Conformational Changes Relevant to Channel Activity and Folding within the first Nucleotide Binding Domain of the Cystic Fibrosis Transmembrane Conductance Regulator
Deletion of Phe-508 (F508del) in the first nucleotide binding domain (NBD1) of the cystic fibrosis transmembrane conductance regulator (CFTR) leads to defects in folding and channel gating. NMR data on human F508del NBD1 indicate that an H620Q mutant, shown to increase channel open probability, and...
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Veröffentlicht in: | The Journal of biological chemistry 2012-08, Vol.287 (34), p.28480-28494 |
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Sprache: | eng |
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Zusammenfassung: | Deletion of Phe-508 (F508del) in the first nucleotide binding domain (NBD1) of the cystic fibrosis transmembrane conductance regulator (CFTR) leads to defects in folding and channel gating. NMR data on human F508del NBD1 indicate that an H620Q mutant, shown to increase channel open probability, and the dual corrector/potentiator CFFT-001 similarly disrupt interactions between β-strands S3, S9, and S10 and the C-terminal helices H8 and H9, shifting a preexisting conformational equilibrium from helix to coil. CFFT-001 appears to interact with β-strands S3/S9/S10, consistent with docking simulations. Decreases in Tm from differential scanning calorimetry with H620Q or CFFT-001 suggest direct compound binding to a less thermostable state of NBD1. We hypothesize that, in full-length CFTR, shifting the conformational equilibrium to reduce H8/H9 interactions with the uniquely conserved strands S9/S10 facilitates release of the regulatory region from the NBD dimerization interface to promote dimerization and thereby increase channel open probability. These studies enabled by our NMR assignments for F508del NBD1 provide a window into the conformational fluctuations within CFTR that may regulate function and contribute to folding energetics.
Background: The CFTR chloride channel undergoes conformational changes during its gating cycle.
Results: H620Q mutation associated with increased channel Po, and the corrector/potentiator CFFT-001 both lead to similar conformational shifts in NBD1.
Conclusion: There is an intrinsic conformational equilibrium within NBD1 that is correlated with channel activity.
Significance: Conformational fluctuations within NBD1 are fundamental to CFTR regulation. |
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ISSN: | 0021-9258 1083-351X |
DOI: | 10.1074/jbc.M112.371138 |