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Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
Interfering with nucleotide excision by the coronavirus 3'-to-5' exoribonuclease
Rukesh Chinthapatla1, Mohamad Sotoudegan1, Pankaj Srivastava1
1Department of Microbiology and Immunology, The University of North Carolina at Chapel Hill School of Medicine, Chapel Hill, NC 27599, USA.
Abstract:
Some of the most efficacious antiviral therapeutics are ribonucleos(t)ide analogs. The presence of a 3'-to-5' proofreading exoribonuclease (ExoN) in coronaviruses diminishes the potency of many ribonucleotide analogs. The ability to interfere with ExoN activity will create new possibilities for control of SARS-CoV-2 infection. ExoN is formed by a 1:1 complex of nsp14 and nsp10 proteins. We have purified and characterized ExoN using a robust, quantitative system that reveals determinants of specificity and efficiency of hydrolysis. Double-stranded RNA is preferred over single-stranded RNA. Nucleotide excision is distributive, with only one or two nucleotides hydrolyzed in a single binding event. The composition of the terminal basepair modulates excision. A stalled SARS-CoV-2 replicase in complex with either correctly or incorrectly terminated products prevents excision, suggesting that a mispaired end is insufficient to displace the replicase. Finally, we have discovered several modifications to the 3'-RNA terminus that interfere with or block ExoN-catalyzed excision. While a 3'-OH facilitates hydrolysis of a nucleotide with a normal ribose configuration, this substituent is not required for a nucleotide with a planar ribose configuration such as that present in the antiviral nucleotide produced by viperin. Design of ExoN-resistant, antiviral ribonucleotides should be feasible.
Insights
Coronaviruses use a proofreading exoribonuclease (ExoN) to reduce antiviral drug effectiveness. Researchers found ways to block ExoN, potentially leading to new SARS-CoV-2 treatments.
Area of Science:
- Virology
- Molecular Biology
- Drug Discovery
Background:
- Ribonucleoside analogs are effective antivirals.
- Coronaviruses possess a 3'-to-5' proofreading exoribonuclease (ExoN) that limits analog efficacy.
- Interfering with ExoN offers a strategy to enhance antiviral therapies against SARS-CoV-2.
Purpose of the Study:
- To characterize the SARS-CoV-2 exoribonuclease (ExoN) and identify its functional determinants.
- To discover modifications that can block ExoN activity for improved antiviral drug design.
Main Methods:
- Purification and quantitative characterization of the ExoN complex (nsp14-nsp10).
- Assays to determine substrate preference (ssRNA vs. dsRNA) and excision mechanism.
- Analysis of stalled replicase complexes and 3'-RNA terminus modifications.
Main Results:
- ExoN prefers double-stranded RNA and performs distributive nucleotide excision.
- Terminal basepair composition and stalled replicase influence excision.
- Specific 3'-RNA terminus modifications were identified that inhibit ExoN activity.
Conclusions:
- ExoN activity is modulated by RNA structure and replicase interaction.
- 3'-RNA modifications can block ExoN, enabling the design of potent antiviral ribonucleotides.
- This research paves the way for developing novel ExoN-resistant antiviral drugs.
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