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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Choroid plexus macrophages proliferate and release toxic factors in response to feline immunodeficiency virus
D C Bragg1, L C Hudson, Y H Liang
1Neurobiology Curriculum and Department of Neurology, University of North Carolina, Chapel Hill 27599, USA.
Abstract:
Recent observations have suggested that lentiviruses stimulate the proliferation and activation of microglia. A similar effect within the dense macrophage population of the choroid plexus could have significant implications for trafficking of virus and inflammatory cells into the brain. To explore this possibility, we cultured fetal feline macrophages and examined their response to feline immunodeficiency virus (FIV) or the T-cell-derived protein, recombinant human CD40-ligand trimer (rhuCD40-L). The rhCD40-L was the most potent stimulus for macrophage proliferation, often inducing a dramatic increase in macrophage density. Exposure to FIV resulted in a small increase in the number of macrophages and macrophage nuclei labeled with bromodeoxyuridine. The increase in macrophage density after FIV infection also correlated with an increase in neurotoxic activity of the macrophage-conditioned medium. Starting at 16-18 weeks postinfection, well after the peak of viremia, a similar toxic activity was detected in cerebrospinal fluid (CSF) from FIV-infected cats. Toxicity in the CSF increased over time and was paralleled by strong CD18 staining of macrophages/microglia in the choroid plexus and adjacent parenchyma. These results suggest that lentiviral infection of the choroid plexus can induce a toxic inflammatory response that is fueled by local macrophage proliferation. Together with the observation of increasing toxic activity in the CSF and increased CD18 staining in vivo, these observations suggest that choroid plexus macrophages may contribute to an inflammatory cascade in the brain that progresses independently of systemic and CSF viral load.
Insights
Feline immunodeficiency virus (FIV) infection stimulates feline choroid plexus macrophage proliferation, leading to increased neurotoxic activity in cerebrospinal fluid (CSF) and potentially driving brain inflammation.
Area of Science:
- Neuroimmunology
- Virology
- Cell Biology
Background:
- Lentiviruses, such as feline immunodeficiency virus (FIV), are known to affect microglia.
- The choroid plexus contains a dense macrophage population, crucial for brain homeostasis and immune surveillance.
Purpose of the Study:
- To investigate the impact of FIV infection on choroid plexus macrophages.
- To determine if FIV induces macrophage proliferation and neurotoxic activity within the choroid plexus.
Main Methods:
- Primary fetal feline macrophage cultures were exposed to FIV and recombinant human CD40-ligand (rhuCD40-L).
- Macrophage proliferation was assessed using bromodeoxyuridine labeling.
- Neurotoxic activity of conditioned media and cerebrospinal fluid (CSF) was measured.
- In vivo CD18 staining was used to identify macrophages/microglia in FIV-infected cats.
Main Results:
- rhuCD40-L significantly increased macrophage proliferation.
- FIV exposure caused a modest increase in macrophage proliferation and neurotoxic activity in vitro.
- Neurotoxic activity was detected in CSF of FIV-infected cats starting 16-18 weeks post-infection.
- Increased CD18 staining in the choroid plexus and brain parenchyma correlated with CSF toxicity.
Conclusions:
- FIV infection stimulates choroid plexus macrophage proliferation, contributing to neurotoxic activity.
- This macrophage-driven inflammation in the choroid plexus may progress independently of viral load.
- Choroid plexus macrophages play a role in the inflammatory cascade within the brain during lentiviral infection.
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