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Updated: Jul 9, 2026

In Vitro Analysis of PDZ-dependent CFTR Macromolecular Signaling Complexes
Published on: August 13, 2012
CFTR channel opening by ATP-driven tight dimerization of its nucleotide-binding domains
Paola Vergani1, Steve W Lockless, Angus C Nairn
1Laboratory of Cardiac/Membrane Physiology, The Rockefeller University, New York, New York 10021, USA. paola.vergani@rockefeller.edu
Abstract:
ABC (ATP-binding cassette) proteins constitute a large family of membrane proteins that actively transport a broad range of substrates. Cystic fibrosis transmembrane conductance regulator (CFTR), the protein dysfunctional in cystic fibrosis, is unique among ABC proteins in that its transmembrane domains comprise an ion channel. Opening and closing of the pore have been linked to ATP binding and hydrolysis at CFTR's two nucleotide-binding domains, NBD1 and NBD2 (see, for example, refs 1, 2). Isolated NBDs of prokaryotic ABC proteins dimerize upon binding ATP, and hydrolysis of the ATP causes dimer dissociation. Here, using single-channel recording methods on intact CFTR molecules, we directly follow opening and closing of the channel gates, and relate these occurrences to ATP-mediated events in the NBDs. We find that energetic coupling between two CFTR residues, expected to lie on opposite sides of its predicted NBD1-NBD2 dimer interface, changes in concert with channel gating status. The two monitored side chains are independent of each other in closed channels but become coupled as the channels open. The results directly link ATP-driven tight dimerization of CFTR's cytoplasmic nucleotide-binding domains to opening of the ion channel in the transmembrane domains. This establishes a molecular mechanism, involving dynamic restructuring of the NBD dimer interface, that is probably common to all members of the ABC protein superfamily.
Insights
The cystic fibrosis transmembrane conductance regulator (CFTR) ion channel opens when its nucleotide-binding domains tightly dimerize, driven by ATP. This dimerization process is crucial for regulating ion transport in ABC proteins.
Area of Science:
- Biochemistry
- Molecular Biology
- Biophysics
Background:
- ATP-binding cassette (ABC) proteins are membrane transporters.
- Cystic fibrosis transmembrane conductance regulator (CFTR) is a unique ABC protein functioning as an ion channel.
- CFTR's ion channel activity is regulated by ATP binding and hydrolysis in its nucleotide-binding domains (NBDs).
Purpose of the Study:
- To directly link ATP-mediated events in CFTR's NBDs to the opening and closing of its ion channel pore.
- To investigate the role of NBD dimerization in CFTR channel gating.
Main Methods:
- Single-channel recording on intact CFTR molecules.
- Monitoring energetic coupling between specific residues in NBD1 and NBD2.
Main Results:
- Energetic coupling between CFTR residues at the predicted NBD1-NBD2 dimer interface changes with channel gating.
- These residues are independent in closed channels but become coupled upon channel opening.
- ATP-driven tight dimerization of NBDs is directly linked to ion channel opening.
Conclusions:
- ATP-induced tight dimerization of CFTR's nucleotide-binding domains is essential for ion channel opening.
- Dynamic restructuring of the NBD dimer interface represents a key molecular mechanism for CFTR gating.
- This mechanism is likely conserved across the ABC protein superfamily.
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