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Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues

[Image: see text] APOBEC3 enzymes form part of the innate immune system by deaminating cytosine to uracil in single-stranded DNA (ssDNA) and thereby preventing the spread of pathogenic genetic information. However, APOBEC mutagenesis is also exploited by viruses and cancer cells to increase rates of...

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Autores principales: Kvach, Maksim V., Barzak, Fareeda M., Harjes, Stefan, Schares, Henry A. M., Jameson, Geoffrey B., Ayoub, Alex M., Moorthy, Ramkumar, Aihara, Hideki, Harris, Reuben S., Filichev, Vyacheslav V., Harki, Daniel A., Harjes, Elena
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6365909/
https://www.ncbi.nlm.nih.gov/pubmed/30418757
http://dx.doi.org/10.1021/acs.biochem.8b00858
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author Kvach, Maksim V.
Barzak, Fareeda M.
Harjes, Stefan
Schares, Henry A. M.
Jameson, Geoffrey B.
Ayoub, Alex M.
Moorthy, Ramkumar
Aihara, Hideki
Harris, Reuben S.
Filichev, Vyacheslav V.
Harki, Daniel A.
Harjes, Elena
author_facet Kvach, Maksim V.
Barzak, Fareeda M.
Harjes, Stefan
Schares, Henry A. M.
Jameson, Geoffrey B.
Ayoub, Alex M.
Moorthy, Ramkumar
Aihara, Hideki
Harris, Reuben S.
Filichev, Vyacheslav V.
Harki, Daniel A.
Harjes, Elena
author_sort Kvach, Maksim V.
collection PubMed
description [Image: see text] APOBEC3 enzymes form part of the innate immune system by deaminating cytosine to uracil in single-stranded DNA (ssDNA) and thereby preventing the spread of pathogenic genetic information. However, APOBEC mutagenesis is also exploited by viruses and cancer cells to increase rates of evolution, escape adaptive immune responses, and resist drugs. This raises the possibility of APOBEC3 inhibition as a strategy for augmenting existing antiviral and anticancer therapies. Here we show that, upon incorporation into short ssDNAs, the cytidine nucleoside analogue 2′-deoxyzebularine (dZ) becomes capable of inhibiting the catalytic activity of selected APOBEC variants derived from APOBEC3A, APOBEC3B, and APOBEC3G, supporting a mechanism in which ssDNA delivers dZ to the active site. Multiple experimental approaches, including isothermal titration calorimetry, fluorescence polarization, protein thermal shift, and nuclear magnetic resonance spectroscopy assays, demonstrate nanomolar dissociation constants and low micromolar inhibition constants. These dZ-containing ssDNAs constitute the first substrate-like APOBEC3 inhibitors and, together, comprise a platform for developing nucleic acid-based inhibitors with cellular activity.
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spelling pubmed-63659092019-02-08 Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues Kvach, Maksim V. Barzak, Fareeda M. Harjes, Stefan Schares, Henry A. M. Jameson, Geoffrey B. Ayoub, Alex M. Moorthy, Ramkumar Aihara, Hideki Harris, Reuben S. Filichev, Vyacheslav V. Harki, Daniel A. Harjes, Elena Biochemistry [Image: see text] APOBEC3 enzymes form part of the innate immune system by deaminating cytosine to uracil in single-stranded DNA (ssDNA) and thereby preventing the spread of pathogenic genetic information. However, APOBEC mutagenesis is also exploited by viruses and cancer cells to increase rates of evolution, escape adaptive immune responses, and resist drugs. This raises the possibility of APOBEC3 inhibition as a strategy for augmenting existing antiviral and anticancer therapies. Here we show that, upon incorporation into short ssDNAs, the cytidine nucleoside analogue 2′-deoxyzebularine (dZ) becomes capable of inhibiting the catalytic activity of selected APOBEC variants derived from APOBEC3A, APOBEC3B, and APOBEC3G, supporting a mechanism in which ssDNA delivers dZ to the active site. Multiple experimental approaches, including isothermal titration calorimetry, fluorescence polarization, protein thermal shift, and nuclear magnetic resonance spectroscopy assays, demonstrate nanomolar dissociation constants and low micromolar inhibition constants. These dZ-containing ssDNAs constitute the first substrate-like APOBEC3 inhibitors and, together, comprise a platform for developing nucleic acid-based inhibitors with cellular activity. American Chemical Society 2018-11-12 2019-02-05 /pmc/articles/PMC6365909/ /pubmed/30418757 http://dx.doi.org/10.1021/acs.biochem.8b00858 Text en Copyright © 2018 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Kvach, Maksim V.
Barzak, Fareeda M.
Harjes, Stefan
Schares, Henry A. M.
Jameson, Geoffrey B.
Ayoub, Alex M.
Moorthy, Ramkumar
Aihara, Hideki
Harris, Reuben S.
Filichev, Vyacheslav V.
Harki, Daniel A.
Harjes, Elena
Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues
title Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues
title_full Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues
title_fullStr Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues
title_full_unstemmed Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues
title_short Inhibiting APOBEC3 Activity with Single-Stranded DNA Containing 2′-Deoxyzebularine Analogues
title_sort inhibiting apobec3 activity with single-stranded dna containing 2′-deoxyzebularine analogues
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6365909/
https://www.ncbi.nlm.nih.gov/pubmed/30418757
http://dx.doi.org/10.1021/acs.biochem.8b00858
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