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Updated: May 8, 2026

Isolation of Fidelity Variants of RNA Viruses and Characterization of Virus Mutation Frequency
Published on: June 16, 2011
Coronaviruses lacking exoribonuclease activity are susceptible to lethal mutagenesis: evidence for proofreading and
Everett Clinton Smith1, Hervé Blanc, Matthew C Surdel
1Department of Pediatrics, Vanderbilt University Medical Center, Nashville, Tennessee, USA.
Abstract:
No therapeutics or vaccines currently exist for human coronaviruses (HCoVs). The Severe Acute Respiratory Syndrome-associated coronavirus (SARS-CoV) epidemic in 2002-2003, and the recent emergence of Middle East Respiratory Syndrome coronavirus (MERS-CoV) in April 2012, emphasize the high probability of future zoonotic HCoV emergence causing severe and lethal human disease. Additionally, the resistance of SARS-CoV to ribavirin (RBV) demonstrates the need to define new targets for inhibition of CoV replication. CoVs express a 3'-to-5' exoribonuclease in nonstructural protein 14 (nsp14-ExoN) that is required for high-fidelity replication and is conserved across the CoV family. All genetic and biochemical data support the hypothesis that nsp14-ExoN has an RNA proofreading function. Thus, we hypothesized that ExoN is responsible for CoV resistance to RNA mutagens. We demonstrate that while wild-type (ExoN+) CoVs were resistant to RBV and 5-fluorouracil (5-FU), CoVs lacking ExoN activity (ExoN-) were up to 300-fold more sensitive. While the primary antiviral activity of RBV against CoVs was not mutagenesis, ExoN- CoVs treated with 5-FU demonstrated both enhanced sensitivity during multi-cycle replication, as well as decreased specific infectivity, consistent with 5-FU functioning as a mutagen. Comparison of full-genome next-generation sequencing of 5-FU treated SARS-CoV populations revealed a 16-fold increase in the number of mutations within the ExoN- population as compared to ExoN+. Ninety percent of these mutations represented A:G and U:C transitions, consistent with 5-FU incorporation during RNA synthesis. Together our results constitute direct evidence that CoV ExoN activity provides a critical proofreading function during virus replication. Furthermore, these studies identify ExoN as the first viral protein distinct from the RdRp that determines the sensitivity of RNA viruses to mutagens. Finally, our results show the importance of ExoN as a target for inhibition, and suggest that small-molecule inhibitors of ExoN activity could be potential pan-CoV therapeutics in combination with RBV or RNA mutagens.
Insights
Coronaviruses (CoVs) resist antiviral drugs due to their proofreading enzyme, nsp14-ExoN. Inhibiting this exoribonuclease (ExoN) makes CoVs sensitive to mutagens like 5-FU, suggesting ExoN inhibitors as potential pan-coronavirus therapeutics.
Area of Science:
- Virology
- Molecular Biology
- Drug Discovery
Background:
- Human coronaviruses (HCoVs) pose significant public health threats with no existing therapeutics or vaccines.
- Emerging coronaviruses like SARS-CoV and MERS-CoV highlight the need for novel antiviral strategies.
- The resistance of SARS-CoV to ribavirin (RBV) necessitates identifying new targets for inhibiting coronavirus replication.
Purpose of the Study:
- To investigate the role of the 3'-to-5' exoribonuclease (nsp14-ExoN) in coronavirus replication fidelity and drug resistance.
- To determine if ExoN activity confers resistance to RNA mutagens.
- To evaluate ExoN as a potential therapeutic target for pan-coronavirus treatment.
Main Methods:
- Generated and compared wild-type (ExoN+) and ExoN-deficient (ExoN-) coronaviruses.
- Assessed viral sensitivity to ribavirin (RBV) and 5-fluorouracil (5-FU).
- Performed full-genome next-generation sequencing to analyze mutation rates and types in response to 5-FU treatment.
Main Results:
- ExoN-deficient coronaviruses were up to 300-fold more sensitive to RBV and 5-FU compared to wild-type viruses.
- Treatment with 5-FU resulted in enhanced sensitivity and decreased specific infectivity in ExoN- coronaviruses, consistent with mutagenic activity.
- Next-generation sequencing revealed a 16-fold increase in mutations in ExoN- SARS-CoV populations treated with 5-FU, primarily A:G and U:C transitions.
Conclusions:
- Coronavirus nsp14-ExoN possesses a critical RNA proofreading function essential for replication fidelity.
- ExoN activity determines the sensitivity of coronaviruses to RNA mutagens, independent of the RNA-dependent RNA polymerase (RdRp).
- Inhibitors targeting ExoN activity, potentially in combination with RBV or RNA mutagens, represent a promising strategy for developing pan-coronavirus therapeutics.
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