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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglial NMDA receptors drive pro-inflammatory responses via PARP-1/TRMP2 signaling
Prajwal Raghunatha1,2, Amir Vosoughi2, Tiina M Kauppinen1,2,3
1Department of Pharmacology and Therapeutics, Rady Faculty of Health Sciences, Max Rady College of Medicine, University of Manitoba, Winnipeg, Manitoba, Canada.
Abstract:
Chronic neuroinflammation driven by microglia is a characteristic feature associated with numerous neurodegenerative diseases. While acute inflammation can assist with recovery and repair, prolonged microglial pro-inflammatory responses are known to exacerbate neurodegenerative processes. Yet, detrimental outcomes of extended microglial activation are counterbalanced by beneficial outcomes including phagocytosis and release of trophic factors promoting neuronal viability. Our past work has shown that the nuclear enzyme poly(ADP-ribose) polymerase-1 (PARP-1) is a key signaling hub driving pro-inflammatory microglia responses, but the signaling pathway maintaining PARP-1 activation remains elusive. While best understood for its role in promoting DNA repair, our group has shown that PARP-1 activity can be stimulated via Ca2+ influx-dependent ERK1/2-mediated phosphorylation. However, to date, the route of Ca2+ entry responsible for stimulating PARP-1 has not been identified. A likely candidate is via Ca2+ -permeable transient receptor potential melastatin 2 (TRPM2) channels activated downstream of PARP-1 in a cascade that involves ADP-ribose (ADPR) production by poly(ADP-ribose) glycohydrolase (PARG). Here we demonstrate that NMDA receptor (NMDAR) stimulation in primary cultured microglia induces their proliferation, morphological activation and release of pro-inflammatory mediators. These responses were contingent on the recruitment of PARP-1, PARG and Ca2+ permeable TRPM2 channels. Furthermore, we show that Ca2+ influx is necessary to activate PARP-1/TRPM2 signaling, in an ERK1/2-dependent, but DNA damage independent, manner. Our findings, showing that PARP-1/TRPM2 mediate the pro-inflammatory effects of NMDAR stimulation, provides a unifying mechanism linking elevated glutamate levels to chronic neuroinflammation.
Insights
Chronic neuroinflammation involves microglia, but the signaling pathway for poly(ADP-ribose) polymerase-1 (PARP-1) activation remained unclear. This study reveals NMDA receptor stimulation activates PARP-1 via calcium influx and TRPM2 channels, linking glutamate to neuroinflammation.
Area of Science:
- Neuroscience
- Cell Biology
- Immunology
Background:
- Chronic neuroinflammation, driven by microglia, is implicated in neurodegenerative diseases.
- Prolonged microglial activation can worsen neurodegeneration, despite some beneficial roles.
- Poly(ADP-ribose) polymerase-1 (PARP-1) is a key mediator of pro-inflammatory microglial responses, but its activation pathway is not fully understood.
Purpose of the Study:
- To identify the signaling pathway responsible for activating PARP-1 in microglia.
- To investigate the role of calcium (Ca2+) influx and TRPM2 channels in PARP-1 activation.
- To elucidate the mechanism linking NMDA receptor (NMDAR) stimulation to microglial pro-inflammatory responses.
Main Methods:
- Primary cultured microglia were stimulated with NMDA receptor agonists.
- The study utilized techniques to assess microglial proliferation, morphological changes, and mediator release.
- Involvement of PARP-1, PARG, TRPM2 channels, Ca2+ influx, and ERK1/2 signaling was investigated.
Main Results:
- NMDA receptor stimulation induced microglial proliferation, activation, and pro-inflammatory mediator release.
- These effects were dependent on the recruitment of PARP-1, PARG, and Ca2+-permeable TRPM2 channels.
- Ca2+ influx was essential for activating PARP-1/TRPM2 signaling in an ERK1/2-dependent, DNA damage-independent manner.
Conclusions:
- PARP-1 and TRPM2 channels mediate the pro-inflammatory effects of NMDA receptor stimulation in microglia.
- This study uncovers a unifying mechanism linking elevated glutamate levels to chronic neuroinflammation.
- The findings provide a potential therapeutic target for neurodegenerative diseases characterized by neuroinflammation.
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