostics.
- Authors
- Jiang Q, Xu R, Lin Z, Sun C, Ye F, Ye Y, et al.
- Journal
- Proceedings of the National Academy of Sciences of the United States of America
- Type
- Journal Article
- PMID
- 42715083
Original abstract
CRISPR-based diagnostics (CRISPR-Dx) integrated with isothermal nucleic acid amplification have emerged as a promising strategy for point-of-care molecular testing. Their practical deployment, however, remains constrained by workflow-related limitations. Conventional two-step formats are laborious and highly susceptible to aerosol contamination during amplicon transfer, whereas simplified one-pot formats often suffer from reduced sensitivity because amplification and CRISPR-mediated cleavage compete kinetically within the same reaction vessel. In this work, we present a broadly applicable one-pot detection strategy termed mutant scaffold-mediated RPA-CRISPR/Cas12a (MS-CRISPR). This approach introduces rationally designed point mutations into the crRNA scaffold to moderately attenuate Cas12a activation and cleavage kinetics. Such kinetic tuning prevents the enzyme from prematurely depleting nascent RPA amplicons, a common source of signal loss in wild-type systems. By delaying cleavage until sufficient amplification products have accumulated, MS-CRISPR markedly enhances endpoint signal output. Using this kinetically balanced system, we achieved a limit of detection of 1 copy/μL for both SARS-CoV-2 and influenza A virus within 15 min, while preserving a fully closed-tube workflow that minimizes aerosol contamination and simplifies operation. We coupled the assay with an instrument-free lateral-flow readout and an ultraportable, multiplex, low-cost microfluidic platform (portable wireless isothermal nucleic acid detection). Clinical validation with patient samples showed 100% sensitivity and specificity for both viral targets. Collectively, MS-CRISPR establishes a sensitive, versatile, and field-deployable platform for rapid pathogen screening.