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Mutating conserved residues in the ribonuclease H domain of Ty3 reverse transcriptase affects specialized cleavage events.

The reverse transcriptase-associated ribonuclease H (RT/RNase H) domains from the gypsy group of retrotransposons, of which Ty3 is a member, share considerable sequence homology with their retroviral counterparts. However, the gypsy elements have a conserved tyrosine (position 459 in Ty3 RT) instead of the conserved histidine in the catalytic center of retroviral RTs such as at position 539 of HIV-1. In addition, the gypsy group shows conservation of histidine adjacent to the third of the metal-chelating carboxylate residues, which is Asp-426 of Ty3 RT. The role of these and additional catalytic residues was assessed with purified recombinant enzymes and through the ability of Ty3 mutants to support transposition in Saccaromyces cerevisiae. Although all mutations had minimal impact on DNA polymerase function, amidation of Asp-358, Glu-401, and Asp-426 eliminated Mg(2+)- and Mn(2+)-dependent RNase H function. Replacing His-427 and Tyr-459 with Ala and Asp-469 with Asn resulted in reduced RNase H activity in the presence of Mg(2+), whereas in the presence of Mn(2+) these mutants displayed a lack of turnover. Despite this, mutations at all positions were lethal for transposition. To reconcile these apparently contradictory findings, the efficiency of specialized RNase H-mediated events was examined for each enzyme. Mutants retaining RNase H activity on a heteropolymeric RNA.DNA hybrid failed to support DNA strand transfer and release of the (+) strand polypurine tract primer from (+) RNA, suggesting that interrupting one or both of these events might account for the transposition defect.

Amino Acid Sequence↗

Interaction kinetic characterization of HIV-1 reverse transcriptase non-nucleoside inhibitor resistance.

To decipher the mechanism for non-nucleoside inhibitor resistance of HIV-1 reverse transcriptase, the kinetics of the interaction between wild type and drug-resistant variants of the enzyme and structurally diverse inhibitors were determined. Substitution of amino acid residues in the inhibitor binding site resulted in altered rate constants for the pre-equilibrium between two unliganded forms of the enzyme, and for the association and dissociation of the inhibitor-enzyme interaction. The Y181C, V108I, and P225H substitutions affected primarily the association and dissociation rate constants, while the K103N and the L100I substitutions also influenced the equilibrium between the two forms of the free enzyme. The K103N and the L100I substitutions were found to facilitate both the entry of the inhibitor into the binding pocket as well as its exit, in contrast to what has been reported elsewhere. Interaction kinetic-based resistance profiles showed that phenethylthiazolylthiourea compounds were relatively insensitive to the studied substitutions.

Binding Sites↗

Alpha, beta- and beta, gamma-methylene 5'-phosphonate derivatives of 3'-azido-2',3'-dideoxythymidine-5'-triphosphate. Correlation between affinity for reverse transcriptase, susceptibility to hydrolysis by phosphodiesterases and anti-retrovirus activity.

A series of 5'-phosphorylated derivatives of 3'-azido-2',3'-dideoxythymidine (AzddThd), including AzddThd 5'-mono- and 5'-triphosphate, alpha, beta-methylene AzddThd-5'-diphosphate, alpha,beta-methylene AzddThd-5'-triphosphate, and beta,gamma-methylene AzddThd-5'-triphosphate, were evaluated for their cytostatic and anti-retrovirus properties, and their inhibitory effects on the reverse transcriptases of Moloney murine leukemia virus and human immunodeficiency virus. In contrast with the 5'-mono- and 5'-triphosphates of AzddThd, which showed cytostatic and anti-retrovirus activities comparable to those of AzddThd, the alpha,beta-methylene 5'-phosphonates of AzddThd were considerably less cytostatic and also much less inhibitory to cell transformation by Moloney murine sarcoma virus and cytopathogenicity of human immunodeficiency virus. The decreased biological activity of the phosphonate derivatives of AzddThd is most likely due to the resistance of these compounds to phosphorolytic attack by phosphodiesterases and phosphatases, and the reduced affinity for the retrovirus-associated reverse transcriptase.

Antiviral Agents↗

Synthesis and anti-human immunodeficiency virus type 1 (HIV-1) activity of 3-substituted derivatives of 3'-azido-3'-deoxythymidine (AZT), and inhibition of HIV-1 reverse transcriptase by their 5'-triphosphates.

