HIV. One on one meets two.
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Biomedical subjects
Publications and source records attributed to S Wain-Hobson.
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In principle the hydrogen bonding capacities of 1-(2-deoxy-beta-D-ribofuranosyl)-imidazole-4-carboxamide (dY), and its N-propyl derivative (dYPr), allow them to pair to all four deoxynucleosides. Their triphosphate derivatives (dYTP and dYPrTP) are preferentially incorporated as dATP analogues in a PCR reaction. However, once incorporated into a DNA template their ambiguous hydrogen bonding potential gave rise to misincorporation at frequencies of approximately 3 x 10(-2) per base per amplification. Most of the substitutions were transitions resulting from rotation about the carboxamide bond when part of the template. Between 11-15% of transversions were noted implying rotation of purine or imidazole moieties about the glycosidic bond. As part of a DNA template, dYPr behaved in the same way as dY, despite its propyl moiety. These deoxyimidazole derivatives are among the most radical departures from the canonical bases used so far as substrates in PCR and could be used to generate mutant gene libraries.
Very complex mutant libraries of the dihydrofolate reductase (DHFR) gene encoded by the Escherichia coli plasmid R67 were created using hypermutagenic PCR with biased deoxynucleotide triphosphate (dNTP) concentrations. Exploiting the particular stability of the G:T mismatch, the DHFR gene could be enriched in A+T by employing biased deoxypyrimidine triphosphate concentrations, i.e. [dTTP] > [dCTP]. A sizeable fraction of hypermutants were functional. A combination of [dTTP] > [dCTP] and [dGTP] > [dATP] biases generated mutations at unexpectedly low frequencies. This could be overcome by the addition of Mn2+ cations. Overall mutation frequencies of 10% per amplification (range 4-18% per clone) could be attained. All four transitions and a smaller number of transversions were produced throughout the gene. PCR mutagenesis could be so extensive as to inactivate all amplified versions of the gene.
Assuming that the clonal expansion of T cells harbouring the human T-cell leukemia virus type 1 (HTLV-1) provirus is a central feature of HTLV-1 infection, the identification of such cells was sought among a series of 19 asymptomatic carriers and 19 cases of tropical spastic paraparesis/HTLV-1 associated myelopathy (TSP/HAM) devoid of malignancy. Two PCR based protocols designed to amplify the host cell-HTLV-1 proviral integration sites were used. In all cases large numbers of proliferating clones could be identified. The proportion of some clones was > 1/1500 peripheral blood mononuclear cells (PBMCs) with the suggestion that their number increased as a function of age among asymptomatic carriers.
The evolution of natural proteins is thought to have occurred by successive fixation of individual mutations. In vitro protein evolution seeks to accelerate this process. RNA hypermutagenesis, cDNA synthesis in the presence of biased dNTP concentrations, delivers elevated mutant and mutation frequencies. Here lineages of active enzymes descended from the homotetrameric 78 residue dihydrofolate reductase (DHFR) encoded by the Escherichia coli R67 plasmid were generated by iterative RNA hypermutagenesis, resulting in >20% amino acid replacement. The 22 residue N-terminus could be deleted yielding a minimum functional entity refractory to further changes, designating it as a determinant of R67 robustness. Complete substitution of the segment still allowed fixation of mutations. By the facile introduction of multiple mutations, RNA hypermutagenesis allows the generation of active proteins derived from extant genes through a mode unexplored by natural selection.
RNA hypermutagenesis results from cDNA synthesis in the presence of highly biased dNTP precursor concentrations and preferentially exploits human immunodeficiency virus type 1 (HIV-1) reverse transcriptase. Such reaction conditions slow down DNA synthesis, which might be conducive to strand transfer and deletion. This has been investigated. A 6 bp inverted repeat nested between 10 bp repeats was efficiently deleted at dCTP concentrations typically used. Inter- or intramolecular strand transfer between 10 bp repeated sequences separated by runs of templated G residues occurred, but at lower concentrations. If RNA hypermutagenesis of a sequence containing direct and inverted repeats is unavoidable, avian myeloblastosis virus (AMV) reverse transcriptase could be used, as strand transfer occurs with much diminished dCTP substrate dependence.
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The retroviral DNA polymerase, or reverse transcriptase, lacks a 3' exonuclease proofreading activity. This causes a high mutation rate with the result that genetic diversity and drug resistance are increased. Only combination chemotherapy has the potential to out-manoeuvre these viruses. However, there is no evidence that ongoing variation allows escape from immune surveillance, so contributing to pathogenesis.
