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Updated: Jun 13, 2026

Functional Reconstitution and Channel Activity Measurements of Purified Wildtype and Mutant CFTR Protein
Published on: March 9, 2015
Cardiomyocytes with disrupted CFTR function require CaMKII and Ca(2+)-activated Cl(-) channel activity to maintain
Zachary M Sellers1, Vania De Arcangelis, Yang Xiang
1Department of Molecular and Integrative Physiology, University of Illinois at Urbana-Champaign, Urbana, IL, USA. zselle2@illinois.edu
Abstract:
The physiological role of the cystic fibrosis transmembrane conductance regulator (CFTR) in cardiomyocytes remains unclear. Using spontaneously beating neonatal ventricular cardiomyocytes from wild-type (WT) or CFTR knockout (KO) mice, we examined the role of CFTR in the modulation of cardiomyocyte contraction rate. Contraction rates of spontaneously beating myocytes were captured by video imaging. Real-time changes in intracellular ([Ca(2+)](i)) and protein kinase A (PKA) activity were measured by fura-2 and fluorescence resonance energy transfer, respectively. Acute inhibition of CFTR in WT cardiomyocytes using the CFTR inhibitor CFTR(inh)-172 transiently inhibited the contraction rate. By contrast, cardiomyocytes from CFTR KO mice displayed normal contraction rates. Further investigation revealed that acute inhibition of CFTR activity in WT cardiomyocytes activated L-type Ca(2+) channels, leading to a transient increase of [Ca(2+)](i) and inhibition of PKA activity. Additionally, we found that contraction rate normalization following acute CFTR inhibition in WT cardiomyocytes or chronic deletion in cardiomyocytes from CFTR KO mice requires the activation of Ca(2+)/calmodulin-dependent kinase II (CaMKII) and Ca(2+)-activated Cl(-) channels (CaCC) because simultaneous addition of myristoylated-autocamtide-2-related inhibitory peptide or niflumic acid and CFTR(inh)-172 to WT cardiomyocytes or treatment of cardiomyoctes from CFTR KO mice with these agents caused sustained attenuation of contraction rates. Our results demonstrate that regulation of cardiomyocyte contraction involves CFTR. They also reveal that activation of CaMKII and CaCC compensates for loss of CFTR function. Increased dependence on CaMKII upon loss of CFTR function might leave cystic fibrosis patients at increased risk of heart dysfunction and disease.
Insights
Cystic fibrosis transmembrane conductance regulator (CFTR) influences heart cell contraction. Its absence activates compensatory pathways, potentially increasing heart dysfunction risk in cystic fibrosis patients.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- The role of cystic fibrosis transmembrane conductance regulator (CFTR) in heart cells is not well understood.
- CFTR is a channel protein crucial for ion transport.
Purpose of the Study:
- To investigate the role of CFTR in regulating cardiomyocyte contraction rate.
- To explore compensatory mechanisms in CFTR-deficient cardiomyocytes.
Main Methods:
- Utilized cardiomyocytes from wild-type and CFTR knockout mice.
- Measured contraction rates, intracellular calcium ([Ca(2+)](i)), and protein kinase A (PKA) activity.
- Employed CFTR inhibitors and specific pathway modulators.
Main Results:
- Acute CFTR inhibition in wild-type cells transiently reduced contraction rate.
- CFTR knockout cells showed normal contraction rates, indicating compensatory mechanisms.
- Activation of Ca(2+)/calmodulin-dependent kinase II (CaMKII) and Ca(2+)-activated Cl(-) channels (CaCC) compensated for CFTR loss.
Conclusions:
- CFTR plays a role in regulating cardiomyocyte contraction.
- CaMKII and CaCC activation compensates for CFTR dysfunction.
- Increased reliance on CaMKII in CFTR-deficient hearts may elevate the risk of cardiac dysfunction in cystic fibrosis.
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