Multiploid inheritance of HIV-1 during cell-to-cell infection
Armando Del Portillo1, Joseph Tripodi, Vesna Najfeld
1Division of Infectious Diseases, Department of Medicine, Immunology Institute, Mount Sinai School of Medicine, One Gustave Levy Place, Box 1630, New York, NY 10029, USA.
Insights
Cell-to-cell transmission of human immunodeficiency virus type 1 (HIV-1) results in multiploid inheritance, with more viral DNA copies transmitted than through cell-free infection. This explains high provirus numbers and preserves viral genetic diversity.
Area of Science:
- Virology
- Immunology
- Genetics
Background:
- Human immunodeficiency virus type 1 (HIV-1) spreads via cell-free particles and direct cell-to-cell transmission through virological synapses (VS).
- Understanding the genetic inheritance during different HIV-1 transmission routes is crucial for comprehending viral replication and evolution.
Purpose of the Study:
- To compare the genetic copy number transmitted during cell-free versus cell-to-cell HIV-1 infection.
- To investigate the frequency of multiple HIV-1 variant cotransmission during cell-to-cell spread.
Main Methods:
- Utilized fluorescently tagged HIV-1 variants in co-culture experiments with CD4 T cells.
- Employed fluorescence in situ hybridization (FISH) to quantify proviral DNA copies.
- Developed computational and statistical models to analyze coinfection frequencies.
Main Results:
- Cell-to-cell HIV-1 infection leads to significantly higher proviral DNA copy numbers per cell compared to cell-free infection.
- Multiple HIV-1 variants can be cotransmitted across a single virological synapse.
- Coinfection frequencies were estimated, revealing underestimation by simple cofluorescence detection.
Conclusions:
- Multiploid inheritance is common during cell-to-cell HIV-1 infection.
- Cell-to-cell transmission may explain high provirus loads in vivo.
- This transmission route could facilitate HIV sequence heterogeneity maintenance through genetic complementation.
Abstract:
During cell-to-cell transmission of human immunodeficiency virus type 1 (HIV-1), many viral particles can be simultaneously transferred from infected to uninfected CD4 T cells through structures called virological synapses (VS). Here we directly examine how cell-free and cell-to-cell infections differ from infections initiated with cell-free virus in the number of genetic copies that are transmitted from one generation to the next, i.e., the genetic inheritance. Following exposure to HIV-1-expressing cells, we show that target cells with high viral uptake are much more likely to become infected. Using T cells that coexpress distinct fluorescent HIV-1 variants, we show that multiple copies of HIV-1 can be cotransmitted across a single VS. In contrast to cell-free HIV-1 infection, which titrates with Poisson statistics, the titration of cell-associated HIV-1 to low rates of overall infection generates a constant fraction of the newly infected cells that are cofluorescent. Triple infection was also readily detected when cells expressing three fluorescent viruses were used as donor cells. A computational model and a statistical model are presented to estimate the degree to which cofluorescence underestimates coinfection frequency. Lastly, direct detection of HIV-1 proviruses using fluorescence in situ hybridization confirmed that significantly more HIV-1 DNA copies are found in primary T cells infected with cell-associated virus than in those infected with cell-free virus. Together, the data suggest that multiploid inheritance is common during cell-to-cell HIV-1 infection. From this study, we suggest that cell-to-cell infection may explain the high copy numbers of proviruses found in infected cells in vivo and may provide a mechanism through which HIV preserves sequence heterogeneity in viral quasispecies through genetic complementation.
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