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Updated: Jun 7, 2026

Proteomics to Identify Proteins Interacting with P2X2 Ligand-Gated Cation Channels
Published on: May 18, 2009
Experimental characterization and mathematical modeling of P2X7 receptor channel gating
Zonghe Yan1, Anmar Khadra, Shuo Li
1Section on Cellular Signaling, Program in Developmental Neuroscience, National Institute of Child Health and Human Development, and Laboratory of Biological Modeling, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, Maryland 20892-4510, USA.
Abstract:
The P2X7 receptor is a trimeric channel with three binding sites for ATP, but how the occupancy of these sites affects gating is still not understood. Here we show that naive receptors activated and deactivated monophasically at low and biphasically at higher agonist concentrations. Both phases of response were abolished by application of Az10606120, a P2X7R-specific antagonist. The slow secondary growth of current in the biphasic response coincided temporally with pore dilation. Repetitive stimulation with the same agonist concentration caused sensitization of receptors, which manifested as a progressive increase in the current amplitude, accompanied by a slower deactivation rate. Once a steady level of the secondary current was reached, responses at high agonist concentrations were no longer biphasic but monophasic. Sensitization of receptors was independent of Na(+) and Ca(2+) influx and ∼30 min washout was needed to reestablish the initial gating properties. T15E- and T15K-P2X7 mutants showed increased sensitivity for agonists, responded with monophasic currents at all agonist concentrations, activated immediately with dilated pores, and deactivated slowly. The complex pattern of gating exhibited by wild-type channels can be accounted for by a Markov state model that includes negative cooperativity of agonist binding to unsensitized receptors caused by the occupancy of one or two binding sites, opening of the channel pore to a low conductance state when two sites are bound, and sensitization with pore dilation to a high conductance state when three sites are occupied.
Insights
The P2X7 receptor
Area of Science:
- Ion channel function
- Molecular pharmacology
- Cellular signaling
Background:
- The P2X7 receptor (P2X7R) is a trimeric ATP-gated ion channel.
- Its gating mechanism, particularly how ATP binding site occupancy influences channel activity, remains unclear.
Purpose of the Study:
- To elucidate the gating properties of the P2X7 receptor in response to varying ATP concentrations.
- To investigate the role of receptor sensitization and pore dilation in P2X7R function.
Main Methods:
- Electrophysiological recordings of P2X7R currents.
- Application of a P2X7R-specific antagonist (Az10606120).
- Characterization of wild-type and mutant P2X7R channels.
Main Results:
- P2X7R gating is concentration-dependent, exhibiting monophasic activation at low ATP and biphasic activation at high ATP.
- High agonist concentrations induce pore dilation and receptor sensitization, altering current amplitude and deactivation rates.
- Mutant P2X7R channels display altered sensitivity and gating kinetics, supporting a model of negative cooperativity and sensitization.
Conclusions:
- A Markov state model explains P2X7R gating, incorporating negative cooperativity, distinct conductance states, and sensitization.
- Receptor sensitization leads to a high-conductance state with pore dilation upon maximal ATP binding.
- Understanding P2X7R gating is crucial for its role in cellular signaling and potential therapeutic targeting.
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