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Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase

ALS-8112 is the parent molecule of ALS-8176, a first-in-class nucleoside analog prodrug effective in the clinic against respiratory syncytial virus (RSV) infection. The antiviral activity of ALS-8112 is mediated by its 5'-triphosphate metabolite (ALS-8112-TP, or 2'F-4'ClCH(2)-cytidine...

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Autores principales: Deval, Jerome, Fung, Amy, Stevens, Sarah K., Jordan, Paul C., Gromova, Tatiana, Taylor, Joshua S., Hong, Jin, Meng, Jia, Wang, Guangyi, Dyatkina, Natalia, Prhavc, Marija, Symons, Julian A., Beigelman, Leo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4862670/
https://www.ncbi.nlm.nih.gov/pubmed/27163448
http://dx.doi.org/10.1371/journal.pone.0154097
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author Deval, Jerome
Fung, Amy
Stevens, Sarah K.
Jordan, Paul C.
Gromova, Tatiana
Taylor, Joshua S.
Hong, Jin
Meng, Jia
Wang, Guangyi
Dyatkina, Natalia
Prhavc, Marija
Symons, Julian A.
Beigelman, Leo
author_facet Deval, Jerome
Fung, Amy
Stevens, Sarah K.
Jordan, Paul C.
Gromova, Tatiana
Taylor, Joshua S.
Hong, Jin
Meng, Jia
Wang, Guangyi
Dyatkina, Natalia
Prhavc, Marija
Symons, Julian A.
Beigelman, Leo
author_sort Deval, Jerome
collection PubMed
description ALS-8112 is the parent molecule of ALS-8176, a first-in-class nucleoside analog prodrug effective in the clinic against respiratory syncytial virus (RSV) infection. The antiviral activity of ALS-8112 is mediated by its 5'-triphosphate metabolite (ALS-8112-TP, or 2'F-4'ClCH(2)-cytidine triphosphate) inhibiting the RNA polymerase activity of the RSV L-P protein complex through RNA chain termination. Four amino acid mutations in the RNA-dependent RNA polymerase (RdRp) domain of L (QUAD: M628L, A789V, L795I, and I796V) confer in vitro resistance to ALS-8112-TP by increasing its discrimination relative to natural CTP. In this study, we show that the QUAD mutations specifically recognize the ClCH(2) group of ALS-8112-TP. Among the four mutations, A789V conferred the greatest resistance phenotype, which was consistent with its putative position in the active site of the RdRp domain. AZ-27, a non-nucleoside inhibitor of RSV, also inhibited the RdRp activity, with decreased inhibition potency in the presence of the Y1631H mutation. The QUAD mutations had no effect on the antiviral activity of AZ-27, and the Y1631H mutation did not significantly increase the discrimination of ALS-8112-TP. Combining ALS-8112 with AZ-27 in vitro resulted in significant synergistic inhibition of RSV replication. Overall, this is the first mechanistic study showing a lack of cross-resistance between mutations selected by different classes of RSV polymerase inhibitors acting in synergy, opening the door to future potential combination therapies targeting different regions of the L protein.
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spelling pubmed-48626702016-05-18 Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase Deval, Jerome Fung, Amy Stevens, Sarah K. Jordan, Paul C. Gromova, Tatiana Taylor, Joshua S. Hong, Jin Meng, Jia Wang, Guangyi Dyatkina, Natalia Prhavc, Marija Symons, Julian A. Beigelman, Leo PLoS One Research Article ALS-8112 is the parent molecule of ALS-8176, a first-in-class nucleoside analog prodrug effective in the clinic against respiratory syncytial virus (RSV) infection. The antiviral activity of ALS-8112 is mediated by its 5'-triphosphate metabolite (ALS-8112-TP, or 2'F-4'ClCH(2)-cytidine triphosphate) inhibiting the RNA polymerase activity of the RSV L-P protein complex through RNA chain termination. Four amino acid mutations in the RNA-dependent RNA polymerase (RdRp) domain of L (QUAD: M628L, A789V, L795I, and I796V) confer in vitro resistance to ALS-8112-TP by increasing its discrimination relative to natural CTP. In this study, we show that the QUAD mutations specifically recognize the ClCH(2) group of ALS-8112-TP. Among the four mutations, A789V conferred the greatest resistance phenotype, which was consistent with its putative position in the active site of the RdRp domain. AZ-27, a non-nucleoside inhibitor of RSV, also inhibited the RdRp activity, with decreased inhibition potency in the presence of the Y1631H mutation. The QUAD mutations had no effect on the antiviral activity of AZ-27, and the Y1631H mutation did not significantly increase the discrimination of ALS-8112-TP. Combining ALS-8112 with AZ-27 in vitro resulted in significant synergistic inhibition of RSV replication. Overall, this is the first mechanistic study showing a lack of cross-resistance between mutations selected by different classes of RSV polymerase inhibitors acting in synergy, opening the door to future potential combination therapies targeting different regions of the L protein. Public Library of Science 2016-05-10 /pmc/articles/PMC4862670/ /pubmed/27163448 http://dx.doi.org/10.1371/journal.pone.0154097 Text en © 2016 Deval et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Deval, Jerome
Fung, Amy
Stevens, Sarah K.
Jordan, Paul C.
Gromova, Tatiana
Taylor, Joshua S.
Hong, Jin
Meng, Jia
Wang, Guangyi
Dyatkina, Natalia
Prhavc, Marija
Symons, Julian A.
Beigelman, Leo
Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase
title Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase
title_full Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase
title_fullStr Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase
title_full_unstemmed Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase
title_short Biochemical Effect of Resistance Mutations against Synergistic Inhibitors of RSV RNA Polymerase
title_sort biochemical effect of resistance mutations against synergistic inhibitors of rsv rna polymerase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4862670/
https://www.ncbi.nlm.nih.gov/pubmed/27163448
http://dx.doi.org/10.1371/journal.pone.0154097
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