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Updated: Aug 7, 2026

Functional Reconstitution and Channel Activity Measurements of Purified Wildtype and Mutant CFTR Protein
Published on: March 9, 2015
mu-opioid receptor regulates CFTR coexpressed in Xenopus oocytes in a cAMP independent manner
D R Wotta1, A K Birnbaum, G L Wilcox
1Department of Pharmacology, University of Minnesota, Medical School, Minneapolis 55455, USA.
Abstract:
The objective of this study was to characterize the signaling mechanisms of the mu-opioid receptor in its coupling to the cystic fibrosis transmembrane conductance regulator (CFTR) when coexpressed in Xenopus oocytes. Because oocytes do not contain endogenous cAMP-regulated ion channels, the cAMP-modulated CFTR was coexpressed with receptors as a 'reporter' channel. Agonist treatment of oocytes coexpressing mu-opioid receptors, beta2-adrenergic receptors and CFTR produced Cl- currents in a dose-related manner and immunocytochemical analysis confirmed receptor expression. These data suggest that opioid agonists could activate adenylyl cyclase in this system to elevate cAMP levels. Heterotrimeric G protein betagamma-subunits acting on adenylyl cyclase type II would increase cAMP levels. The probable presence of adenylyl cyclase type II and other components of opioid signal transduction such as G(i alpha2), were demonstrated by RT-PCR. However, measurement of cAMP levels in individual oocytes by radioimmunoassay showed that opioid agonist application to oocytes expressing mu-opioid receptors, beta2-adrenergic receptors and CFTR did not increase cAMP levels, whereas application of the beta2-adrenergic agonist, isoproterenol, or IBMX alone did increase cAMP levels. Opioid-induced CFTR activation was not affected by either application of the broad spectrum kinase inhibitor, H7, nor by application of the specific PKA inhibitor, KT5720. Injection of free betagamma-subunits, which could activate the endogenous type II cyclase, was unable to produce measurable currents in oocytes expressing the CFTR. These studies indicate that opioid activation of the CFTR is not mediated through a cAMP/PKA pathway, by either betagamma-subunit activation of an adenylyl cyclase type II or promiscuous coupling to G(s alpha).
Insights
Opioid agonists activate cystic fibrosis transmembrane conductance regulator (CFTR) channels independently of cyclic AMP (cAMP) and protein kinase A (PKA) signaling pathways. This study reveals a novel non-cAMP mechanism for mu-opioid receptor modulation of CFTR.
Area of Science:
- Neuropharmacology
- Molecular Biology
- Ion Channel Physiology
Background:
- Mu-opioid receptors (MOR) are key targets for pain management.
- Opioid signaling often involves cyclic AMP (cAMP) pathways.
- The interaction between MOR and cystic fibrosis transmembrane conductance regulator (CFTR) is not fully understood.
Purpose of the Study:
- To investigate the signaling mechanisms linking mu-opioid receptors to CFTR activation.
- To determine if cAMP/protein kinase A (PKA) pathways mediate opioid-induced CFTR currents.
- To explore alternative signaling pathways involved in MOR-CFTR coupling.
Main Methods:
- Coexpression of MOR, beta2-adrenergic receptors, and CFTR in Xenopus oocytes.
- Measurement of chloride currents using electrophysiology.
- Radioimmunoassay for intracellular cAMP levels.
- Reverse transcription PCR (RT-PCR) for gene expression analysis.
- Inhibition studies using H7 and KT5720.
Main Results:
- Opioid agonists induced dose-dependent chloride currents in oocytes expressing MOR and CFTR.
- Opioid treatment did not increase intracellular cAMP levels, unlike beta2-adrenergic agonists or IBMX.
- Opioid-induced CFTR activation was unaffected by PKA or broad-spectrum kinase inhibitors.
- Direct injection of G protein betagamma-subunits did not activate CFTR.
Conclusions:
- Opioid activation of CFTR is not mediated by the cAMP/PKA pathway.
- The signaling mechanism likely involves pathways independent of adenylyl cyclase activation or G(s alpha) coupling.
- These findings suggest a novel non-canonical signaling cascade for mu-opioid receptor modulation of CFTR.
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