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Updated: Jun 17, 2025

Functional Reconstitution and Channel Activity Measurements of Purified Wildtype and Mutant CFTR Protein
Published on: March 9, 2015
Allosteric inhibition of CFTR gating by CFTRinh-172 binding in the pore
Xiaolong Gao1, Han-I Yeh2,3,4, Zhengrong Yang5
1Dalton Cardiovascular Research Center, University of Missouri-Columbia, Columbia, MO, 65211, USA. xgdz2@missouri.edu.
Abstract:
Loss-of-function mutations of the CFTR gene cause the life-shortening genetic disease cystic fibrosis (CF), whereas overactivity of CFTR may lead to secretory diarrhea and polycystic kidney disease. While effective drugs targeting the CFTR protein have been developed for the treatment of CF, little progress has been made for diseases caused by hyper-activated CFTR. Here, we solve the cryo-EM structure of CFTR in complex with CFTRinh-172 (Inh-172), a CFTR gating inhibitor with promising potency and efficacy. We find that Inh-172 binds inside the pore of CFTR, interacting with amino acid residues from transmembrane segments (TMs) 1, 6, 8, 9, and 12 through mostly hydrophobic interactions and a salt bridge. Substitution of these residues lowers the apparent affinity of Inh-172. The inhibitor-bound structure reveals re-orientations of the extracellular segment of TMs 1, 8, and 12, supporting an allosteric modulation mechanism involving post-binding conformational changes. This allosteric inhibitory mechanism readily explains our observations that pig CFTR, which preserves all the amino acid residues involved in Inh-172 binding, exhibits a much-reduced sensitivity to Inh-172 and that the apparent affinity of Inh-172 is altered by the CF drug ivacaftor (i.e., VX-770) which enhances CFTR's activity through binding to a site also comprising TM8.
Insights
Researchers solved the cryo-EM structure of the CFTR channel bound to the inhibitor CFTRinh-172. This reveals how the inhibitor blocks CFTR, offering new avenues for treating diseases linked to CFTR overactivity.
Area of Science:
- Structural Biology
- Molecular Pharmacology
- Ion Channel Function
Background:
- Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) mutations cause cystic fibrosis.
- Hyperactive CFTR is implicated in secretory diarrhea and polycystic kidney disease.
- Effective CFTR inhibitors are lacking for diseases of CFTR overactivity.
Purpose of the Study:
- Determine the structure of CFTR in complex with the inhibitor CFTRinh-172.
- Elucidate the molecular mechanism of CFTR inhibition by CFTRinh-172.
- Provide insights into allosteric modulation of CFTR.
Main Methods:
- Cryo-electron microscopy (cryo-EM) to solve the structure.
- Biochemical assays to assess inhibitor binding affinity.
- Structure-based analysis of inhibitor-protein interactions.
Main Results:
- The cryo-EM structure of CFTR with CFTRinh-172 was solved.
- CFTRinh-172 binds within the CFTR pore, interacting with multiple transmembrane segments.
- Inhibitor binding induces conformational changes supporting an allosteric inhibition mechanism.
Conclusions:
- The structure reveals the binding site and interactions of CFTRinh-172.
- Allosteric modulation explains differential sensitivity to the inhibitor.
- This work provides a structural basis for developing new CFTR inhibitors.
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