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Updated: May 10, 2026

Quantification of Cerebral Vascular Architecture using Two-photon Microscopy in a Mouse Model of HIV-induced Neuroinflammation
Published on: January 12, 2016
HIV-1 Tat protein increases microglial outward K(+) current and resultant neurotoxic activity
Jianuo Liu1, Peng Xu, Cory Collins
1Neurophysiology Laboratory, Department of Pharmacology and Experimental Neuroscience, University of Nebraska Medical Center, Omaha, Nebraska, USA. jnliu@unmc.edu
Abstract:
Microglia plays a crucial role in the pathogenesis of HIV-1-associated neurocognitive disorders. Increasing evidence indicates the voltage-gated potassium (Kv) channels are involved in the regulation of microglia function, prompting us to hypothesize Kv channels may also be involved in microglia-mediated neurotoxic activity in HIV-1-infected brain. To test this hypothesis, we investigated the involvement of Kv channels in the response of microglia to HIV-1 Tat protein. Treatment of rat microglia with HIV-1 Tat protein (200 ng/ml) resulted in pro-inflammatory microglial activation, as indicated by increases in TNF-α, IL-1β, reactive oxygen species, and nitric oxide, which were accompanied by enhanced outward K(+) current and Kv1.3 channel expression. Suppression of microglial Kv1.3 channel activity, either with Kv1.3 channel blockers Margatoxin, 5-(4-Phenoxybutoxy)psoralen, or broad-spectrum K(+) channel blocker 4-Aminopyridine, or by knockdown of Kv1.3 expression via transfection of microglia with Kv1.3 siRNA, was found to abrogate the neurotoxic activity of microglia resulting from HIV-1 Tat exposure. Furthermore, HIV-1 Tat-induced neuronal apoptosis was attenuated with the application of supernatant collected from K(+) channel blocker-treated microglia. Lastly, the intracellular signaling pathways associated with Kv1.3 were investigated and enhancement of microglial Kv1.3 was found to correspond with an increase in Erk1/2 mitogen-activated protein kinase activation. These data suggest targeting microglial Kv1.3 channels may be a potential new avenue of therapy for inflammation-mediated neurological disorders.
Insights
Targeting Kv1.3 channels in microglia may treat HIV-1 neuroinflammation. Blocking Kv1.3 channels reduced neurotoxic activity and neuronal apoptosis caused by HIV-1 Tat protein.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Microglia are key players in HIV-1-associated neurocognitive disorders.
- Voltage-gated potassium (Kv) channels regulate microglia function.
- Kv channels involvement in microglia-mediated neurotoxicity in HIV-1 infection is hypothesized.
Purpose of the Study:
- To investigate the role of Kv channels in microglia response to HIV-1 Tat protein.
- To determine if Kv1.3 channel activity mediates neurotoxic effects of HIV-1 Tat.
- To explore Kv1.3-associated intracellular signaling pathways.
Main Methods:
- Rat microglia were treated with HIV-1 Tat protein.
- Kv1.3 channel activity was suppressed using specific blockers (Margatoxin, 5-(4-Phenoxybutoxy)psoralen) or siRNA.
- Neuroinflammatory markers (TNF-α, IL-1β, ROS, NO) and Kv1.3 expression were measured.
- Neuronal apoptosis was assessed.
- Erk1/2 mitogen-activated protein kinase activation was analyzed.
Main Results:
- HIV-1 Tat induced microglial activation, increased outward K(+) current, and enhanced Kv1.3 expression.
- Suppression of Kv1.3 activity abrogated HIV-1 Tat-induced microglia neurotoxicity.
- HIV-1 Tat-induced neuronal apoptosis was reduced by blocking Kv channels.
- Kv1.3 enhancement correlated with increased Erk1/2 activation.
Conclusions:
- Kv1.3 channels are involved in microglia-mediated neurotoxicity in HIV-1 infection.
- Targeting microglial Kv1.3 channels represents a potential therapeutic strategy for HIV-1-associated neurological disorders.
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