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Disruption of lipid rafts inhibits P2X1 receptor-mediated currents and arterial vasoconstriction
Catherine Vial1, Richard J Evans
1Department of Cell Physiology & Pharmacology, University of Leicester, Leicester, LE1 9HN United Kingdom.
Abstract:
P2X1 receptors for ATP are ligand-gated cation channels expressed on a range of smooth muscle preparations and blood platelets. The receptors appear to be clustered close to sympathetic nerve varicosities and mediate the underlying membrane potential changes and constriction following nerve stimulation in a range of arteries and resistance arterioles. In this study we have used discontinuous sucrose density gradients, Western blot analysis, and cholesterol measurements to show that recombinant and smooth muscle (rat tail artery, vas deferens, and bladder) P2X1 receptors are present in cholesterol-rich lipid rafts and co-localize with the lipid raft markers flotillin-1 and -2. Lipid rafts are specialized lipid membrane microdomains involved in signaling and trafficking. To determine whether lipid raft association was essential for P2X1 receptor channel function we used the cholesterol-depleting agent methyl-beta-cyclodextrin (10 mm for 1 h). This led to a redistribution of the P2X1 receptor throughout the sucrose gradient and reduced P2X1 receptor-mediated (alpha,beta-methylene ATP, 10 microm) currents in HEK293 cells by >90% and contractions of the rat tail artery by approximately 50%. However contractions evoked by potassium chloride (60 mm) were unaffected by methyl-beta-cyclodextrin and the inactive analogue alpha-cyclodextrin had no effect on P2X1 receptor-mediated currents or contractions. P2X1 receptors are subject to ongoing regulation by receptors and kinases, and the present results suggest that lipid rafts are an essential component in the maintenance of these localized signaling domains and play an important role in P2X1 receptor-mediated control of arteries.
Insights
P2X1 receptors, crucial for smooth muscle and platelet function, are located in cholesterol-rich lipid rafts. Disrupting these rafts significantly impairs P2X1 receptor activity and artery contraction.
Area of Science:
- Physiology
- Molecular Biology
- Cellular Signaling
Background:
- P2X1 receptors are ligand-gated cation channels vital for smooth muscle and platelet function.
- These receptors are positioned near sympathetic nerve varicosities, influencing vascular tone.
- Lipid rafts are specialized membrane microdomains involved in cellular signaling and protein trafficking.
Purpose of the Study:
- To investigate the localization of P2X1 receptors within cellular membranes.
- To determine the functional significance of P2X1 receptor association with lipid rafts.
- To elucidate the role of lipid rafts in P2X1 receptor-mediated vascular control.
Main Methods:
- Utilized discontinuous sucrose density gradients and Western blot analysis.
- Quantified cholesterol levels in relation to P2X1 receptor presence.
- Employed methyl-beta-cyclodextrin to deplete cholesterol and assess functional changes.
- Measured P2X1 receptor-mediated currents in HEK293 cells and smooth muscle contractions.
Main Results:
- Recombinant and smooth muscle P2X1 receptors were found to co-localize with lipid raft markers flotillin-1 and -2.
- Cholesterol depletion using methyl-beta-cyclodextrin redistributed P2X1 receptors and reduced receptor-mediated currents by over 90%.
- Methyl-beta-cyclodextrin significantly decreased P2X1 receptor-mediated rat tail artery contractions by approximately 50% without affecting potassium chloride-induced contractions.
Conclusions:
- P2X1 receptors are integral components of cholesterol-rich lipid rafts.
- Lipid raft association is essential for maintaining P2X1 receptor function and signaling.
- These findings highlight the critical role of lipid rafts in P2X1 receptor-mediated regulation of vascular smooth muscle.
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