Various 3-substituted 3'-azido-3'-deoxythymidine analogs (2a-i) were prepared by the reaction of 3'-azido-3'-deoxythymidine (1), AZT with N,N-dimethylformamide dialkylacetal or alkyl bromide in the presence of base and their activities against human-immunodeficiency virus type-1 (HIV-1) were evaluated. The corresponding 5'-triphosphate analogs (9) were also synthesized in order to examine inhibition of HIV-1 reverse transcriptase activity. Beyond expectation, some N3-derivatives of AZT were found to reserve the anti-HIV-1 activity to some extent. Among the compounds (2a-i) obtained, 3-allyl-AZT (2e) was the most active against HIV-1 replication in MT-4 cells in vitro with an EC50 value of 0.9 microM. 3-Allyl-AZT 5'-triphosphate (9e), however, exhibited no inhibition of HIV-1 reverse transcriptase activity.

Antiviral Agents↗

[Phenotypic manifestations of reverse transcriptase activity in yeast cells].

The yeast Saccharomyces cerevisiae and Schizosaccharomyces pombe transformed by plasmids containing retrotransposon from yeast or Drosophila under the control of a strong promoter show the remarkable reverse transcriptase activity. The activity results in the impaired yeast growth and decreased mitotic stability of the plasmids. The phenotypic expression of the reverse transcriptase activity is observed within 30 days.

DNA Transposable Elements↗

Inhibition of reverse transcriptase activity by 2',3'-dideoxythymidine 5'-triphosphate and its derivatives modified on the 3' position.

Inhibitory effects of 2',3'-dideoxythymidine 5'-triphosphate (ddTTP) and its three derivatives modified on the 3' position of ribose moiety [3'-azido-2',3'-dideoxythymidine 5'-triphosphate (3'-N3-ddTTP), 3'-amino-2',3'-dideoxythymidine 5'-triphosphate (3'-NH2-ddTTP) and 2'-deoxyxylo-furanosylthymine 5'-triphosphate (dXTP)] on the activity of the reverse transcriptase purified from Rauscher murine leukemia virus were examined and compared with each other. When (rA)n X (dT)12-18 was used as the template X primer in the presence of manganese ion, all these compounds except 3'-NH2-ddTTP inhibited the reverse transcriptase activity in competitive fashion with respect to the dTTP substrate. The inhibition potentials of these compounds are ordered as follows: 3'-N3-ddTTP (Ki = 1.8 microM) greater than ddTTP (Ki = 9.3 microM) greater than dXTP (Ki = 16.3 microM), and the Ki values of these inhibitors are smaller than the Km of dTTP (30 microM). The observed inhibitions were mainly due to competition between the dTTP substrate and inhibitor rather than chain-termination of the elongating DNAs caused by incorporation of these dideoxy compounds.

Binding, Competitive↗

2',5'-Bis-O-(tert-butyldimethylsilyl)-3'-spiro-5''-(4''-amino-1'',2''- oxathiole-2'',2'-dioxide)pyrimidine (TSAO) nucleoside analogues: highlyselective inhibitors of human immunodeficiency virus type 1 that are targeted at the viral reverse transcriptase.

A series of pyrimidine nucleoside analogues containing [2',5'-bis-O-(tert-butyldimethylsilyl)-3'-spiro-5''-(4''-amino- 1'',2''-oxathiole-2'',2''-dioxide)]-beta-D-ribofuranose as the pentose were found to inhibit human immunodeficiency virus type 1 [HIV-1(IIIB)] replication at a concentration of 0.06-0.8 microM but were not cytotoxic at a 1000- to 10,000-fold higher concentration. These nucleoside derivatives were also effective against various other HIV-1 strains, including those resistant to 3'-azido-3'-deoxythymidine, but not against HIV-2, simian immunodeficiency virus, Moloney murine sarcoma virus, or other RNA or DNA viruses. They proved to be highly specific inhibitors of the RNA-dependent DNA polymerase function of the HIV-1 reverse transcriptase, showing no marked inhibition of the HIV-1 reverse transcriptase-associated DNA-dependent DNA polymerase activity, HIV-2 reverse transcriptase, DNA polymerase alpha, herpes simplex virus 1 DNA polymerase, or Thermus aquaticus DNA polymerase.

Antiviral Agents↗

Limiting deoxynucleoside triphosphate concentrations emphasize the processivity defect of lamivudine-resistant variants of human immunodeficiency virus type 1 reverse transcriptase.

