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A Thin-skull Window Technique for Chronic Two-photon In vivo Imaging of Murine Microglia in Models of Neuroinflammation
Published on: September 19, 2010
Microglia proliferation underlies synaptic dysfunction in the prefrontal cortex: implications for the pathogenesis of
Hailong Li1, Kristen A McLaurin1, Charles F Mactutus1
1Cognitive and Neural Science Program, Department of Psychology, University of South Carolina, Barnwell College, 1512 Pendleton Street, Columbia, SC, 29208, USA.
Abstract:
Microglia, which are productively infected by HIV-1, are critical for brain development and maturation, as well as synaptic plasticity. The pathophysiology of HIV-infected microglia and their role in the pathogenesis of HIV-1-associated neurocognitive and affective alterations, however, remains understudied. Three complementary aims were undertaken to critically address this knowledge gap. First, the expression of HIV-1 mRNA in the dorsolateral prefrontal cortex of postmortem HIV-1 seropositive individuals with HAND was investigated. Utilization of immunostaining and/or RNAscope multiplex fluorescent assays revealed prominent HIV-1 mRNA in microglia of postmortem HIV-1 seropositive individuals with HAND. Second, measures of microglia proliferation and neuronal damage were evaluated in chimeric HIV (EcoHIV) rats. Eight weeks after EcoHIV inoculation, enhanced microglial proliferation was observed in the medial prefrontal cortex (mPFC) of EcoHIV rats, evidenced by an increased number of cells co-localized with both Iba1 + and Ki67 + relative to control animals. Neuronal damage in EcoHIV infected rats was evidenced by pronounced decreases in both synaptophysin and postsynaptic density protein 95 (PSD-95), markers of presynaptic and postsynaptic damage, respectively. Third, regression analyses were conducted to evaluate whether microglia proliferation mechanistically underlies neuronal damage in EcoHIV and control animals. Indeed, microglia proliferation accounted for 42-68.6% of the variance in synaptic dysfunction. Collectively, microglia proliferation induced by chronic HIV-1 viral protein exposure may underlie the profound synaptodendritic alterations in HIV-1. Understanding how microglia are involved in the pathogenesis of HAND and HIV-1-associated affective disorders affords a key target for the development of novel therapeutics.
Insights
Microglia infected with HIV-1 drive neuroinflammation and synaptic damage, contributing to HIV-associated neurocognitive disorders (HAND). Targeting microglial proliferation offers a potential therapeutic strategy for HAND.
Area of Science:
- Neuroscience
- Immunology
- Virology
Background:
- Microglia are critical for brain function but their role in HIV-1 infection remains understudied.
- HIV-1 infection impacts microglia, potentially leading to neurocognitive and affective alterations.
Purpose of the Study:
- Investigate HIV-1 mRNA expression in microglia of individuals with HAND.
- Evaluate microglial proliferation and neuronal damage in an HIV-1 rat model.
- Determine the mechanistic link between microglial proliferation and synaptic dysfunction.
Main Methods:
- Postmortem analysis of dorsolateral prefrontal cortex using immunostaining and RNAscope.
- Chimeric HIV (EcoHIV) rat model to assess microglial proliferation (Iba1+, Ki67+) and neuronal damage (synaptophysin, PSD-95).
- Regression analyses to correlate microglial proliferation with synaptic dysfunction.
Main Results:
- HIV-1 mRNA was detected in microglia of HAND patients.
- EcoHIV rats showed increased microglial proliferation and significant neuronal damage (decreased synaptophysin and PSD-95).
- Microglial proliferation explained 42-68.6% of the variance in synaptic dysfunction.
Conclusions:
- Microglial proliferation induced by chronic HIV-1 exposure contributes to synaptodendritic alterations in HIV-1.
- Understanding microglia's role in HAND pathogenesis is crucial for developing new therapeutics.
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