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Molecular Structure of the Human CFTR Ion Channel
Liu, F
;
Zhang, Z
;
Csanády, L [Csanády, László (Biokémia), author] MTA-SE Ion Channel Research Group (SU / FM / I / BMBI / BT)
;
Gadsby, DC
;
Chen, J ✉
English Article (Journal Article) Scientific
Published:
CELL 0092-8674 1097-4172
169
(1)
pp. 85-95.e8
2017
SJR Scopus - Biochemistry, Genetics and Molecular Biology (miscellaneous): D1
Identifiers
MTMT: 3210856
DOI:
10.1016/j.cell.2017.02.024
REAL:
85753
SE Repozitórium:
6535
WoS:
000397090000010
Scopus:
85016073190
PubMed:
28340353
Subjects:
Biophysics (e.g. transport mechanisms, bioenergetics, fluorescence)
Enzymology
Molecular biophysics
Structural biology (crystallography and EM)
The cystic fibrosis transmembrane conductance regulator (CFTR) is an ATP-binding cassette (ABC) transporter that uniquely functions as an ion channel. Here, we present a 3.9 Å structure of dephosphorylated human CFTR without nucleotides, determined by electron cryomicroscopy (cryo-EM). Close resemblance of this human CFTR structure to zebrafish CFTR under identical conditions reinforces its relevance for understanding CFTR function. The human CFTR structure reveals a previously unresolved helix belonging to the R domain docked inside the intracellular vestibule, precluding channel opening. By analyzing the sigmoid time course of CFTR current activation, we propose that PKA phosphorylation of the R domain is enabled by its infrequent spontaneous disengagement, which also explains residual ATPase and gating activity of dephosphorylated CFTR. From comparison with MRP1, a feature distinguishing CFTR from all other ABC transporters is the helix-loop transition in transmembrane helix 8, which likely forms the structural basis for CFTR's channel function. © 2017 Elsevier Inc.
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2025-04-04 14:03
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