Human T-cell lymphotropic virus type I (HTLV-I) is characterized by a remarkable genetic stability and high proviral loads in the absence of malignant disease. This results from the effect of tax on cell cycling. The virus replicates essentially in concert with the cell that is, via mitosis, which can be shown by polymerase chain reaction amplification of the HTLV-I integration sites. This is true of all stages of HTLV-I infection and accompanies adult T-cell leukemia/lymphoma. The very low viremia results from its genetic organization.
The relationship between human immunodeficiency virus (HIV) type 1 reverse transcriptase tG:T mispair formation and base pair stability was investigated using DNA and RNA templates with 15 bp matched or mismatched DNA primers. tG:T mispair formation during primer elongation was undetectable on tDNA-DNA duplexes but occurred with a frequency of 10(-4) on matched tRNA-DNA duplexes. The frequency increased to 7.0 x 10(-4) and 1.3 x 10(-3) on tRNA-DNA duplexes with tG:T mismatches located 6 and 9 bp beyond the polymerization site. From Km values at 37 degrees C, the free energy change upon dissociation (delta G degrees 37) of the tG:T mispair increased from matched to mismatched tRNA-DNA duplexes by 0.36-1.21 kcal/mol. delta G degrees 37 for a correct tG:C pair decreased by 0.06-1.00 kcal/mol. In comparison with DNA-DNA duplexes, thermal melting measurements on RNA-DNA duplexes demonstrated smaller enthalpy (delta delta H degrees = -17.7 to -28.1 kcal/mol) and entropy (delta delta S degrees = -59.3 to -83.4 cal/mol/K) components. A strong entropy-enthalpy compensation resulted in small free energy differences (delta delta G degrees 37 = 0.8 to -2.2 kcal/mol). Thus, although DNA-DNA and RNA-DNA duplexes are of comparable stability in solution, the RNA-DNA duplex presents more facile base pair opening and higher conformational flexibility. The release of helical strain at constant helix stability in RNA-DNA duplexes may facilitate base mispairing during reverse transcription, particularly in the context of lentiviral G-->A hypermutation.
G-->A hypermutation is a remarkable phenomenon resulting from retroviral reverse transcription in the presence of highly biased dNTP concentrations. Of the three reverse transcriptases (RTases) available, those of human immunodeficiency virus type 1 (HIV-1), avian myeloblastosis virus (AMV) and Moloney murine leukemia virus (MoMLV), the HIV-1 enzyme showed the greatest sensitivity to biased [dCTP]/[dTTP] ratios. The HIV-1 RTase was able to discriminate between dUTP, dITP and the four DNA precursors and was insensitive to pH. There was little preference for nucleotide contexts. A few exceptionally modified sequences were found presumably resulting from G-->A hypermutation and multiple strand transfer. This particular predilection of the HIV-1 and, by extrapolation, the lentiviral RTases towards G-->A hypermutation suggests that the phenomenon may have contributed to the remarkably elevated A content of these retroviral genomes.
The complete nucleotide sequence of an integrated provirus of caprine arthritis-encephalitis virus (CAEV) has been determined. The provirus was defective due to extensive G-->A hypermutation. Rather than being a smooth phenomenon distributed throughout the genome it was highly erratic with hypermutated and normal regions being juxtaposed, probably reflecting local fluctuations in the intracellular dCTP pool during reverse transcription of the CAEV genome. The pattern of sequence variation within the surface glycoproteins differs subtly from that of the primate lentiviruses.
The solution structure of the nonpalindromic dodecanucleotide homopyrimidine:homopurine, d(5'-TTTCTCCTTTCT):d(5'-AGAAAGGAGAAA), was determined by two-dimensional nuclear magnetic resonance spectroscopy combined with molecular simulation. The dodecamer sequence studied was found within the HIV-1 envelope sequence and had all four Gs substituted by A in two hypermutants. A set of low-energy B-DNA conformations satisfying the quantitative NOE data were obtained. These highly related structure had neither peculiar helical parameters for the base pairs nor axis curvature. Analysis of the dihedral angles (epsilon-zeta) suggests that the A stretches flanking the GpA dinucleotides were more flexible.
Simian immunodeficiency virus (SIV) quasispecies development was followed in four monkeys (Macacca fascicularis) infected by intramuscular inoculation of phage lambda-SIVmac239 DNA. Rooted phylogenetic trees were reconstructed and used to interpret the data. The rate of fixation of base substitutions varied within and between animals reaching 3.3 x 10(-2) per site per year. These data suggest that the tempo of quasispecies development requires both massive viral replication and efficient clearance of SIV. Despite this, no significant difference was found between the observed and expected ratio of synonymous/nonsynonymous substitutions, suggesting that there was little or no selection of antigenic variants in the V1 and V2 hypervariable regions of envelope.
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Explore the source record for details and available documents.