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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglia induce neural cell death via a proximity-dependent mechanism involving nitric oxide
Hannah M Gibbons1, Mike Dragunow
1Signal Transduction Laboratory, Department of Pharmacology and Clinical Pharmacology, The University of Auckland, Auckland, New Zealand.
Abstract:
Microglial cells play a major role in the pathogenesis of many neurological diseases by exacerbating neuronal and non-neuronal cell death, but the mechanisms involved are unclear. To investigate the microglial-neuronal interactions, we used the murine BV-2 microglial cell line and the human neuronal-like SK-N-SH neuroblastoma cell line in a co-culture system that enabled proximity-dependent interaction and communication, a trans-well system that allowed proximity-independent communication through diffusible molecules only, and a conditioned media system through which no proximity-dependent interactions or cell-to-cell communication is possible. Activation of BV-2 cells with lipopolysaccharide and interferon-gamma (LPS/IFN-gamma) decreased viability of the BV-2 cells alone and in co-cultures with SK-N-SH cells, but not SK-N-SH cells grown alone. In contrast, activation of BV-2 cells in the trans-well and conditioned media system did not have any effect on the viability of SK-N-SH cells, suggesting that microglia must be in close proximity to the neural cells to elicit cytotoxicity. To determine the molecules involved in proximity-dependent cell death, inhibitors of microglial activation were investigated. Only the specific inducible nitric oxide synthase (iNOS) inhibitor S-methylisothiourea, and hypothermia, which is known to suppress microglial iNOS expression, prevented cell death after LPS/IFN-gamma activation. These results suggest that activated microglia release nitric oxide that is, at least partially, responsible for proximity-dependent microglial-mediated neural toxicity.
Insights
Activated microglia kill nearby neural cells through nitric oxide release. This proximity-dependent neurotoxicity is crucial in neurological diseases, highlighting a key mechanism in microglial-mediated damage.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial cells are key players in neurological disease pathogenesis.
- Their role in neuronal cell death is significant but poorly understood.
- Understanding microglial-neuronal interactions is vital for disease research.
Purpose of the Study:
- To investigate the mechanisms of microglial-mediated neurotoxicity.
- To determine the role of proximity in microglial-neuronal interactions.
- To identify molecules responsible for proximity-dependent cell death.
Main Methods:
- Utilized co-culture systems: proximity-dependent, trans-well (diffusible molecules only), and conditioned media (no cell contact).
- Employing murine BV-2 microglial and human SK-N-SH neuroblastoma cell lines.
- Investigated the effect of lipopolysaccharide and interferon-gamma (LPS/IFN-gamma) activation and specific inhibitors.
Main Results:
- Activated microglia reduced viability of co-cultured neural cells, but only when in close proximity.
- Trans-well and conditioned media systems showed no effect on neural cell viability.
- Inhibition of inducible nitric oxide synthase (iNOS) and hypothermia prevented microglial-mediated cell death.
Conclusions:
- Microglial-mediated neural toxicity is proximity-dependent.
- Nitric oxide released by activated microglia is a key factor in this toxicity.
- Findings suggest iNOS-derived nitric oxide contributes to microglial-induced neural damage in neurological conditions.

