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A Visosky

Publications and source records attributed to A Visosky.

3 recordsLinked to original sources

Analysis of transition from long-term nonprogressive to progressive infection identifies sequences that may attenuate HIV type 1.

Long-term nonprogressive human immunodeficiency virus type 1 (HIV-1) infection and its transition to progressive infection presents an opportunity to identify the molecular determinants of HIV-1 attenuation and pathogenesis. We studied an individual who underwent a transition from long-term nonprogressive to rapidly progressive infection. Because HIV-1 RNA genomes in plasma represent replicating virus, we developed a technique to clone full-length HIV-1 RNA genomes from plasma and used this technique to obtain clones from this individual before and during the transition. Most clones assayed were infectious, demonstrating that the RNA genomes encoded viable virus. Analysis of 20 complete HIV-1 RNA genomic sequences revealed one major difference between sequences found during the two phases of infection. During the nonprogressive phase, the predominant sequences had a large deletion in an Sp1-binding site and adjacent promoter in the U3 part of the long terminal repeat (LTR); when the infection became progressive, all viruses had intact Sp1 and promoter sequences and were derived from a minor species present earlier. Analysis of 184 clones of the LTR region obtained at five time points spanning a 7-year period confirmed this switch. In an in vitro assay, the deletion downregulated LTR-driven transcription of a reporter gene. In addition, analysis of cytotoxic T lymphocyte (CTL) epitopes predicted from the complete viral RNA genomes revealed multiple potential escape mutants that accumulated by the time of progression. These studies suggest that during the nonprogressive phase, the Sp1 enhancer-promoter deletion is likely to have played a role in decreasing replication, thereby attenuating HIV-1. The accumulation of CTL escape mutants suggests that a breakdown in immunologic surveillance may have allowed proliferation of intact virus, thus leading to rapid disease progression. These data reveal the viral and immune interactions characterizing a transition from long-term nonprogressive to rapidly progressive infection.

Base Sequence↗

CCR5 genotype and resistance to vertical transmission of HIV-1.

A human gene has been identified that affects susceptibility to HIV-1 infection. The gene codes for CCR5, the coreceptor for macrophage-tropic strains of HIV-1. Individuals who are homozygous for a deleted, mutant form of the gene, delta32, display a high degree of natural resistance to sexual and parenteral transmission of HIV-1. To investigate whether delta32 plays a role in vertical transmission, we determined the CCR5 genotype of 552 children born to infected mothers in the United States and correlated the genotypes with HIV-1 infection status. Of these children, 13% were white, 30% Latino, and 56% African American, reflecting the ethnic makeup of infected women in the United States. The delta32 gene frequency varied among these groups, ranging from 0.08 in whites to 0.02 in both Latinos and African Americans. Approximately 27% of the children in each ethnic group were infected. Four children were identified as delta32 homozygotes, two uninfected whites (3.77%) and two uninfected Latinos (1.68%). None of the infected children displayed the delta32 homozygous genotype. Among Latinos and whites, the number of uninfected children who carried the homozygous delta32 mutation was significantly greater than that predicted by the Hardy-Weinberg equilibrium (p < .001 for Latinos, p = .044 for whites). This association was noted in Latino and white children whose mothers were either treated or untreated with zidovudine. These data document the occurrence of the homozygous delta32 genotype among children of HIV-1-infected mothers and suggest that this mutant genotype may confer protection from mother-to-child transmission of HIV-1. They also suggest that sexual, parenteral, and vertical transmission all involve processes that use CCR5 as a coreceptor for primary HIV-1 infection. Therefore, blocking the CCR5 receptor may provide an additional strategy to prevent HIV-1 vertical transmission.

Alleles↗

PCR-mediated recombination: a general method applied to construct chimeric infectious molecular clones of plasma-derived HIV-1 RNA.

A PCR-based approach was developed that provides a powerful tool for engineering recombinant molecules without reliance on restriction sites. DNA sequences were first amplified by high-fidelity PCR using Pfu polymerase; they were then used both as 'megaprimers' and templates in subsequent asymmetric long PCR amplifications to form chimeric clones. To demonstrate the technique, we constructed chimeric full-length HIV-1 clones derived from reverse-transcribed plasma viral RNA and proviral LTRs. Biologic characterization of these clones showed that most were infectious in tissue culture and sequence analysis demonstrated an error rate of only one base change in 20 kb of DNA sequence. For PCR-mediated recombination, it is necessary to know the sequence of the 3' and 5' overlapping regions of the desired PCR products. This method may be extended to include construction of chimeras between any DNA fragments lacking sequence homology. Such chimeras may be constructed by introducing overlapping sequences to one of the fragments. To ensure that unwanted mutations have not been introduced into the clones constructed by this method, each clone should be sequenced. Our results demonstrate that by using a high-fidelity polymerase and highly controlled PCR conditions, the PCR-introduced error rate can be greatly minimized. This new procedure may be used to construct infectious chimeras of HIV or SIV for studies of vaccines and pathogenesis. Moreover, the method is designed to exchange viral genes at precise boundaries to study individual gene products from different HIV genomes. It can also be used to construct expression vectors for production of specific proteins or delivery vectors for gene transfer and gene therapy. Finally, the technique described here provides a versatile tool to transfer genes or gene fragments from different sources for genetic investigation and engineering.

Chimera↗