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A Fluorogenic Peptide Cleavage Assay to Screen for Proteolytic Activity: Applications for coronavirus spike protein activation
Published on: January 9, 2019
Thiopurines inhibit coronavirus Spike protein processing and incorporation into progeny virions
Eric S Pringle1, Brett A Duguay1, Maxwell P Bui-Marinos2,3
1Department of Microbiology & Immunology, Dalhousie University, Halifax, Canada.
Abstract:
There is an outstanding need for broadly acting antiviral drugs to combat emerging viral diseases. Here, we report that thiopurines inhibit the replication of the betacoronaviruses HCoV-OC43 and SARS-CoV-2. 6-Thioguanine (6-TG) disrupted early stages of infection, limiting accumulation of full-length viral genomes, subgenomic RNAs and structural proteins. In ectopic expression models, we observed that 6-TG increased the electrophoretic mobility of Spike from diverse betacoronaviruses, matching the effects of enzymatic removal of N-linked oligosaccharides from Spike in vitro. SARS-CoV-2 virus-like particles (VLPs) harvested from 6-TG-treated cells were deficient in Spike. 6-TG treatment had a similar effect on production of lentiviruses pseudotyped with SARS-CoV-2 Spike, yielding pseudoviruses deficient in Spike and unable to infect ACE2-expressing cells. Together, these findings from complementary ectopic expression and infection models strongly indicate that defective Spike trafficking and processing is an outcome of 6-TG treatment. Using biochemical and genetic approaches we demonstrated that 6-TG is a pro-drug that must be converted to the nucleotide form by hypoxanthine phosphoribosyltransferase 1 (HPRT1) to achieve antiviral activity. This nucleotide form has been shown to inhibit small GTPases Rac1, RhoA, and CDC42; however, we observed that selective chemical inhibitors of these GTPases had no effect on Spike processing or accumulation. By contrast, the broad GTPase agonist ML099 countered the effects of 6-TG, suggesting that the antiviral activity of 6-TG requires the targeting of an unknown GTPase. Overall, these findings suggest that small GTPases are promising targets for host-targeted antivirals.
Insights
Thiopurines, like 6-thioguanine (6-TG), inhibit betacoronavirus replication by disrupting Spike protein processing and trafficking. This host-targeted approach shows promise for developing broad-spectrum antivirals against emerging viral threats.
Area of Science:
- Virology
- Drug Discovery
- Molecular Biology
Background:
- Emerging viral diseases necessitate broad-acting antiviral therapies.
- Betacoronaviruses, including SARS-CoV-2, pose significant global health threats.
- Host-targeted antivirals offer a strategy to overcome viral resistance.
Purpose of the Study:
- To investigate the antiviral activity of thiopurines against betacoronaviruses.
- To elucidate the mechanism of action of 6-thioguanine (6-TG) in inhibiting viral replication.
- To identify host targets for novel antiviral drug development.
Main Methods:
- In vitro replication assays with HCoV-OC43 and SARS-CoV-2.
- Ectopic expression models to study Spike protein processing.
- Biochemical and genetic approaches to identify drug targets.
- Analysis of viral genome and protein accumulation.
Main Results:
- 6-Thioguanine (6-TG) inhibited replication of HCoV-OC43 and SARS-CoV-2.
- 6-TG treatment disrupted early infection stages, reducing viral RNA and protein.
- 6-TG impaired Spike protein processing and trafficking, leading to deficient virus-like particles and pseudoviruses.
- Antiviral activity of 6-TG depends on its conversion to a nucleotide form by HPRT1.
- 6-TG's mechanism involves targeting an unknown small GTPase, distinct from Rac1, RhoA, and CDC42.
Conclusions:
- 6-Thioguanine (6-TG) exhibits broad-spectrum antiviral activity against betacoronaviruses.
- Defective Spike protein trafficking and processing is a key mechanism of 6-TG's action.
- Small GTPases represent promising targets for host-directed antiviral therapies.
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