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Ultrasensitive electrochemical detection of parvovirus B19 DNA by combining CRISPR-Cas12a and multivalent framework
Jicong Hao1, Xueyan Gong1, Xueyuan Duan1,2
1Key Laboratory of Microbiological Metrology, Measurement & Bioproduct Quality Security, State Administration for Market Regulation, College of Life Science, China Jiliang University, Hangzhou, 310018, China. wwqinsinap@163.com.
Insights
A new electrochemical biosensor combines CRISPR-Cas12a with DNA nanostructures for rapid and ultrasensitive detection of parvovirus B19 DNA. This diagnostic tool aids in timely interventions for high-risk patients and controlling viral spread.
Area of Science:
- Biotechnology
- Molecular Diagnostics
- Nanotechnology
Background:
- Parvovirus B19 (B19V) poses significant health risks, especially to pregnant women and immunocompromised individuals.
- Current diagnostic methods lack the sensitivity and speed required for timely intervention.
- There is an urgent need for accessible in vitro diagnostics for B19V.
Purpose of the Study:
- To develop a proof-of-concept electrochemical biosensor for the ultrasensitive detection of B19V DNA.
- To integrate CRISPR-Cas12a technology with multivalent framework nucleic acids (FNAs) for enhanced detection.
- To establish a foundational platform for sensitive nucleic acid detection.
Main Methods:
- Development of an electrochemical biosensor utilizing CRISPR-Cas12a and 12 nm tetrahedral DNA nanostructures (TDNs).
- Target B19V DNA activates Cas12a, leading to cleavage of ssDNA probes on TDNs.
- TDNs precisely orient probes on electrodes, minimizing nonspecific adsorption and enhancing signal.
Main Results:
- The biosensor achieved a low detection limit of 2.19 fM.
- Demonstrated high selectivity for B19V DNA detection.
- Observed signal amplification attributed to the synergistic effect between Cas12a and TDNs.
Conclusions:
- The developed CRISPR-Cas12a and FNA-integrated biosensor offers a user-friendly, amplification-free, and reliable method for B19V detection.
- This platform shows significant potential for ultrasensitive nucleic acid detection.
- The approach holds promise for future point-of-care diagnostics and broader applications.
Abstract:
The rapid and ultrasensitive detection of parvovirus B19 (B19V) DNA is critical for preventing severe complications in high-risk populations, such as fetal hydrops in pregnant women and aplastic crisis in immunocompromised patients. The absence of clinically approved vaccines or antivirals against B19V thus mandates the urgent development of accessible in vitro diagnostics to enable time-critical interventions and contain community transmission. Herein, we developed an electrochemical biosensor as a proof-of-concept for B19V by integrating CRISPR-Cas12a with multivalent framework nucleic acids (FNAs), namely, 12 nm tetrahedral DNA nanostructures (TDNs). Target B19V DNA activates Cas12a to indiscriminately cleave the biotin-modified ssDNA protruding from the four vertices of the TDNs, while the TDNs precisely orient ssDNA probes on electrodes, minimizing nonspecific adsorption. This method takes advantage of the target-specific cleavage ability of CRISPR-Cas12a (Cas12a-crRNA complex, 10-12 nm) and the unique structural and functional features of 12 nm TDNs. The comparable dimensions of the Cas12a-crRNA complex and the TDN suggest a potential synergistic effect, which contributes to the observed signal amplification and high detection sensitivity. The developed platform is user-friendly, has a low detection limit (2.19 fM), and shows high selectivity. This work establishes a foundational biosensing platform, demonstrating potential for ultrasensitive nucleic acid detection. By combining the accuracy of CRISPR-Cas12a and the benefits of FNAs, this method provides a more efficient, amplification-free, and reliable approach that holds promise for future development in point-of-care diagnostics and other applications.
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