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Polarized expression of human P2Y receptors in epithelial cells from kidney, lung, and colon
Samuel C Wolff1, Ai-Dong Qi, T Kendall Harden
1Department of Pharmacology, The University of North Carolina-Chapel Hill, 1027 Mary Ellen Jones Bldg., CB# 7365, Chapel Hill, NC 27599, USA.
Abstract:
Eight human G protein-coupled P2Y receptors (P2Y(1), P2Y(2), P2Y(4), P2Y(6), P2Y(11), P2Y(12), P2Y(13), and P2Y(14)) that respond to extracellular nucleotides have been molecularly identified and characterized. P2Y receptors are widely expressed in epithelial cells and play an important role in regulating epithelial cell function. Functional studies assessing the capacity of various nucleotides to promote increases in short-circuit current (I(sc)) or Ca(2+) mobilization have suggested that some subtypes of P2Y receptors are polarized with respect to their functional activity, although these results often have been contradictory. To investigate the polarized expression of the family of P2Y receptors, we determined the localization of the entire P2Y family after expression in Madin-Darby canine kidney (MDCK) type II cells. Confocal microscopy of polarized monolayers revealed that P2Y(1), P2Y(11), P2Y(12), and P2Y(14) receptors reside at the basolateral membrane, P2Y(2), P2Y(4), and P2Y(6) receptors are expressed at the apical membrane, and the P2Y(13) receptor is unsorted. Biotinylation studies and I(sc) measurements in response to the appropriate agonists were consistent with the polarized expression observed in confocal microscopy. Expression of the G(q)-coupled P2Y receptors (P2Y(1), P2Y(2), P2Y(4), P2Y(6), and P2Y(11)) in lung and colonic epithelial cells (16HBE14o- and Caco-2 cells, respectively) revealed a targeting profile nearly identical to that observed in MDCK cells, suggesting that polarized targeting of these P2Y receptor subtypes is not a function of the type of epithelial cell in which they are expressed. These experiments highlight the highly polarized expression of P2Y receptors in epithelial cells.
Insights
This study reveals the specific membrane locations of eight human P2Y receptors in epithelial cells. This polarized expression of P2Y receptors is crucial for regulating cell function.
Area of Science:
- Cell Biology
- Molecular Biology
- Physiology
Background:
- Eight human G protein-coupled P2Y receptors respond to extracellular nucleotides.
- P2Y receptors are vital for epithelial cell function, but their polarized expression is debated.
- Previous functional studies yielded contradictory results regarding P2Y receptor polarization.
Purpose of the Study:
- To investigate the polarized expression of all eight human P2Y receptor subtypes in epithelial cells.
- To determine the precise membrane localization (apical or basolateral) of each P2Y receptor.
- To confirm if polarized targeting is cell-type dependent.
Main Methods:
- Expressed P2Y receptors in Madin-Darby canine kidney (MDCK) type II cells.
- Utilized confocal microscopy to visualize receptor localization in polarized cell monolayers.
- Performed biotinylation assays and short-circuit current (I(sc)) measurements to confirm functional localization.
Main Results:
- P2Y(1), P2Y(11), P2Y(12), and P2Y(14) receptors were localized to the basolateral membrane.
- P2Y(2), P2Y(4), and P2Y(6) receptors were localized to the apical membrane.
- P2Y(13) receptors were unsorted, and targeting was consistent across different epithelial cell types.
Conclusions:
- P2Y receptors exhibit highly polarized expression in epithelial cells.
- The observed targeting patterns are conserved across different epithelial cell lines, suggesting a general mechanism.
- This precise localization is critical for P2Y receptor-mediated epithelial cell functions.
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