The nucleoside drug lamivudine (3TC) triggers the selection of resistant forms of the human immunodeficiency virus type 1 (HIV-1) reverse transcriptase (RT) with a substitution of amino acid 184Met. The 3TC-resistant RT enzymes 184Val and 184Ile exhibit a processivity defect in in vitro assays that correlates with reduced replication of the corresponding virus variants in primary cells. However, no replication defect is apparent for these two mutants in the transformed T-cell line SupT1. One obvious difference between the two cell types is the intracellular deoxynucleoside triphosphate (dNTP) level. Primary cells have a much smaller dNTP pool, and this cellular condition may emphasize the processivity defect of the codon 184 RT variants. Alternatively, cell-specific cofactors that influence the process of reverse transcription may exist. Such accessory factors may be packaged into the virion to exert an effect on the RT enzyme. To discriminate between these possibilities we performed additional assays with the wild-type and mutant RT enzymes. The RT proteins were either isolated from virions produced by primary and transformed cell types or expressed as recombinant protein. We also performed infection assays with cells treated with a drug that reduces the intracellular dNTP pool. Furthermore, reverse transcription was studied within virus particles in the endogenous assay, which allows for the manipulation of the dNTP level. The combined results indicate that the enzymatic defect of the 3TC-resistant HIV-1 variants is stressed at low dNTP concentrations.

Cells, Cultured↗

Analysis of HIV-1 reverse transcriptase and protease sequences in paired plasma and lymphoid tissue specimens from HIV-1 infected individuals.

OBJECTIVES: To determine how representative the genotype of HIV-1 circulating in plasma is of the genotype of the virus present in lymphoid tissue. METHODS: Paired plasma and tonsillar tissue samples were prospectively obtained from patients with various levels of plasma HIV-1 RNA who were receiving combination antiretroviral therapy. HIV-1 reverse transcriptase and protease sequences were amplified from plasma and lymphoid tissue specimens by nested polymerase chain reaction and analyzed using an automated sequencing system. Results were compared with consensus HIV-1 sequences to determine whether drug-resistance mutations were present in the regions analyzed. RESULTS: HIV-1 protease sequences were compared in 11 plasma/tissue pairs obtained from eight patients; HIV reverse transcriptase sequences were compared in 12 plasma/tissue pairs obtained from nine patients. Sequence homology between plasma and tissue RNA, tissue RNA and DNA, and plasma and tissue DNA ranged from 97% to 100%. Few discrepancies were found when the percentage of mutant sequences at resistance codons was compared among paired samples. In most instances, tissue RNA or plasma contained a higher percentage of mutant sequences than did tissue DNA. CONCLUSION: The genotype of plasma HIV-1 is similar to the genotype of the virus in lymphoid tissue. Resistance studies using plasma samples should provide accurate information regarding the genotype of HIV-1 in lymphoid tissues.

HIV Infections↗

The molecular basis of inhibition and toxicity of modified cytosine analogues targetting HIV-1 reverse transcriptase.

Among the AIDS drugs approved by the US Food and Drug Administration (FDA) for clinical use, two are modified cytosine analogues, zalcitabine (ddC) and lamivudine [(-)3TC]. (-)3TC is the only analogue containing an unnatural L(-)nucleoside configuration. Similar to other dideoxynucleosides, these analogues are metabolically activated to the triphosphate that is incorporated into DNA by HIV-1 reverse transcriptase (RT), resulting in DNA chain termination and ultimately cessation of viral replication. The natural d(+)3TC isomer also acts in a similar manner to inhibit HIV-1 RT. In cell culture (-)3TC is less toxic than its d(+)isomer (+)3TC, containing the natural nucleoside configuration, and both are considerably less toxic than ddC. The mechanistic basis for the stereochemical selectivity and differential toxicity of the isomeric 3TC and ddC compounds is not completely understood, although a number of factors may clearly come into play. We have previously investigated the mechanistic basis for the differential stereoselective inhibition and toxicity of these three cytosine analogues by comparing the effects of ddCTP (+)3TC-TP and (-)3TC-TP on the HIV-1 RT, as well as a recombinant form of the human mitochondrial DNA polymerase (Polgamma), the holoenzyme polymerase responsible for mitochondrial DNA replication. In this paper, we discuss the molecular mechanism for the stereochemical selectivity and differential toxicity.

Cytosine↗

Misincorporation by AMV reverse transcriptase shows strong dependence on the combination of template and substrate nucleotides.

