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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Oxidative metabolites are involved in polyamine-induced microglial cell death
1Laboratory of Molecular Pharmacology, Kanazawa University Graduate School of Natural Science and Technology, Kakuma-machi, Japan.
Abstract:
Pathological activation of microglia, which reside quiescently in physiological CNS, is associated with various neurodegenerative diseases. Endogenous polyamines, spermidine and spermine, are known to be activators of cell proliferation and differentiation. We previously reported that both spermidine and spermine induce dose-dependent cell death in cultured rat brain microglia at a submicromolar concentration range via apoptotic process, whereas cultured astrocytes were less sensitive to these polyamines [Neuroscience 120 (2003) 961]. These polyamine effects were observed only in the presence of fetal bovine serum. In the present study we examined further the mechanism of polyamine-induced microglial cell death. Amine oxidase in fetal bovine serum produces hydrogen peroxide and an aminoaldehyde from spermine, and the latter generates acrolein spontaneously. Acrolein was found to be much more toxic to microglia than to astrocytes and the effective concentration of acrolein was similar to that of spermine, whereas hydrogen peroxide was marginally toxic. Aminoguanidine, an inhibitor of amine oxidase, blocked the toxic effects of spermine on microglia. Spermine cytotoxicity was also prevented by antioxidant reagents; glutathione (reduced form), cysteine, and N-acetylcysteine. These results suggest that polyamine-induced apoptotic cell death of microglia is triggered by an oxidative stress with acrolein, which is produced by amine oxidase from polyamine. The different toxicities of polyamine between two glial cells may regulate the balance of glial activation in some pathological conditions of CNS.
Insights
Polyamines like spermine trigger microglial cell death through oxidative stress. Acrolein, produced by amine oxidase, is the key toxic agent, impacting microglia more than astrocytes in the central nervous system.
Area of Science:
- Neuroscience
- Cell Biology
- Toxicology
Background:
- Microglial activation is implicated in neurodegenerative diseases.
- Polyamines (spermidine, spermine) influence cell proliferation and differentiation.
- Previous work showed polyamines induce microglial apoptosis, with less effect on astrocytes.
Purpose of the Study:
- To elucidate the mechanism of polyamine-induced microglial cell death.
- To investigate the role of fetal bovine serum components in polyamine toxicity.
- To compare the differential toxicity of polyamines and their byproducts on microglia and astrocytes.
Main Methods:
- Cultured rat brain microglia and astrocytes were used.
- Exposure to spermine in the presence of fetal bovine serum.
- Assay of hydrogen peroxide and acrolein production.
- Treatment with amine oxidase inhibitors and antioxidant reagents.
- Assessment of cell viability and apoptosis.
Main Results:
- Amine oxidase in fetal bovine serum converts spermine to hydrogen peroxide and an aminoaldehyde, which generates toxic acrolein.
- Acrolein demonstrated significantly higher toxicity to microglia than astrocytes.
- Hydrogen peroxide showed minimal toxicity.
- Aminoguanidine (amine oxidase inhibitor) and antioxidants (glutathione, cysteine, N-acetylcysteine) protected microglia from spermine-induced death.
Conclusions:
- Polyamine-induced microglial apoptosis is mediated by oxidative stress from acrolein, a byproduct of amine oxidase activity.
- Differential acrolein toxicity between microglia and astrocytes may influence glial cell balance in CNS pathologies.
- Findings suggest a novel mechanism contributing to neuroinflammation and neurodegeneration.
