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Domain-domain associations in cystic fibrosis transmembrane conductance regulator
Wenlan Wang1, Zhaoping He, Thomas J O'Shaughnessy
1Alfred I. duPont Hospital for Children, Wilmington, Delaware 19803, USA.
Abstract:
Cystic fibrosis is caused by mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene. CFTR is a chloride channel whose activity requires protein kinase A-dependent phosphorylation of an intracellular regulatory domain (R-domain) and ATP hydrolysis at the nucleotide-binding domains (NBDs). To identify potential sites of domain-domain interaction within CFTR, we expressed, purified, and refolded histidine (His)- and glutathione-S-transferase (GST)-tagged cytoplasmic domains of CFTR. ATP-binding to his-NBD1 and his-NBD2 was demonstrated by measuring tryptophan fluorescence quenching. Tryptic digestion of in vitro phosphorylated his-NBD1-R and in situ phosphorylated CFTR generated the same phosphopeptides. An interaction between NBD1-R and NBD2 was assayed by tryptophan fluorescence quenching. Binding among all pairwise combinations of R-domain, NBD1, and NBD2 was demonstrated with an overlay assay. To identify specific sites of interaction between domains of CFTR, an overlay assay was used to probe an overlapping peptide library spanning all intracellular regions of CFTR with his-NBD1, his-NBD2, and GST-R-domain. By mapping peptides from NBD1 and NBD2 that bound to other intracellular domains onto crystal structures for HisP, MalK, and Rad50, probable sites of interaction between NBD1 and NBD2 were identified. Our data support a model where NBDs form dimers with the ATP-binding sites at the domain-domain interface.
Insights
Cystic fibrosis transmembrane conductance regulator (CFTR) protein domains interact to form dimers. These interactions, involving nucleotide-binding domains (NBDs), are crucial for CFTR channel function and ATP binding.
Area of Science:
- Molecular biology
- Biochemistry
- Cell biology
Background:
- Cystic fibrosis results from mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene.
- CFTR functions as a chloride channel, dependent on phosphorylation and ATP hydrolysis.
- Understanding CFTR domain interactions is key to elucidating its function.
Purpose of the Study:
- To identify and characterize domain-domain interactions within the CFTR protein.
- To map specific interaction sites between CFTR's intracellular domains.
Main Methods:
- Expression, purification, and refolding of histidine (His)- and glutathione-S-transferase (GST)-tagged CFTR cytoplasmic domains.
- Tryptophan fluorescence quenching to assess ATP binding and domain interactions.
- Peptide library overlay assays to map interaction sites.
- Mapping identified interaction peptides onto crystal structures.
Main Results:
- ATP binding was confirmed for His-NBD1 and His-NBD2.
- Phosphopeptide analysis indicated conserved phosphorylation sites.
- Overlay assays demonstrated binding between R-domain, NBD1, and NBD2.
- Specific interaction sites between NBD1 and NBD2 were identified and mapped.
Conclusions:
- CFTR's nucleotide-binding domains (NBDs) likely form dimers.
- These NBD dimers position ATP-binding sites at the interface.
- This structural model provides insights into CFTR channel regulation and function.