SDS-CRISPR for Single-Nucleotide Variant Detection
Xin Guan1,2, Chong Guo1,2, Jiongyu Zhang1
1Department of Biomedical Engineering, University of Connecticut Health Center, Farmington, Connecticut, USA.
Structure-Disruption-Sensitive CRISPR (SDS-CRISPR) enhances precision in detecting single-nucleotide variants, overcoming limitations of standard CRISPR-Cas12a systems for sensitive molecular diagnostics.
Area of Science:
- Molecular Biology
- Genomics
- Biotechnology
Background:
- CRISPR-Cas12a is a powerful tool for nucleic acid diagnostics but struggles with single-nucleotide variant (SNV) detection due to mismatch tolerance.
- Accurate SNV detection is crucial for applications like cancer variant identification and infectious disease diagnostics.
Purpose of the Study:
- To develop a highly precise CRISPR-Cas12a-based system for allele discrimination and SNV detection.
- To elucidate the structural mechanisms underlying SNV discrimination in the novel system.
- To enable rapid, on-site molecular diagnostics for clinical applications.
Main Methods:
- Development of Structure-Disruption-Sensitive CRISPR (SDS-CRISPR) utilizing AlphaFold3 modeling and bioinformatic analysis.
- Structural and ionic modulation of Cas12a to enhance SNV discrimination.
- Application of SDS-CRISPR for detecting IDH1 alleles in glioma samples and HIV-1 drug-resistance mutations.
- Integration with lateral-flow strips and AI-assisted smartphone readers for point-of-care testing.
Main Results:
- SDS-CRISPR achieved attomole sensitivity and detected variants at 0.01% frequency for IDH1 alleles.
- On-site detection was achieved within 20 minutes using the integrated system.
- Clinical validation with glioma tissues showed high concordance with immunohistochemistry.
- Plasma cfDNA analysis demonstrated mutation fractions consistent with next-generation sequencing.
- SDS-CRISPR successfully discriminated microRNA isoforms and identified HIV-1 drug-resistance mutations.
Conclusions:
- SDS-CRISPR provides a mechanistically informed and highly precise method for allele discrimination.
- The system offers a universal framework for sensitive molecular diagnostics, applicable to various targets including SNVs, microRNAs, and infectious agents.
- SDS-CRISPR holds significant potential for clinical applications, including intraoperative diagnostics and precision medicine.
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