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Updated: Aug 6, 2025

Proteomics to Identify Proteins Interacting with P2X2 Ligand-Gated Cation Channels
Published on: May 18, 2009
Ion permeation pathway within the internal pore of P2X receptor channels
Stephanie W Tam1, Kate Huffer1,2, Mufeng Li1
1Molecular Physiology and Biophysics Section, Porter Neuroscience Research Center, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, United States.
Abstract:
P2X receptor channels are trimeric ATP-activated ion channels expressed in neuronal and non-neuronal cells that are attractive therapeutic targets for human disorders. Seven subtypes of P2X receptor channels have been identified in mammals that can form both homomeric and heteromeric channels. P2X1-4 and P2X7 receptor channels are cation-selective, whereas P2X5 has been reported to have both cation and anion permeability. P2X receptor channel structures reveal that each subunit is comprised of two transmembrane helices, with both N-and C-termini on the intracellular side of the membrane and a large extracellular domain that contains the ATP binding sites at subunit interfaces. Recent structures of ATP-bound P2X receptors with the activation gate open reveal the unanticipated presence of a cytoplasmic cap over the central ion permeation pathway, leaving lateral fenestrations that may be largely buried within the membrane as potential pathways for ions to permeate the intracellular end of the pore. In the present study, we identify a critical residue within the intracellular lateral fenestrations that is readily accessible to thiol-reactive compounds from both sides of the membrane and where substitutions influence the relative permeability of the channel to cations and anions. Taken together, our results demonstrate that ions can enter or exit the internal pore through lateral fenestrations that play a critical role in determining the ion selectivity of P2X receptor channels.
Insights
Researchers identified a key residue in P2X receptor channels. This residue within lateral fenestrations controls ion selectivity, impacting potential therapeutic targets for human disorders.
Area of Science:
- Molecular biology
- Biophysics
- Pharmacology
Background:
- P2X receptors are trimeric ATP-gated ion channels crucial in neuronal and non-neuronal cells.
- Seven mammalian subtypes exist, forming homo- and heteromeric channels with varying ion permeability.
- P2X receptors are significant therapeutic targets for various human disorders.
Purpose of the Study:
- To investigate the role of intracellular lateral fenestrations in P2X receptor channel function.
- To identify specific residues within these fenestrations that influence ion permeability and selectivity.
Main Methods:
- Utilized thiol-reactive compounds to probe accessibility within the P2X receptor channel pore.
- Performed site-directed mutagenesis to substitute critical residues within the lateral fenestrations.
- Assessed the impact of these substitutions on cation and anion permeability.
Main Results:
- Identified a critical residue within the intracellular lateral fenestrations accessible from both membrane sides.
- Substitutions at this residue significantly altered the channel's cation versus anion permeability.
- Demonstrated that lateral fenestrations are accessible pathways for ion permeation.
Conclusions:
- Lateral fenestrations serve as critical ion permeation pathways in P2X receptor channels.
- Specific intracellular residues within these fenestrations dictate ion selectivity.
- These findings offer new insights into P2X receptor channel gating and selectivity for therapeutic development.
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