We have carried out a systematic investigation of the efficiency of misincorporation by Avian Myeloblastosis Virus reverse transcriptase with all possible combinations of dNTP substrate, template nucleotide, and the nucleotide at the 3' terminus of the primer. A series of synthetic oligonucleotide primers were annealed to single stranded M13 DNA templates, and a single dNTP was misincorporated at the primer 3' end using AMV reverse transcriptase. The proportion and pattern of misincorporation and incorporation in all 64 situations was assayed using [5'-32p] labelled primers, and the products were separated on denaturing polyacrylamide gels. Correct incorporations occurred more readily than misincorporations. The efficiency of misincorporation depended on the individual primer, but, comparing primers, a clear dependence on the template nucleotide was observed for the preferential misincorporation of different dNTPs. The exact combination of template and dNTP was important; although purine:pyrimidine (dNTP substrate:template nucleotide) and pyrimidine:purine misincorporations occurred comparatively readily, some pyrimidine:pyrimidine and purine:purine reactions were equally efficient and yet others were never seen to occur. Some misincorporations were facilitated by subsequent correct incorporations, but despite this our results suggest that the level of misincorporation is limited by the rate of reaction and enzyme inactivation rather than by exonuclease activity.

Avian Myeloblastosis Virus↗

Characterization of the in vitro biotransformation of the HIV-1 reverse transcriptase inhibitor nevirapine by human hepatic cytochromes P-450.

Nevirapine (NVP), a non-nucleoside inhibitor of HIV-1 reverse transcriptase, is concomitantly administered to patients with a variety of medications. To assess the potential for its involvement in drug interactions, cytochrome P-450 (CYP) reaction phenotyping of NVP to its four oxidative metabolites, 2-, 3-, 8-, and 12-hydroxyNVP, was performed. The NVP metabolite formation rates by characterized human hepatic microsomes were best correlated with probe activities for either CYP3A4 (2- and 12-hydroxyNVP) or CYP2B6 (3-and 8-hydroxyNVP). In studies with cDNA-expressed human hepatic CYPs, 2- and 3-hydroxyNVP were exclusively formed by CYP3A and CYP2B6, respectively. Multiple cDNA-expressed CYPs produced 8- and 12-hydroxyNVP, although they were produced predominantly by CYP2D6 and CYP3A4, respectively. Antibody to CYP3A4 inhibited the rates of 2-, 8-, and 12-hydroxyNVP formation by human hepatic microsomes, whereas antibody to CYP2B6 inhibited the formation of 3- and 8-hydroxyNVP. Studies using the CYP3A4 inhibitors ketoconazole, troleandomycin, and erythromycin suggested a role for CYP3A4 in the formation of 2-, 8-, and 12-hydroxyNVP. These inhibitors were less effective or ineffective against the biotransformation of NVP to 3-hydroxyNVP. Quinidine very weakly inhibited only 8-hydroxyNVP formation. NVP itself was an inhibitor of only CYP3A4 at concentrations that were well above those of therapeutic relevance (K(i) = 270 microM). Collectively, these data indicate that NVP is principally metabolized by CYP3A4 and CYP2B6 and that it has little potential to be involved in inhibitory drug interactions.

Antibodies↗

Critical role of reverse transcriptase in the inhibitory mechanism of CNI-H0294 on HIV-1 nuclear translocation.

HIV-1 replication requires the translocation of viral genome into the nucleus of a target cell. We recently reported the synthesis of an arylene bis(methyl ketone) compound (CNI-H0294) that inhibits nuclear targeting of the HIV-1 genome and thus HIV-1 replication in monocyte cultures. Here we demonstrate that CNI-H0294 inhibits nuclear targeting of HIV-1-derived preintegration complexes by inactivating the nuclear localization sequence of the HIV-1 matrix antigen in a reaction that absolutely requires reverse transcriptase. This drug/reverse transcriptase interaction defines the specificity of its antiviral effect and is most likely mediated by the pyrimidine side-chain of CNI-H0294. After binding to reverse transcriptase, the carbonyl groups of CNI-H0294 react with the nuclear localization sequence of matrix antigen and prevent its binding to karyopherin alpha, the cellular receptor for nuclear localization sequences that carries proteins into the nucleus. Our results provide a basis for the development of a novel class of compounds that inhibit nuclear translocation and that can, in principle, be modified to target specific infectious agents.

Antiviral Agents↗

Impact of unreported HIV-1 reverse transcriptase mutations on phenotypic resistance to nucleoside and non-nucleoside inhibitors.

