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Updated: Aug 14, 2025

Characterization and Isolation of Mouse Primary Microglia by Density Gradient Centrifugation
Published on: February 16, 2018
Microglial reprogramming by Hv1 antagonism protects neurons from inflammatory and glutamate toxicity
Diego R Hernandez-Espinosa1,2, Jenna R Gale1,2, Mia G Scrabis1,2
1Department of Neurobiology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, USA.
Abstract:
Although the precise mechanisms determining the neurotoxic or neuroprotective activation phenotypes in microglia remain poorly characterized, metabolic changes in these cells appear critical for these processes. As cellular metabolism can be tightly regulated by changes in intracellular pH, we tested whether pharmacological targeting of the microglial voltage-gated proton channel 1 (Hv1), an important regulator of intracellular pH, is critical for activated microglial reprogramming. Using a mouse microglial cell line and mouse primary microglia cultures, either alone, or co-cultured with rat cerebrocortical neurons, we characterized in detail the microglial activation profile in the absence and presence of Hv1 inhibition. We observed that activated microglia neurotoxicity was mainly attributable to the release of tumor necrosis factor alpha, reactive oxygen species, and zinc. Strikingly, pharmacological inhibition of Hv1 largely abrogated inflammatory neurotoxicity not only by reducing the production of cytotoxic mediators but also by promoting neurotrophic molecule production and restraining excessive phagocytic activity. Importantly, the Hv1-sensitive change from a pro-inflammatory to a neuroprotective phenotype was associated with metabolic reprogramming, particularly via a boost in NADH availability and a reduction in lactate. Most critically, Hv1 antagonism not only reduced inflammatory neurotoxicity but also promoted microglia-dependent neuroprotection against a separate excitotoxic injury. Our results strongly suggest that Hv1 blockers may provide an important therapeutic tool against a wide range of inflammatory neurodegenerative disorders.
Insights
Targeting the voltage-gated proton channel 1 (Hv1) in microglia shifts them from a neurotoxic to a neuroprotective state. Hv1 inhibition reduces inflammation and promotes neuroprotection, offering a potential therapy for neurodegenerative diseases.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Microglial activation phenotypes (neurotoxic vs. neuroprotective) are poorly understood.
- Metabolic changes and intracellular pH regulation are critical in microglial function.
- Voltage-gated proton channel 1 (Hv1) regulates intracellular pH in cells.
Purpose of the Study:
- To investigate if pharmacological inhibition of Hv1 can reprogram activated microglia towards a neuroprotective phenotype.
- To determine the role of Hv1 in regulating microglial-mediated neurotoxicity and neuroprotection.
Main Methods:
- Utilized mouse microglial cell lines and primary cultures, co-cultured with neurons.
- Characterized microglial activation profiles with and without Hv1 inhibition.
- Analyzed the release of cytotoxic mediators, neurotrophic factors, and metabolic changes (NADH, lactate).
Main Results:
- Hv1 inhibition significantly reduced microglial neurotoxicity by decreasing tumor necrosis factor alpha, reactive oxygen species, and zinc release.
- Hv1 blockade promoted neurotrophic molecule production and reduced excessive phagocytosis.
- Inhibition of Hv1 induced metabolic reprogramming, increasing NADH availability and decreasing lactate.
- Hv1 antagonism provided neuroprotection against both inflammatory and excitotoxic injuries.
Conclusions:
- Pharmacological targeting of Hv1 effectively reprograms microglia from a pro-inflammatory, neurotoxic state to a neuroprotective one.
- Hv1 inhibition represents a promising therapeutic strategy for inflammatory neurodegenerative disorders.
- Metabolic reprogramming, particularly NADH availability and lactate levels, is crucial for Hv1-mediated microglial phenotype switching.

