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Updated: Mar 16, 2026

Identification of EcoHIV-Infected Cells in Microglia-Manipulated Transgenic Mice
Published on: December 20, 2024
Development and characterization of a human microglia cell model of HIV-1 infection
Pratima Rawat1, Stephen A Spector2,3
1Department of Pediatrics, Division of Infectious Diseases, University of California San Diego, La Jolla, CA, 92093-0672, USA.
Abstract:
Microglia cells are the major reservoir of HIV-1 (HIV) within the CNS. However, current models using transformed cell lines are not representative of primary microglia and fetal brain samples for isolation of primary human microglia (HMG) are increasingly difficult to obtain. Here, we describe a monocyte-derived microglia (MMG) cell model of HIV infection that recapitulates infection of primary HMG. CD14+ cells isolated from healthy donors were cultured with M-CSF, beta-nerve growth factor, GM-CSF, and CCL2, and compared to HMG. MMG and HMG cells were infected with HIV and viral replication was detected by p24 antigen. Both MMG and HMG cells were found to acquire spindle shape with few branched or unbranched processes at their ends during the second week in culture and both were found to be CD11b+/ CD11c+/ CD14+/ CD45+/ CD195+/ HLADRlow/ CD86low/ CD80+. Whereas hT-Hμglia and HMC3 transformed cell lines are deficient in human microglia signature genes (C1Q, GAS6, GPR34, MERTK, PROS1, and P2RY12), MMG cells expressed all of these genes. Additionally, MMG expressed all the microglia signature miRNA (miR-99a, miR125b-5p, and miR-342-3p). Both MMG and HMG produced ROS and phagocytosed labeled zymosan particles upon PMA stimulation. MMG and HMG infected with HIV produced equivalent levels of HIV p24 antigen in culture supernatants for 30 days post-infection. Thus, we have developed and characterized a microglia cell model of HIV infection derived from primary monocytes that recapitulates the phenotypic and molecular properties of HMG, is superior to transformed cell lines, and has similar HIV replication kinetics to HMG.
Insights
A new monocyte-derived microglia (MMG) cell model accurately mimics primary human microglia (HMG) for HIV-1 (HIV) research. This MMG model shows similar HIV replication to HMG, offering a superior alternative to current cell lines.
Area of Science:
- Neuroscience
- Immunology
- Virology
Background:
- Microglia are key reservoirs for HIV-1 in the central nervous system.
- Existing transformed cell lines poorly represent primary microglia.
- Obtaining primary human microglia is challenging.
Purpose of the Study:
- To develop and characterize a novel monocyte-derived microglia (MMG) cell model for HIV-1 infection studies.
- To compare the MMG model to primary human microglia (HMG) and transformed cell lines.
- To validate the MMG model's ability to recapitulate HIV-1 infection.
Main Methods:
- Isolation of CD14+ monocytes and differentiation into MMG using specific cytokines (M-CSF, GM-CSF, beta-nerve growth factor, CCL2).
- Phenotypic and molecular characterization of MMG and HMG (cell surface markers, gene and miRNA expression).
- HIV-1 infection of MMG and HMG, with viral replication assessed by p24 antigen detection over 30 days.
Main Results:
- MMG cells exhibited morphological and phenotypic characteristics similar to HMG, expressing key microglia signature genes and miRNAs.
- MMG cells demonstrated comparable ROS production and phagocytic activity to HMG.
- HIV-1 replication kinetics in MMG cells mirrored those observed in HMG cells, with equivalent p24 antigen production.
Conclusions:
- A novel MMG cell model effectively recapitulates primary human microglia (HMG) properties and HIV-1 infection.
- The MMG model is a more representative and accessible alternative to transformed cell lines for HIV-1 CNS research.
- This model provides a valuable tool for studying HIV-1 pathogenesis and therapeutic strategies in the CNS.
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