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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Purinergic receptors modulate MAP kinases and transcription factors that control microglial inflammatory gene
Yvonne D Potucek1, Jessica M Crain, Jyoti J Watters
1Department of Comparative Biosciences and Program in Cellular and Molecular Biology, University of Wisconsin, Madison, WI 53706, United States.
Abstract:
Following many types of brain injury, microglial cell hyperactivation, and the subsequent release of neurotoxic mediators into the CNS contributes to inflammation and neuronal death. Among the proteins important for modulating the inflammatory function of microglia are the P2 purinergic receptors for which extracellular adenine nucleotides, such as ATP, are ligands. Because adenine nucleotides are abundant in the extracellular fluid following brain injury, ATP may represent an important component of the inflammatory microenvironment controlling microglial cell function. Although much work has been done examining the mechanisms whereby adenine nucleotides stimulate inflammatory mediator production, little is known concerning their complementary inhibitory effects. In this review we will focus on what is currently known about the microglial inhibitory effects of adenine nucleotides in the context of inflammation and summarize the current knowledge of their effects via purinergic receptors on microglial signal transduction pathways including transcription factors important for controlling inflammatory gene expression. The relevance of these mechanisms to microglial inflammatory function and physiology will be discussed. Further, we present data here illustrating that MAP kinase signal transduction pathways are altered in activated microglia that have been primed with or co-exposed to adenine nucleotides; effects that are stimulus- and MAPK pathway-specific. We also demonstrate the ability of P2X7 receptors to stimulate the phosphorylation of CREB, a putative inhibitory transcription factor in microglia. Together, these data indicate that ATP may be an endogenous inhibitor or neuroprotective molecule decreasing the inflammatory capacity of microglia.
Insights
Adenine nucleotides, like ATP, can inhibit microglial cell activation after brain injury. This suggests ATP may be a neuroprotective molecule, reducing inflammation and neuronal death in the central nervous system (CNS).
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglial hyperactivation post-brain injury releases neurotoxic mediators, causing inflammation and neuronal death.
- P2 purinergic receptors on microglia bind extracellular adenine nucleotides, such as ATP, influencing their inflammatory function.
- Adenine nucleotides are abundant in the brain post-injury, potentially modulating microglial responses.
Purpose of the Study:
- To review the inhibitory effects of adenine nucleotides on microglial inflammatory function.
- To summarize the impact of purinergic receptors on microglial signal transduction pathways.
- To investigate the role of ATP as a potential endogenous inhibitor of microglial inflammation.
Main Methods:
- Literature review of adenine nucleotide effects on microglial inflammation.
- Analysis of purinergic receptor signaling pathways in microglia.
- Experimental data on MAP kinase pathways and CREB phosphorylation in activated microglia exposed to adenine nucleotides.
Main Results:
- Adenine nucleotides, particularly ATP, can exert inhibitory effects on microglial inflammatory responses.
- MAP kinase (MAPK) signal transduction pathways are altered in activated microglia by adenine nucleotides in a stimulus- and pathway-specific manner.
- P2X7 receptors stimulate CREB phosphorylation, indicating a potential inhibitory role for this pathway.
Conclusions:
- ATP may act as an endogenous neuroprotective molecule by decreasing microglial inflammatory capacity.
- Understanding these inhibitory mechanisms is crucial for developing therapies for brain injury.
- Targeting purinergic signaling offers a potential strategy to mitigate neuroinflammation.
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