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Updated: Mar 16, 2026

Phagosome Migration and Velocity Measured in Live Primary Human Macrophages Infected with HIV-1
Published on: September 5, 2016
Long-term HIV-1 infection induces an antiviral state in primary macrophages
Maria Pujantell1, Roger Badia1, Cristina Ramirez1
1AIDS Research Institute - IrsiCaixa and Health Research Institute Germans Trias i Pujol (IGTP), Hospital Germans Trias i Pujol, Universitat Autònoma de Barcelona, Badalona, Spain.
Abstract:
HIV-1 infection is thought to impair type I interferon (IFN-I) production in macrophages, a cell type that is also relatively resistant to HIV-1 cytotoxic effects. Here, we show that monocyte differentiation into macrophages by M-CSF led to cell proliferation and susceptibility to HIV-1 infection that induced cell cycle arrest and increased cell death. Established HIV-1 infection of monocyte-derived macrophages induced the upregulation of the pattern recognition receptors MDA5 and Rig-I that serve as virus sensors; production of interferon-β, and transcription of interferon-stimulated genes including CXCL10. Infected macrophages showed increased expression of p21 and subsequent inactivation of cyclin-CDK2 activity leading to a hypo-phosphorylated active retinoblastoma protein (pRb) and deactivation of E2F1-dependent transcription and CDK1 downregulation. Additionally, HIV-1 infection limited deoxynucleotide pool by downregulation of the ribonucleotide reductase subunit R2 (RNR2) and reactivation of the HIV-1 restriction factor SAMHD1 together with increased cell death. In conclusion, HIV-1 induced an innate antiviral mechanism associated to IFN-I production, interferon stimulated gene activation, and p21-mediated G2/M arrest leading to elevated levels of cell death in monocyte derived macrophages. Upregulation of MDA5 and Rig-I may serve as targets for the development of antiviral strategies leading to the elimination of HIV-1 infected cells.
Insights
HIV-1 infection triggers macrophages to activate antiviral defenses, including interferon production and cell cycle arrest, ultimately leading to increased cell death. Targeting viral sensors like MDA5 and Rig-I may offer new HIV-1 treatment strategies.
Area of Science:
- Immunology
- Virology
- Cell Biology
Background:
- Macrophages are crucial in HIV-1 infection but their response to the virus is not fully understood.
- HIV-1 is thought to suppress type I interferon (IFN-I) production in macrophages.
Purpose of the Study:
- To investigate the impact of HIV-1 infection on monocyte-derived macrophages (MDMs).
- To elucidate the innate antiviral mechanisms induced by HIV-1 in MDMs.
Main Methods:
- Monocyte differentiation into macrophages using M-CSF.
- HIV-1 infection of MDMs.
- Analysis of cell cycle regulators (p21, CDK2, pRb, E2F1, CDK1).
- Assessment of interferon-stimulated genes (ISGs) and restriction factors (SAMHD1, RNR2).
Main Results:
- HIV-1 infection induced cell cycle arrest and increased cell death in MDMs.
- Upregulation of pattern recognition receptors (MDA5, Rig-I), IFN-β production, and ISG transcription (e.g., CXCL10).
- HIV-1 infection led to p21-mediated G2/M arrest, limited deoxynucleotide pools, and reactivated SAMHD1.
Conclusions:
- HIV-1 infection activates innate antiviral responses in macrophages, including IFN-I production and p21-mediated cell cycle arrest, resulting in elevated cell death.
- Upregulated MDA5 and Rig-I present potential therapeutic targets for HIV-1 elimination strategies.
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