EMD-20528

Single-particle
3.65 Å
EMD-20528 Deposition: 31/07/2019
Map released: 14/08/2019
Last modified: 20/03/2024
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EMD-20528

Cryo-EM structure of the pancreatic beta-cell SUR1 bound to ATP and repaglinide

EMD-20528

Single-particle
3.65 Å
EMD-20528 Deposition: 31/07/2019
Map released: 14/08/2019
Last modified: 20/03/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Cricetus cricetus, Rattus norvegicus
Sample: KATP-RPG-ATP
Fitted models: 6pz9 (Avg. Q-score: 0.427)

Deposition Authors: Shyng SL , Yoshioka C
Mechanism of pharmacochaperoning in a mammalian K ATP channel revealed by cryo-EM.
PUBMED: 31343405
DOI: doi:10.7554/eLife.46417
ISSN: 2050-084X
Abstract:
ATP-sensitive potassium (KATP) channels composed of a pore-forming Kir6.2 potassium channel and a regulatory ABC transporter sulfonylurea receptor 1 (SUR1) regulate insulin secretion in pancreatic β-cells to maintain glucose homeostasis. Mutations that impair channel folding or assembly prevent cell surface expression and cause congenital hyperinsulinism. Structurally diverse KATP inhibitors are known to act as pharmacochaperones to correct mutant channel expression, but the mechanism is unknown. Here, we compare cryoEM structures of a mammalian KATP channel bound to pharmacochaperones glibenclamide, repaglinide, and carbamazepine. We found all three drugs bind within a common pocket in SUR1. Further, we found the N-terminus of Kir6.2 inserted within the central cavity of the SUR1 ABC core, adjacent the drug binding pocket. The findings reveal a common mechanism by which diverse compounds stabilize the Kir6.2 N-terminus within SUR1's ABC core, allowing it to act as a firm 'handle' for the assembly of metastable mutant SUR1-Kir6.2 complexes.