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1.
Antimicrob Agents Chemother ; 55(8): 3758-64, 2011 Aug.
Article in English | MEDLINE | ID: mdl-21646480

ABSTRACT

We recently reported that HIV-1 resistant to 3'-azido-3'-deoxythymidine (AZT) is not cross-resistant to 3'-azido-2',3'-dideoxypurines. This finding suggested that the nucleoside base is a major determinant of HIV-1 resistance to nucleoside analogs. To further explore this hypothesis, we conducted in vitro selection experiments by serial passage of HIV-1(LAI) in MT-2 cells in increasing concentrations of 3'-azido-2',3'-dideoxyguanosine (3'-azido-ddG), 3'-azido-2',3'-dideoxycytidine (3'-azido-ddC), or 3'-azido-2',3'-dideoxyadenosine (3'-azido-ddA). 3'-Azido-ddG selected for virus that was 5.3-fold resistant to 3'-azido-ddG compared to wild-type HIV-1(LAI) passaged in the absence of drug. Population sequencing of the entire reverse transcriptase (RT) gene identified L74V, F77L, and L214F mutations in the polymerase domain and K476N and V518I mutations in the RNase H domain. However, when introduced into HIV-1 by site-directed mutagenesis, these 5 mutations only conferred ∼2.0-fold resistance. Single-genome sequencing analyses of the selected virus revealed a complex population of mutants that all contained L74V and L214F linked to other mutations, including ones not identified during population sequencing. Recombinant HIV-1 clones containing RT derived from single sequences exhibited 3.2- to 4.0-fold 3'-azido-ddG resistance. In contrast to 3'-azido-ddG, 3'-azido-ddC selected for the V75I mutation in HIV-1 RT that conferred 5.9-fold resistance, compared to the wild-type virus. Interestingly, we were unable to select HIV-1 that was resistant to 3'-azido-ddA, even at concentrations of 3'-azido-ddA that yielded high intracellular levels of 3'-azido-ddA-5'-triphosphate. Taken together, these findings show that the nucleoside base is a major determinant of HIV-1 resistance mechanisms that can be exploited in the design of novel nucleoside RT inhibitors.


Subject(s)
Anti-HIV Agents/pharmacology , Dideoxynucleosides/pharmacology , HIV Reverse Transcriptase/antagonists & inhibitors , HIV-1/drug effects , Reverse Transcriptase Inhibitors/pharmacology , Azides/pharmacology , Base Sequence , Dideoxyadenosine/analogs & derivatives , Dideoxyadenosine/pharmacology , Drug Resistance, Viral , HIV Reverse Transcriptase/metabolism , HIV-1/genetics , Mutagenesis, Site-Directed , Sequence Analysis, RNA , Zalcitabine/analogs & derivatives , Zalcitabine/pharmacology , Zidovudine/pharmacology
2.
Antiviral Res ; 101: 62-7, 2014 Jan.
Article in English | MEDLINE | ID: mdl-24211331

ABSTRACT

We reported that 3'-azido-2',3'-dideoxyguanosine (3'-azido-ddG) selected for the L74V, F77L, and L214F mutations in the polymerase domain and K476N and V518I mutations in the RNase H domain of HIV-1 reverse transcriptase (RT). In this study, we have defined the molecular mechanisms of 3'-azido-ddG resistance by performing in-depth biochemical analyses of HIV-1 RT containing mutations L74V, F77L, V106I, L214F, R277K, and K476N (SGS3). The SGS3 HIV-1 RT was from a single-genome-derived full-length RT sequence obtained from 3'-azido-ddG resistant HIV-1 selected in vitro. We also analyzed two additional constructs that either lacked the L74V mutation (SGS3-L74V) or the K476N mutation (SGS3-K476N). Pre-steady-state kinetic experiments revealed that the L74V mutation allows RT to effectively discriminate between the natural nucleotide (dGTP) and 3'-azido-ddG-triphosphate (3'-azido-ddGTP). 3'-azido-ddGTP discrimination was primarily driven by a decrease in 3'-azido-ddGTP binding affinity (Kd) and not by a decreased rate of incorporation (kpol). The L74V mutation was found to severely impair RT's ability to excise the chain-terminating 3'-azido-ddG-monophosphate (3'-azido-ddGMP) moiety. However, the K476N mutation partially restored the enzyme's ability to excise 3'-azido-ddGMP on an RNA/DNA, but not on a DNA/DNA, template/primer by selectively decreasing the frequency of secondary RNase H cleavage events. Collectively, these data provide strong additional evidence that the nucleoside base structure is major determinant of HIV-1 resistance to the 3'-azido-2',3'-dideoxynucleosides.


Subject(s)
Anti-HIV Agents/pharmacology , Dideoxynucleosides/pharmacology , Drug Resistance, Viral , HIV Reverse Transcriptase/metabolism , HIV-1/drug effects , pol Gene Products, Human Immunodeficiency Virus/metabolism , HIV Reverse Transcriptase/genetics , HIV-1/genetics , Humans , Kinetics , Mutant Proteins/genetics , Mutant Proteins/metabolism , Mutation, Missense , Selection, Genetic , pol Gene Products, Human Immunodeficiency Virus/genetics
3.
J Virol ; 81(15): 7852-9, 2007 Aug.
Article in English | MEDLINE | ID: mdl-17507476

ABSTRACT

Recent work indicates that mutations in the C-terminal domains of human immunodeficiency virus type 1 (HIV-1) reverse transcriptase (RT) increase 3'-azido-3'-dideoxythymidine (AZT) resistance. Because it is not known whether AZT selects for mutations outside of the polymerase domain of RT, we carried out in vitro experiments in which HIV-1(LAI) or AZT-resistant HIV-1(LAI) (M41L/L210W/T215Y) was passaged in MT-2 cells in increasing concentrations of AZT. The first resistance mutations to appear in HIV-1(LAI) were two polymerase domain thymidine analog mutations (TAMs), D67N and K70R, and two novel mutations, A371V in the connection domain and Q509L in the RNase H domain, that together conferred up to 90-fold AZT resistance. Thereafter, the T215I mutation appeared but was later replaced by T215F, resulting in a large increase in AZT resistance ( approximately 16,000-fold). Mutations in the connection and RNase H domains were not selected starting with AZT-resistant virus (M41L/L210W/T215Y). The roles of A371V and Q509L in AZT resistance were confirmed by site-directed mutagenesis: A371V and Q509L together increased AZT resistance approximately 10- to 50-fold in combination with TAMs (M41L/L210W/T215Y or D67N/K70R/T215F) but had a minimal effect without TAMs (1.7-fold). A371V and Q509L also increased cross-resistance with TAMs to lamivudine and abacavir, but not stavudine or didanosine. These results provide the first evidence that mutations in the connection and RNase H domains of RT can be selected in vitro by AZT and confer greater AZT resistance and cross-resistance to nucleoside RT inhibitors in combination with TAMs in the polymerase domain.


Subject(s)
Anti-HIV Agents/pharmacology , HIV Reverse Transcriptase/genetics , HIV-1/drug effects , Mutation , Reverse Transcriptase Inhibitors/pharmacology , Ribonuclease H/metabolism , Zidovudine/pharmacology , Amino Acid Sequence , Binding Sites , Cell Line , Drug Resistance, Viral , Genetic Linkage , HIV Reverse Transcriptase/chemistry , HIV Reverse Transcriptase/metabolism , HIV-1/enzymology , HIV-1/genetics , HIV-1/physiology , Humans , Models, Molecular , Molecular Sequence Data , Protein Structure, Tertiary
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