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Broad-spectrum CRISPR-Cas13d-mediated strategy for combating human coronaviruses
Zhenghao Yu1,2, Mouraya Hussein1,2, Yuanling Bao1,2
1Amsterdam UMC, University of Amsterdam, Medical Microbiology and Infection Prevention, Meibergdreef 9, Amsterdam, the Netherlands.
Abstract:
RNA viruses evolve rapidly, enabling them to evade host immunity and antiviral therapies and complicating durable diagnostics strategies. There is a pressing need for approaches that provide broad-spectrum viral suppression and detection. We designed four Cas13d crRNAs targeting a conserved 26-nucleotide sequence in coronavirus (CoV) nsp12. Their antiviral efficacy was evaluated in vitro against the target sequences of all seven human CoVs, showing potent activity across the tested samples. The same crRNAs were adapted for a Cas13d-based specific high-sensitivity enzymatic reporter unlocking (SHERLOCK) assay to detect multiple human CoVs, demonstrating high sensitivity, with the ability to detect as few as a single copy of SARS-CoV-2 RNA, while showing no detectable signal for other seasonal respiratory viruses, such as influenza. This dual-function approach underlines the versatility and potential of CRISPR technologies in both managing and detecting viral infections. Additionally, bioinformatic analysis revealed that the crRNA targets are highly conserved across animal coronaviruses, suggesting that targeting of this sequence could facilitate the rapid development of treatment options and diagnostics during a new pandemic of an emerging coronavirus. This could significantly aid in pandemic preparedness and response efforts.
Insights
CRISPR technology offers a dual approach for managing and detecting RNA viruses like coronaviruses (CoVs). This method targets conserved sequences for broad-spectrum antiviral activity and sensitive diagnostic detection, aiding pandemic preparedness.
Area of Science:
- Molecular Biology
- Virology
- Biotechnology
Background:
- RNA viruses, including coronaviruses (CoVs), exhibit rapid evolution, leading to immune evasion and challenges in developing effective antiviral therapies and diagnostics.
- There is a critical need for innovative strategies that offer broad-spectrum viral suppression and detection capabilities.
Purpose of the Study:
- To design and evaluate CRISPR-Cas13d-based RNA-guided enzymes for simultaneous antiviral activity and sensitive detection of human coronaviruses.
- To assess the conserved nature of the target sequence across animal coronaviruses for pandemic preparedness.
Main Methods:
- Development of four Cas13d CRISPR guide RNAs (crRNAs) targeting a conserved sequence in the nsp12 gene of coronaviruses.
- In vitro evaluation of antiviral efficacy against all seven human CoVs.
- Adaptation of crRNAs for a Cas13d-based SHERLOCK (specific high-sensitivity enzymatic reporter unlocking) assay for viral detection.
- Bioinformatic analysis to determine the conservation of target sequences across animal coronaviruses.
Main Results:
- The designed crRNAs demonstrated potent in vitro antiviral activity against all tested human CoVs.
- The Cas13d-based SHERLOCK assay exhibited high sensitivity, detecting as few as one copy of SARS-CoV-2 RNA.
- The assay showed specificity, with no detectable signal for other respiratory viruses like influenza.
- Bioinformatic analysis confirmed high conservation of the target sequence in animal coronaviruses.
Conclusions:
- CRISPR-Cas13d technology presents a versatile dual-function platform for both suppressing and detecting a wide range of coronaviruses.
- The conserved nature of the targeted sequence offers a promising strategy for rapid development of diagnostics and therapeutics against emerging coronaviruses, enhancing pandemic preparedness.
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