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In Vitro Analysis of PDZ-dependent CFTR Macromolecular Signaling Complexes
Published on: August 13, 2012
Negative regulation of CFTR activity by extracellular ATP involves P2Y2 receptors in CFTR-expressing CHO cells
1Institut de Neurosciences Physiologiques et Cognitives, CNRS - INPC, 13402 Marseille, France. marcet@dpm.cnrs-mrs.fr
Abstract:
Extracellular nucleotides exert autocrine/ paracrine effects on ion transport by activating P2 receptors. We studied the effects of extracellular ATP and UTP on the cystic fibrosis transmembrane conductance regulator (CFTR) channel stably expressed in Chinese Hamster Ovary cells (CHO-BQI cells). CFTR activity was measured using the (125I) iodide efflux technique and whole-cell patch-clamp recording in response to either forskolin or xanthine derivatives. Using RT-PCR and intracellular calcium concentration ([Ca2+]i) measurement, we showed that CHO-BQI cells express P2Y2 but not P2Y4 receptors. While ATP and UTP induced similar increases in [Ca2+]i, pre-addition by one of these two agonists desensitized the response for the other, suggesting that ATP- and UTP-induced [Ca2+]i increases were mediated by a common receptor, which was identified as the P2Y2 subtype. CFTR activity was reduced by ATP and UTP but not by ADP or adenosine applications. This inhibitory effect of ATP on CFTR activity was not due to a change in cAMP level. Furthermore, CFTR activation by forskolin or IBMX failed to promote [Ca2+]i increase, suggesting that CFTR activation did not generate an ATP release large enough to stimulate P2Y2 receptors. Taken together, our results show that endogenous P2Y2 receptor activation downregulates CFTR activity in a cAMP-independent manner in CHO cells.
Insights
Extracellular ATP and UTP activate P2Y2 receptors, which reduces cystic fibrosis transmembrane conductance regulator (CFTR) channel activity. This P2Y2 receptor-mediated inhibition of CFTR occurs independently of cyclic AMP levels in Chinese Hamster Ovary cells.
Area of Science:
- Cell Biology
- Ion Transport
- Receptor Signaling
Background:
- Extracellular nucleotides modulate ion transport via P2 receptors.
- The cystic fibrosis transmembrane conductance regulator (CFTR) is a crucial ion channel.
Purpose of the Study:
- To investigate the effects of extracellular ATP and UTP on CFTR activity in CHO-BQI cells.
- To identify the specific P2 receptor subtypes involved in this interaction.
Main Methods:
- Utilized (125I) iodide efflux and whole-cell patch-clamp techniques to measure CFTR activity.
- Employed RT-PCR to identify receptor expression.
- Measured intracellular calcium concentration ([Ca2+]i) to assess receptor activation.
Main Results:
- CHO-BQI cells express P2Y2 receptors, mediating ATP and UTP-induced calcium increases.
- ATP and UTP inhibited CFTR activity, while ADP and adenosine did not.
- The inhibitory effect of ATP on CFTR was independent of cyclic AMP levels.
Conclusions:
- Endogenous P2Y2 receptor activation downregulates CFTR activity in CHO cells.
- This regulation occurs in a cyclic AMP-independent pathway.
- CFTR activation does not appear to release sufficient ATP to stimulate P2Y2 receptors.
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