3,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA Synthesis
Initiation of protein-primed (-) strand DNA synthesis in hepatitis B virus (HBV) requires interaction of the viral reverse transcriptase with epsilon (ε), a <i>cis</i>-acting regulatory signal located at the 5’ terminus of pre-genomic RNA (pgRNA), and several host-encoded chaperone prote...
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doaj-c6705b0980124254a3e599d16a659d1c2020-11-25T03:54:57ZengMDPI AGMolecules1420-30492020-09-01254434443410.3390/molecules251944343,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA SynthesisEllen Bak0Jennifer T. Miller1Andrea Noronha2John Tavis3Emilio Gallicchio4Ryan P. Murelli5Stuart F. J. Le Grice6Basic Research Laboratory National Cancer Institute, Frederick, MD 21702, USABasic Research Laboratory National Cancer Institute, Frederick, MD 21702, USABasic Research Laboratory National Cancer Institute, Frederick, MD 21702, USADepartment of Molecular Microbiology and Immunology, St. Louis University, St. Louis, MO 63104, USADepartment of Chemistry, Brooklyn College, The City University of New York, Brooklyn, NY 11210, USADepartment of Chemistry, Brooklyn College, The City University of New York, Brooklyn, NY 11210, USABasic Research Laboratory National Cancer Institute, Frederick, MD 21702, USAInitiation of protein-primed (-) strand DNA synthesis in hepatitis B virus (HBV) requires interaction of the viral reverse transcriptase with epsilon (ε), a <i>cis</i>-acting regulatory signal located at the 5’ terminus of pre-genomic RNA (pgRNA), and several host-encoded chaperone proteins. Binding of the viral polymerase (P protein) to ε is necessary for pgRNA encapsidation and synthesis of a short primer covalently attached to its terminal domain. Although we identified small molecules that recognize HBV ε RNA, these failed to inhibit protein-primed DNA synthesis. However, since initiation of HBV (-) strand DNA synthesis occurs within a complex of viral and host components (e.g., Hsp90, DDX3 and APOBEC3G), we considered an alternative therapeutic strategy of allosteric inhibition by disrupting the initiation complex or modifying its topology. To this end, we show here that 3,7-dihydroxytropolones (3,7-dHTs) can inhibit HBV protein-primed DNA synthesis. Since DNA polymerase activity of a ribonuclease (RNase H)-deficient HBV reverse transcriptase that otherwise retains DNA polymerase function is also abrogated, this eliminates direct involvement of RNase (ribonuclease) H activity of HBV reverse transcriptase and supports the notion that the HBV initiation complex might be therapeutically targeted. Modeling studies also provide a rationale for preferential activity of 3,7-dHTs over structurally related α-hydroxytropolones (α-HTs).https://www.mdpi.com/1420-3049/25/19/4434Hepatitis B virusprotein primingepsilon RNAminus strand DNA synthesis3,7-dihydroxytropolones |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ellen Bak Jennifer T. Miller Andrea Noronha John Tavis Emilio Gallicchio Ryan P. Murelli Stuart F. J. Le Grice |
spellingShingle |
Ellen Bak Jennifer T. Miller Andrea Noronha John Tavis Emilio Gallicchio Ryan P. Murelli Stuart F. J. Le Grice 3,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA Synthesis Molecules Hepatitis B virus protein priming epsilon RNA minus strand DNA synthesis 3,7-dihydroxytropolones |
author_facet |
Ellen Bak Jennifer T. Miller Andrea Noronha John Tavis Emilio Gallicchio Ryan P. Murelli Stuart F. J. Le Grice |
author_sort |
Ellen Bak |
title |
3,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA Synthesis |
title_short |
3,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA Synthesis |
title_full |
3,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA Synthesis |
title_fullStr |
3,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA Synthesis |
title_full_unstemmed |
3,7-Dihydroxytropolones Inhibit Initiation of Hepatitis B Virus Minus-Strand DNA Synthesis |
title_sort |
3,7-dihydroxytropolones inhibit initiation of hepatitis b virus minus-strand dna synthesis |
publisher |
MDPI AG |
series |
Molecules |
issn |
1420-3049 |
publishDate |
2020-09-01 |
description |
Initiation of protein-primed (-) strand DNA synthesis in hepatitis B virus (HBV) requires interaction of the viral reverse transcriptase with epsilon (ε), a <i>cis</i>-acting regulatory signal located at the 5’ terminus of pre-genomic RNA (pgRNA), and several host-encoded chaperone proteins. Binding of the viral polymerase (P protein) to ε is necessary for pgRNA encapsidation and synthesis of a short primer covalently attached to its terminal domain. Although we identified small molecules that recognize HBV ε RNA, these failed to inhibit protein-primed DNA synthesis. However, since initiation of HBV (-) strand DNA synthesis occurs within a complex of viral and host components (e.g., Hsp90, DDX3 and APOBEC3G), we considered an alternative therapeutic strategy of allosteric inhibition by disrupting the initiation complex or modifying its topology. To this end, we show here that 3,7-dihydroxytropolones (3,7-dHTs) can inhibit HBV protein-primed DNA synthesis. Since DNA polymerase activity of a ribonuclease (RNase H)-deficient HBV reverse transcriptase that otherwise retains DNA polymerase function is also abrogated, this eliminates direct involvement of RNase (ribonuclease) H activity of HBV reverse transcriptase and supports the notion that the HBV initiation complex might be therapeutically targeted. Modeling studies also provide a rationale for preferential activity of 3,7-dHTs over structurally related α-hydroxytropolones (α-HTs). |
topic |
Hepatitis B virus protein priming epsilon RNA minus strand DNA synthesis 3,7-dihydroxytropolones |
url |
https://www.mdpi.com/1420-3049/25/19/4434 |
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