The Relative Binding Affinities of PDZ Partners for CFTR: A Biochemical Basis for Efficient Endocytic Recycling
- 29 August 2008
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 47 (38) , 10084-10098
- https://doi.org/10.1021/bi8003928
Abstract
The cystic fibrosis transmembrane conductance regulator (CFTR) is an epithelial chloride channel mutated in patients with cystic fibrosis. Its expression and functional interactions in the apical membrane are regulated by several PDZ (PSD-95, discs large, zonula occludens-1) proteins, which mediate protein−protein interactions, typically by binding C-terminal recognition motifs. In particular, the CFTR-associated ligand (CAL) limits cell-surface levels of the most common disease-associated mutant ΔF508-CFTR. CAL also mediates degradation of wild-type CFTR, targeting it to lysosomes following endocytosis. Nevertheless, wild-type CFTR survives numerous cycles of uptake and recycling. In doing so, how does it repeatedly avoid CAL-mediated degradation? One mechanism may involve competition between CAL and other PDZ proteins including Na+/H+ exchanger-3 regulatory factors 1 and 2 (NHERF1 and NHERF2), which functionally stabilize cell-surface CFTR. Thus, to understand the biochemical basis of WT-CFTR persistence, we need to know the relative affinities of these partners. However, no quantitative binding data are available for CAL or the individual NHERF2 PDZ domains, and published estimates for the NHERF1 PDZ domains conflict. Here we demonstrate that the affinity of the CAL PDZ domain for the CFTR C-terminus is much weaker than those of NHERF1 and NHERF2 domains, enabling wild-type CFTR to avoid premature entrapment in the lysosomal pathway. At the same time, CAL’s affinity is evidently sufficient to capture and degrade more rapidly cycling mutants, such as ΔF508-CFTR. The relatively weak affinity of the CAL:CFTR interaction may provide a pharmacological window for stabilizing rescued ΔF508-CFTR in patients with cystic fibrosis.Keywords
This publication has 55 references indexed in Scilit:
- PDZ Domain Binding Selectivity Is Optimized Across the Mouse ProteomeScience, 2007
- A Thermodynamic Ligand Binding Study of the Third PDZ Domain (PDZ3) from the Mammalian Neuronal Protein PSD-95Biochemistry, 2007
- Uncovering Quantitative Protein Interaction Networks for Mouse PDZ Domains Using Protein MicroarraysJournal of the American Chemical Society, 2006
- Ezrin Controls the Macromolecular Complexes Formed between an Adapter Protein Na+/H+ Exchanger Regulatory Factor and the Cystic Fibrosis Transmembrane Conductance RegulatorJournal of Biological Chemistry, 2005
- PDZ‐binding motifs are unable to ensure correct polarized protein distribution in the absence of additional localization signalsFEBS Letters, 2004
- A Novel Protein Complex Linking the δ2 Glutamate Receptor and AutophagyNeuron, 2002
- Ezrin-Radixin-Moesin-binding Phosphoprotein-50/Na+/H+ Exchanger Regulatory Factor (EBP50/NHERF) Blocks U50,488H-induced Down-regulation of the Human κ Opioid Receptor by Enhancing Its Recycling RateJournal of Biological Chemistry, 2002
- PIST: A Novel PDZ/Coiled-Coil Domain Binding Partner for the Rho-Family GTPase TC10Biochemical and Biophysical Research Communications, 2001
- E3KARP Mediates the Association of Ezrin and Protein Kinase A with the Cystic Fibrosis Transmembrane Conductance Regulator in Airway CellsJournal of Biological Chemistry, 2000
- An exact mathematical expression for describing competitive binding of two different ligands to a protein moleculeFEBS Letters, 1995