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Updated: Nov 18, 2025

Prediction of HIV-1 Coreceptor Usage Tropism by Sequence Analysis using a Genotypic Approach
Published on: December 1, 2011
APOBEC3G/F as one possible driving force for co-receptor switch of the human immunodeficiency virus-1
Eva Heger1, Alexander Thielen, Ramona Gilles
1University of Cologne, Cologne, Germany. eva.heger@uk-koeln.de
Insights
Human immunodeficiency virus-1 (HIV-1) tropism shifts from CCR5 (R5) to CXCR4 (X4) strains via G-to-A mutations in the gp120 V3 region. APOBEC3F and APOBEC3G deaminases may drive this switch by promoting G-to-A mutations.
Area of Science:
- Virology
- Molecular Biology
- Genetics
Background:
- Human immunodeficiency virus-1 (HIV-1) tropism, its ability to infect specific cells, is determined by the amino acid (aa) composition of the gp120 V3 region.
- A shift towards positively charged amino acids in V3 correlates with CXCR4 (X4) co-receptor usage, contrasting with CCR5 (R5) usage.
Purpose of the Study:
- To investigate the nucleotide composition of V3 sequences and its correlation with HIV-1 tropism.
- To test the hypothesis that G-to-A mutations drive the R5 to X4 tropism switch.
Main Methods:
- Analysis of 1527 V3 sequences from independent R5 and X4 HIV-1 strain datasets.
- Examination of triplet nucleotide composition within the V3 region.
Main Results:
- R5 strains showed a higher frequency of guanine (G)-containing triplets, while X4 strains had more adenine (A)-comprising triplets.
- These findings support the hypothesis that G-to-A mutations are associated with the R5 to X4 tropism switch.
Conclusions:
- G-to-A mutations in the V3 region are linked to the change in HIV-1 co-receptor usage from CCR5 to CXCR4.
- The deaminases APOBEC3F and APOBEC3G are hypothesized to be key drivers of these G-to-A mutations, facilitating the emergence of X4 variants.
Abstract:
Human immunodeficiency virus-1 tropism highly correlates with the amino acid (aa) composition of the third hypervariable region (V3) of gp120. A shift towards more positively charged aa is seen when binding to CXCR4 compared with CCR5 (X4 vs. R5 strains), especially positions 11 and 25 (11/25-rule) predicting X4 viruses in the presence of positively charged residues. At nucleotide levels, negatively or uncharged aa, e.g., aspartic and glutamic acid and glycine, which are encoded by the triplets GAN (guanine-adenosine-any nucleotide) or GGN are found more often in R5 strains. Positively charged aa such as arginine and lysine encoded by AAR or AGR (CGN) (R means A or G) are seen more frequently in X4 strains suggesting our hypothesis that a switch from R5 to X4 strains occurs via a G-to-A mutation. 1527 V3 sequences from three independent data sets of X4 and R5 strains were analysed with respect to their triplet composition. A higher number of G-containing triplets was found in R5 viruses, whereas X4 strains displayed a higher content of A-comprising triplets. These findings also support our hypothesis that G-to-A mutations are leading to the co-receptor switch from R5 to X4 strains. Causative agents for G-to-A mutations are the deaminases APOBEC3F and APOBEC3G. We therefore hypothesize that these proteins are one driving force facilitating the appearance of X4 variants. G-to-A mutations can lead to a switch from negatively to positively charged aa and a respective alteration of the net charge of gp120 resulting in a change of co-receptor usage.
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