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Updated: Sep 21, 2025

DNA Virus Detection System Based on RPA-CRISPR/Cas12a-SPM and Deep Learning
Published on: May 10, 2024
Ultrasensitive, Specific, and Rapid Detection of Mycoplasma pneumoniae Using the ERA/CRISPR-Cas12a Dual System
Zhongliang Deng1,2,3, Haiyang Hu2,3, Dan Tang2
1The Affiliated Nanhua Hospital, Department of Clinical Laboratory, Hengyang Medical School, University of South China, Hengyang, China.
Abstract:
Mycoplasma pneumoniae can cause severe respiratory tract infections and extrapulmonary diseases, which pose a significant threat to the health of children. Diagnostic methods for M. pneumoniae include isolation and culture, antibody detection, fluorescence quantitative PCR, and so on, but there are various shortcomings in time, cost, convenience, and sensitivity. In this study, we developed a rapid, sensitive, specific, and economical method for the detection of M. pneumoniae, termed the ERA/CRISPR-Cas12a dual system. The system used the high specificity and collateral cleavage activity of the LbCas12a protein, combined with enzymatic recombination amplification (ERA) technology with strong amplification ability, allowing the results to be observed by a portable fluorometer or visualized by the naked eye with a dipstick, which could be obtained in approximately 30 min. The ERA/CRISPR-Cas12a fluorescence and dipstick system were able to detect M. pneumoniae at titers as low as 1 and 100 copies/μL, respectively. The specificity of the two interpretation methods was 100%, and no cross-reaction with other pathogens was observed. In the evaluation of 92 clinical samples, the positive predictive agreements of the ERA/CRISPR-Cas12a fluorescence and dipstick systems with qPCR detection were 100% and 92.86%, respectively. The negative predictive agreements of both methods were 100%. In conclusion, this study established a portable, rapid, low-cost, ultrasensitive, and specific method for the early and rapid diagnosis of M. pneumoniae to meet the needs of on-site rapid detection in primary health institutions.
Insights
A new dual system using enzymatic recombination amplification (ERA) and CRISPR-Cas12a offers rapid, sensitive, and specific detection of Mycoplasma pneumoniae. This portable diagnostic method provides results in about 30 minutes, improving early detection of respiratory infections in children.
Area of Science:
- Molecular Biology
- Infectious Diseases
- Diagnostics
Background:
- Mycoplasma pneumoniae causes severe respiratory and extrapulmonary diseases in children.
- Current diagnostic methods for M. pneumoniae have limitations in time, cost, convenience, and sensitivity.
Purpose of the Study:
- To develop a rapid, sensitive, specific, and economical method for M. pneumoniae detection.
- To address the shortcomings of existing diagnostic approaches for M. pneumoniae.
Main Methods:
- Development of the ERA/CRISPR-Cas12a dual system utilizing LbCas12a protein and enzymatic recombination amplification (ERA) technology.
- Detection of M. pneumoniae using a portable fluorometer or a visual dipstick, with results available in approximately 30 minutes.
Main Results:
- The ERA/CRISPR-Cas12a system demonstrated high sensitivity, detecting M. pneumoniae at titers as low as 1 copy/μL (fluorescence) and 100 copies/μL (dipstick).
- Both fluorescence and dipstick methods showed 100% specificity, with no cross-reactivity observed.
- Evaluation of 92 clinical samples showed high positive and 100% negative predictive agreements with qPCR.
Conclusions:
- The study successfully established a portable, rapid, low-cost, ultrasensitive, and specific diagnostic method for M. pneumoniae.
- This new method meets the needs for on-site, rapid diagnosis in primary health institutions, facilitating early detection of M. pneumoniae infections.
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