An extended spectrum of HIV-1 reverse-transcriptase (RT) mutations in HAART-treated patients has been recently described. To verify the possible association of previously unreported RT mutations with a decrease of phenotypic susceptibility to nucleoside (NRTIs) and non-nucleoside (NNRTIs) RT inhibitors, the RT sequence of 328 HIV-1-positive patients (102 naïve and 226 treated with HAART participating in either the PhenGen or Genpherex study) was analyzed. All treated patients were tested at the time of therapeutic failure with both phenotypic (Antivirogram, Virco) and genotypic analyses (VircoGen); the frequency of RT substitutions (positions 1-240) with respect to consensus B was compared to that of naïve patients using a Chi-square test. Amino acid changes at 13 positions not included in the IAS list of resistance-associated mutations were detected more frequently in treated than in naïve subjects. The mutations involving 10 of these positions were associated with a reduced susceptibility to antiretroviral drugs; K20R, T39A, K43EQN, E203KD, H208Y, and D218E were correlated with NRTI resistance while mutations K101EQP, H221Y, K223EQ, L228HR were associated to NNRTI resistance. A correlation was found between K20R and lamivudine resistance (P = 0.006) while T39A (P = 0.005), K43EQN (<0.001), E203KD (P = 0.010), and H208Y (P = < 0.001) seemed to be associated with a previous use of zidovudine and stavudine and with the development of thymidine analog resistance. For H208Y, an association with use/resistance to abacavir (P = 0.004) was also noted. D218E showed a weak association to didanosine resistance (P = 0.013). The data confirm that previously unreported mutations are associated with antiretroviral drug experience and, more importantly, with a reduced susceptibility to NRTIs and NNRTIs.

Adult↗

Quantification of hepatitis C virus in human liver and serum samples by using LightCycler reverse transcriptase PCR.

A highly sensitive, non-probe-based, real-time quantitative reverse transcriptase PCR was developed for viral load measurements in both serum and liver samples from patients with hepatitis C virus (HCV) infection. With synthetic RNA, the linearity of the approach was conserved over a wide range of HCV copy numbers. There was a strong correlation between hepatic and serum viral load measurements (r = 0.689, P = 0.004, n = 15), indicating that the level of viremia reflected the amount of virus present in the liver.

Hepacivirus↗

Development of reverse transcriptase PCR assays for detection of active human herpesvirus 6 infection.

We developed reverse transcriptase (RT) PCR assays for the detection of mRNA from three spliced genes of human herpesvirus 6 (HHV-6), the immediate-early genes U16/U17 and U89/U90 and the late gene U60/U66. Sequence analysis determined the splicing sites of these genes. The new assays may be instrumental in investigating the association between HHV-6 and disease.

Genes, Immediate-Early↗

Biaryl acids: novel non-nucleoside inhibitors of HIV reverse transcriptase types 1 and 2.

A series of biaryl acids has been found to show micromolar inhibition of the HIV reverse transcriptase (RT) from types 1 and 2 with IC50S in the micromolar range. The series was discovered by consideration of the polymerase active site and sub-structure searching of the company compound collection. Synthesis of analogues to investigate the SAR is described. Two of these compounds have shown inhibition of HIV-2 RT only.

Anti-HIV Agents↗

Mutations at position 184 of human immunodeficiency virus type-1 reverse transcriptase affect virus titer and viral DNA synthesis.

Methionine at position 184 of human immunodeficiency virus type-1 (HIV-1) reverse transcriptase (RT) was changed to valine, isoleucine, threonine, or alanine in an HIV-1-based vector. The vectors were analyzed for replication capacity and for resistance to the nucleoside analog 2',3'-dideoxy-3'thiacytidine (3TC) using a single-cycle assay. Viruses containing the valine or isoleucine mutations were highly resistant to 3TC and replicated almost as well as the wild-type virus. The virus containing the threonine mutation was resistant to 3TC, but replicated about 30% as well as the wild-type. The alanine mutation conferred partial resistance to 3TC, but replicated poorly. The amounts of viral DNA synthesized decreased in 3TC-treated cells when the cells were infected with wild-type virus and the M184A mutant. The effect of these mutations on the generation of the ends of the linear viral DNA was determined using the sequence of the 2-LTR circle junctions. The M184T mutation increased the proportion of 2-LTR circle junctions containing a tRNA insertion, suggesting that the mutation affected the RNase H activity of RT.

Binding Sites↗