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Updated: Jul 16, 2026

Proteomics to Identify Proteins Interacting with P2X2 Ligand-Gated Cation Channels
Published on: May 19, 2009
Molecular physiology of P2X receptors
1Institute of Molecular Physiology, University of Sheffield, Western Bank, Sheffield, United Kingdom. R.A.North@Sheffield.ac.uk
Abstract:
P2X receptors are membrane ion channels that open in response to the binding of extracellular ATP. Seven genes in vertebrates encode P2X receptor subunits, which are 40-50% identical in amino acid sequence. Each subunit has two transmembrane domains, separated by an extracellular domain (approximately 280 amino acids). Channels form as multimers of several subunits. Homomeric P2X1, P2X2, P2X3, P2X4, P2X5, and P2X7 channels and heteromeric P2X2/3 and P2X1/5 channels have been most fully characterized following heterologous expression. Some agonists (e.g., alphabeta-methylene ATP) and antagonists [e.g., 2',3'-O-(2,4,6-trinitrophenyl)-ATP] are strongly selective for receptors containing P2X1 and P2X3 subunits. All P2X receptors are permeable to small monovalent cations; some have significant calcium or anion permeability. In many cells, activation of homomeric P2X7 receptors induces a permeability increase to larger organic cations including some fluorescent dyes and also signals to the cytoskeleton; these changes probably involve additional interacting proteins. P2X receptors are abundantly distributed, and functional responses are seen in neurons, glia, epithelia, endothelia, bone, muscle, and hemopoietic tissues. The molecular composition of native receptors is becoming understood, and some cells express more than one type of P2X receptor. On smooth muscles, P2X receptors respond to ATP released from sympathetic motor nerves (e.g., in ejaculation). On sensory nerves, they are involved in the initiation of afferent signals in several viscera (e.g., bladder, intestine) and play a key role in sensing tissue-damaging and inflammatory stimuli. Paracrine roles for ATP signaling through P2X receptors are likely in neurohypophysis, ducted glands, airway epithelia, kidney, bone, and hemopoietic tissues. In the last case, P2X7 receptor activation stimulates cytokine release by engaging intracellular signaling pathways.
Insights
P2X receptors are ATP-gated ion channels crucial for cellular communication. Research details their structure, function, and diverse roles in neuronal and non-neuronal tissues, including immune responses and smooth muscle contraction.
Area of Science:
- Molecular and Cellular Biology
- Neuroscience
- Immunology
Background:
- P2X receptors are ligand-gated ion channels activated by extracellular ATP.
- Seven genes encode P2X receptor subunits in vertebrates, forming various homomeric and heteromeric channels.
- These receptors exhibit diverse ion permeability and are widely distributed across numerous cell types.
Purpose of the Study:
- To provide a comprehensive overview of P2X receptor structure, function, and distribution.
- To highlight the roles of P2X receptors in physiological and pathological processes.
- To discuss the molecular composition and signaling mechanisms of native P2X receptors.
Main Methods:
- Heterologous expression of P2X receptor subunits.
- Characterization of agonist and antagonist selectivity.
- Analysis of ion permeability and functional responses in various cell types.
- Investigation of native receptor composition and cellular localization.
Main Results:
- Established structures and characterized functions of several homomeric and heteromeric P2X receptors.
- Identified selective agonists and antagonists for specific P2X receptor subtypes.
- Demonstrated broad tissue distribution and diverse physiological roles, including smooth muscle function, neurotransmission, and immune cell activation.
- Revealed P2X7 receptor-mediated cytokine release via intracellular signaling pathways.
Conclusions:
- P2X receptors are critical mediators of ATP signaling with significant roles in neuronal and non-neuronal systems.
- Understanding P2X receptor subtypes and their functions is essential for developing targeted therapeutics.
- Further research into native receptor composition and signaling will elucidate complex physiological processes.
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