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Molecular Structure of the Human CFTR Ion Channel. | LitMetric

Molecular Structure of the Human CFTR Ion Channel.

Cell

Laboratory of Membrane Biophysics and Biology, The Rockefeller University, 1230 York Avenue, New York, NY 10065, USA; Howard Hughes Medical Institute, 4000 Jones Bridge Road, Chevy Chase, MD 20815, USA. Electronic address:

Published: March 2017

AI Article Synopsis

  • - The study presents a 3.9 Å structure of the dephosphorylated human CFTR (cystic fibrosis transmembrane conductance regulator) determined using electron cryomicroscopy, revealing its unique role as an ion channel and its close resemblance to zebrafish CFTR.
  • - The structure showcases a previously unknown helix in the R domain that prevents channel opening, suggesting that PKA phosphorylation of this domain occurs when it occasionally disengages.
  • - A comparison with MRP1 highlights a unique helix-loop transition in CFTR's transmembrane helix 8, which is key to its function as an ion channel, distinguishing it from other ABC transporters.

Article Abstract

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.

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Source
http://dx.doi.org/10.1016/j.cell.2017.02.024DOI Listing

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