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In Vitro Analysis of PDZ-dependent CFTR Macromolecular Signaling Complexes
Published on: August 13, 2012
Deletion of phenylalanine 508 causes attenuated phosphorylation-dependent activation of CFTR chloride channels
1Department of Physiology, Dalton Cardiovascular Research Center, University of Missouri, Columbia, MO 65211, USA.
Abstract:
In cell-attached patches stimulated with cAMP agonists, the single-channel open probability (Po) of the phenylalanine 508-deleted cystic fibrosis transmembrane conductance regulator (DeltaF508-CFTR) channel, the most common disease-associated mutation in cystic fibrosis, was abnormally low (a functional defect). To investigate the mechanism for the poor response of DeltaF508-CFTR to cAMP stimulation, we examined, in excised inside-out patches, protein kinase A (PKA)-dependent phosphorylation activation and ATP-dependent gating of wild-type (WT) and DeltaF508-CFTR channels expressed in NIH3T3 mouse fibroblasts. For WT-CFTR, the activation time course of CFTR channel current upon addition of PKA and ATP followed a sigmoidal function with time constants that decreased as [PKA] was increased. The curvilinear relationship between [PKA] and the apparent activation rate suggests an incremental phosphorylation-dependent activation of CFTR at multiple phosphorylation sites. The time course of PKA-dependent activation of DeltaF508-CFTR channel current also followed a sigmoidal function, but the rate of activation was at least 7-fold slower than that with WT channels. This result suggests that deletion of phenylalanine 508 causes attenuated PKA-dependent phosphorylation of the CFTR chloride channel. Once DeltaF508-CFTR channels were maximally activated with PKA, the mutant channel and WT channel had indistinguishable steady-state Po values, ATP dose-response relationships and single-channel kinetics, indicating that DeltaF508-CFTR is not defective in ATP-dependent gating. By measuring whole-cell current density, we compared the number of functional channels in WT- and DeltaF508-CFTR cell membrane. Our data showed that the estimated channel density for DeltaF508-CFTR was approximately 10-fold lower than that for WT-CFTR, but the cAMP-dependent whole-cell current density differed by approximately 200-fold. We thus conclude that the functional defect (a decrease in Po) of DeltaF508-CFTR is as important as the trafficking defect (a decrease in the number of functional channels in the plasma membrane) in cystic fibrosis pathogenesis.
Insights
The most common cystic fibrosis mutation, DeltaF508-CFTR, shows impaired protein kinase A (PKA) activation and reduced channel density. Both defects contribute significantly to cystic fibrosis (CF) pathogenesis.
Area of Science:
- Ion channel physiology
- Molecular genetics
- Cellular biology
Background:
- Cystic fibrosis transmembrane conductance regulator (CFTR) is a crucial chloride channel.
- The DeltaF508 mutation is the most common cause of cystic fibrosis, leading to a functional defect.
- Understanding the molecular mechanisms of DeltaF508-CFTR dysfunction is vital for developing effective therapies.
Purpose of the Study:
- To investigate the impaired response of DeltaF508-CFTR to cAMP stimulation.
- To elucidate the roles of PKA-dependent phosphorylation and ATP-dependent gating in DeltaF508-CFTR function.
- To compare the functional defect and trafficking defect of DeltaF508-CFTR in cystic fibrosis.
Main Methods:
- Utilized excised inside-out patch-clamp electrophysiology in NIH3T3 cells expressing WT- and DeltaF508-CFTR.
- Examined PKA-dependent phosphorylation and ATP-dependent gating kinetics.
- Measured whole-cell current density to assess functional channel numbers.
Main Results:
- DeltaF508-CFTR exhibited a significantly slower PKA-dependent activation rate (at least 7-fold slower than WT-CFTR).
- Maximal activation revealed indistinguishable steady-state open probability and ATP-dependent gating between WT- and DeltaF508-CFTR.
- DeltaF508-CFTR showed a 10-fold lower channel density but a 200-fold lower cAMP-dependent current density compared to WT-CFTR.
Conclusions:
- The deletion of phenylalanine 508 attenuates PKA-dependent phosphorylation of CFTR.
- DeltaF508-CFTR gating is not defective in ATP-dependent mechanisms.
- Both the functional defect (reduced open probability) and trafficking defect (reduced channel density) of DeltaF508-CFTR are critical in cystic fibrosis pathogenesis.
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