Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels control spontaneous electrical activity in heart and brain. Binding of cAMP to the cyclic nucleotide-binding domain (CNBD) facilitates channel opening by relieving a tonic inhibition exerted by the CNBD. Despite high resolution structures of the HCN1 channel in the cAMP bound and unbound states, the structural mechanism coupling ligand binding to channel gating is unknown. Here we show that the recently identified helical HCN-domain (HCND) mechanically couples the CNBD and channel voltage sensing domain (VSD), possibly acting as a sliding crank that converts the planar rotational movement of the CNBD into a rotational upward displacement of the VSD. This mode of operation and its impact on channel gating are confirmed by computational and experimental data showing that disruption of critical contacts between the three domains affects cAMP-and voltage-dependent gating in three HCN isoforms. © 2019, eLife Sciences Publications Ltd. All rights reserved.

The HCN domain couples voltage gating and cAMP response in hyperpolarization-activated cyclic nucleotide-gated channels

Moroni A
2019

Abstract

Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels control spontaneous electrical activity in heart and brain. Binding of cAMP to the cyclic nucleotide-binding domain (CNBD) facilitates channel opening by relieving a tonic inhibition exerted by the CNBD. Despite high resolution structures of the HCN1 channel in the cAMP bound and unbound states, the structural mechanism coupling ligand binding to channel gating is unknown. Here we show that the recently identified helical HCN-domain (HCND) mechanically couples the CNBD and channel voltage sensing domain (VSD), possibly acting as a sliding crank that converts the planar rotational movement of the CNBD into a rotational upward displacement of the VSD. This mode of operation and its impact on channel gating are confirmed by computational and experimental data showing that disruption of critical contacts between the three domains affects cAMP-and voltage-dependent gating in three HCN isoforms. © 2019, eLife Sciences Publications Ltd. All rights reserved.
2019
Istituto di Biofisica - IBF
cyclic AMP
hyperpolarization activated cyclic nucleotide gated channel
cyclic AMP
hyperpolarization activated cyclic nucleotide gated channel
isoprotein
amino terminal sequence
Article
brain
carboxy terminal sequence
channel gating
confocal microscopy
conformational transition
electric activity
heart
HEK293T cell line
human
ligand binding
molecular dynamics
nonhuman
thermodynamics
binding site
channel gating
chemical phenomena
chemistry
electrophysiology
genetics
HEK293 cell line
kinetics
metabolism
physiology
protein
protein domain
Binding Sites
Cyclic AMP
Electrophysiology
HEK293 Cells
Humans
Hydrophobic and Hydrophilic Interactions
Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels
Ion Channel Gating
Kinetics
Molecular Dynamics Simulation
Protein Conformation
Protein Domains
Protein Isoforms
Thermodynamics
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/411573
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