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HIV-1 Vif's Capacity To Manipulate the Cell Cycle Is Species Specific
Edward L Evans1, Jordan T Becker1, Stephanie L Fricke1
1McArdle Laboratory for Cancer Research, Institute for Molecular Virology, & Carbone Cancer Center, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Abstract:
Cells derived from mice and other rodents exhibit profound blocks to HIV-1 virion production, reflecting species-specific incompatibilities between viral Tat and Rev proteins and essential host factors cyclin T1 (CCNT1) and exportin-1 (XPO1, also known as CRM1), respectively. To determine if mouse cell blocks other than CCNT1 and XPO1 affect HIV's postintegration stages, we studied HIV-1NL4-3 gene expression in mouse NIH 3T3 cells modified to constitutively express HIV-1-compatible versions of CCNT1 and XPO1 (3T3.CX cells). 3T3.CX cells supported both Rev-independent and Rev-dependent viral gene expression and produced relatively robust levels of virus particles, confirming that CCNT1 and XPO1 represent the predominant blocks to these stages. Unexpectedly, however, 3T3.CX cells were remarkably resistant to virus-induced cytopathic effects observed in human cell lines, which we mapped to the viral protein Vif and its apparent species-specific capacity to induce G2/M cell cycle arrest. Vif was able to mediate rapid degradation of human APOBEC3G and the PPP2R5D regulatory B56 subunit of the PP2A phosphatase holoenzyme in mouse cells, thus demonstrating that VifNL4-3's modulation of the cell cycle can be functionally uncoupled from some of its other defined roles in CUL5-dependent protein degradation. Vif was also unable to induce G2/M cell cycle arrest in other nonhuman cell types, including cells derived from nonhuman primates, leading us to propose that one or more human-specific cofactors underpin Vif's ability to modulate the cell cycle.IMPORTANCE Cells derived from mice and other rodents exhibit profound blocks to HIV-1 replication, thus hindering the development of a low-cost small-animal model for studying HIV/AIDS. Here, we engineered otherwise-nonpermissive mouse cells to express HIV-1-compatible versions of two species-specific host dependency factors, cyclin T1 (CCNT1) and exportin-1 (XPO1) (3T3.CX cells). We show that 3T3.CX cells rescue HIV-1 particle production but, unexpectedly, are completely resistant to virus-induced cytopathic effects. We mapped these effects to the viral accessory protein Vif, which induces a prolonged G2/M cell cycle arrest followed by apoptosis in human cells. Combined, our results indicate that one or more additional human-specific cofactors govern HIV-1's capacity to modulate the cell cycle, with potential relevance to viral pathogenesis in people and existing animal models.
Insights
Engineered mouse cells support HIV-1 production by expressing compatible cyclin T1 (CCNT1) and exportin-1 (XPO1). These modified cells resist HIV-induced cell damage, revealing species-specific factors in viral protein Vif
Area of Science:
- Virology
- Cell Biology
- Immunology
Background:
- Rodent cells present significant barriers to HIV-1 replication due to incompatibilities with viral proteins Tat and Rev and host factors cyclin T1 (CCNT1) and exportin-1 (XPO1).
- These species-specific blocks hinder the development of small-animal models for HIV/AIDS research.
Purpose of the Study:
- To investigate if host factors beyond CCNT1 and XPO1 impede HIV-1 postintegration stages in mouse cells.
- To characterize the resistance of engineered mouse cells to HIV-induced cytopathic effects and identify the responsible viral factor.
Main Methods:
- Generated NIH 3T3 mouse cells (3T3.CX) engineered to express HIV-1-compatible CCNT1 and XPO1.
- Assessed HIV-1NL4-3 gene expression and virion production in 3T3.CX cells.
- Mapped the cause of resistance to virus-induced cytopathic effects to the viral accessory protein Vif.
Main Results:
- 3T3.CX cells supported Rev-independent and Rev-dependent HIV-1 gene expression and produced substantial virus particles, confirming CCNT1 and XPO1 as primary blocks.
- Unexpectedly, 3T3.CX cells exhibited complete resistance to HIV-induced G2/M cell cycle arrest and cytopathic effects observed in human cells.
- HIV-1 Vif mediated degradation of human APOBEC3G and PPP2R5D in mouse cells but failed to induce cell cycle arrest in mouse or non-human primate cells.
Conclusions:
- CCNT1 and XPO1 are the main host factors limiting HIV-1 particle production in mouse cells.
- HIV-1 Vif's ability to induce G2/M cell cycle arrest is mediated by human-specific cofactors, uncoupled from its protein degradation functions.
- These findings suggest a potential role for human-specific factors in HIV pathogenesis and highlight limitations in current small-animal models.