The nucleotide receptor P2RX7 mediates ATP-induced CREB activation in human and murine monocytic cells
Monica L Gavala1, Zachary A Pfeiffer, Paul J Bertics
1Department of Biomolecular Chemistry, University of Wisconsin, Madison, WI 53706, USA.
Abstract:
Nucleotide receptors serve as sensors of extracellular ATP and are important for immune function. The nucleotide receptor P2RX7 is a cell-surface, ligand-gated cation channel that has been implicated in many diseases, including arthritis, granuloma formation, sepsis, and tuberculosis. These disorders are often exacerbated by excessive mediator release from activated macrophages in the inflammatory microenvironment. Although P2RX7 activation can modulate monocyte/macrophage-induced inflammatory events, the relevant molecular mechanisms are poorly understood. Previous studies suggest that MAPK cascades and transcriptional control via CREB-linked pathways regulate the inflammatory capacity of monocytic cells. As P2RX7 promotes MAPK activation and inflammatory mediator production, we examined the involvement MAPK-induced CREB activation in P2RX7 action. Our data reveal that stimulation of multiple monocytic cell lines with P2RX7 agonists induces rapid CREB phosphorylation. In addition, we observed a lack of nucleotide-induced CREB phosphorylation in RAW 264.7 cells expressing nonfunctional P2RX7 and a gain of nucleotide-induced CREB phosphorylation in human embryonic kidney-293 cells that heterologously express human P2RX7. Furthermore, our results indicate that P2RX7 agonist-induced CREB phosphorylation is partly mediated via Ca(2+) fluxes and the MEK/ERK system. Mechanistic analyses revealed that macrophage stimulation with a P2RX7 agonist induces CREB/CREB-binding protein complex formation, which is necessary for CREB transcriptional activation. Also, we demonstrate that P2RX7 activation induces a known CREB-dependent gene (c-fos) and that dominant-negative CREB constructs attenuate this response. These studies support the idea that P2RX7 stimulation can directly regulate protein expression that is not dependent on costimulation with other immune modulators such as LPS.
Insights
The P2RX7 receptor, a sensor of extracellular ATP, directly activates CREB phosphorylation in macrophages, influencing inflammatory gene expression independently of other immune signals.
Area of Science:
- Immunology
- Cell Biology
- Molecular Biology
Background:
- Nucleotide receptors, like P2RX7, detect extracellular ATP and are crucial for immune responses.
- P2RX7 activation is linked to inflammatory diseases driven by macrophage-released mediators.
- The precise molecular mechanisms linking P2RX7 to inflammation, particularly through transcriptional control, remain unclear.
Purpose of the Study:
- To investigate the role of MAPK-induced CREB activation in P2RX7-mediated signaling.
- To elucidate how P2RX7 activation influences inflammatory gene expression in monocytic cells.
Main Methods:
- Stimulation of monocytic cell lines with P2RX7 agonists.
- Assessing CREB phosphorylation using Western blotting.
- Utilizing cell lines with functional and non-functional P2RX7.
- Employing calcium imaging and MEK/ERK pathway inhibitors.
- Analyzing CREB/CBP complex formation and c-fos gene expression.
Main Results:
- P2RX7 agonist stimulation triggers rapid CREB phosphorylation in monocytic cells.
- Functional P2RX7 is essential for nucleotide-induced CREB phosphorylation.
- Calcium (Ca2+) fluxes and the MEK/ERK pathway mediate P2RX7-induced CREB phosphorylation.
- P2RX7 activation leads to CREB/CBP complex formation and c-fos gene induction.
Conclusions:
- P2RX7 directly regulates CREB activation and subsequent gene expression in macrophages.
- This P2RX7-mediated signaling pathway enhances inflammatory responses.
- The findings highlight a direct link between P2RX7 and inflammatory gene transcription, independent of co-stimulatory molecules like LPS.
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