Molecular pathology of the R117H cystic fibrosis mutation is explained by loss of a hydrogen bond

Simon, Marton A. [Simon, Márton (Biokémia), author] Biokémiai és Molekuláris Biológiai Intézet (SU / FM / I); Biokémiai Tanszék (SU / FM / I / BMBI); HCEMM-SU Molecular Channelopathies Research Group (SU / FM / I / BMBI / BT); Csanady, Laszlo ✉ [Csanády, László (Biokémia), author] MTA-SE Ion Channel Research Group (SU / FM / I / BMBI / BT); Biokémiai és Molekuláris Biológiai Intézet (SU / FM / I); Biokémiai Tanszék (SU / FM / I / BMBI); HCEMM-SU Molecular Channelopathies Research Group (SU / FM / I / BMBI / BT)

English Article (Journal Article) Scientific
Published: ELIFE 2050-084X 2050-084X 10 Paper: e74693 , 19 p. 2021
  • SJR Scopus - Biochemistry, Genetics and Molecular Biology (miscellaneous): D1
Identifiers
Fundings:
  • (739593 (European Union’s Horizon 2020 Research and Innovation Programme))
  • (LP2017-14/2017)
  • (Lendület) Funder: MTA
  • (CSANAD21G0)
  • (ÚNKP-20–3-I-SE-34)
The phosphorylation-activated anion channel cystic fibrosis transmembrane conductance regulator (CFTR) is gated by an ATP hydrolysis cycle at its two cytosolic nucleotide-binding domains, and is essential for epithelial salt-water transport. A large number of CFTR mutations cause cystic fibrosis. Since recent breakthrough in targeted pharmacotherapy, CFTR mutants with impaired gating are candidates for stimulation by potentiator drugs. Thus, understanding the molecular pathology of individual mutations has become important. The relatively common R117H mutation affects an extracellular loop, but nevertheless causes a strong gating defect. Here, we identify a hydrogen bond between the side chain of arginine 117 and the backbone carbonyl group of glutamate 1124 in the cryo-electronmicroscopic structure of phosphorylated, ATP-bound CFTR. We address the functional relevance of that interaction for CFTR gating using macroscopic and microscopic inside-out patch-clamp recordings. Employing thermodynamic double-mutant cycles, we systematically track gating-state-dependent changes in the strength of the R117-E1124 interaction. We find that the H-bond is formed only in the open state, but neither in the short-lived 'flickery' nor in the long-lived 'interburst' closed state. Loss of this H-bond explains the strong gating phenotype of the R117H mutant, including robustly shortened burst durations and strongly reduced intraburst open probability. The findings may help targeted potentiator design.
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2025-04-02 00:47