Open Access
Voltage-dependent activation in EAG channels follows a ligand-receptor rather than a mechanical-lever mechanism
Olfat A Malak
1
,
Grigory S Gluhov
2
,
Anastasia V Grizel
3
,
Kseniya S Kudryashova
4
,
Olga S. Sokolova
2
,
G. Loussouarn
1
1
Publication type: Journal Article
Publication date: 2019-04-01
scimago Q1
wos Q2
SJR: 1.705
CiteScore: 7.6
Impact factor: 3.9
ISSN: 00219258, 1083351X
PubMed ID:
30808709
Biochemistry
Molecular Biology
Cell Biology
Abstract
Ether-a-go-go family (EAG) channels play a major role in many physiological processes in humans, including cardiac repolarization and cell proliferation. Cryo-EM structures of two of them, KV10.1 and human ether-a-go-go-related gene (hERG or KV11.1), have revealed an original nondomain-swapped structure, suggesting that the mechanism of voltage-dependent gating of these two channels is quite different from the classical mechanical-lever model. Molecular aspects of hERG voltage-gating have been extensively studied, indicating that the S4-S5 linker (S4-S5L) acts as a ligand binding to the S6 gate (S6 C-terminal part, S6T) and stabilizes it in a closed state. Moreover, the N-terminal extremity of the channel, called N-Cap, has been suggested to interact with S4-S5L to modulate channel voltage-dependent gating, as N-Cap deletion drastically accelerates hERG channel deactivation. In this study, using COS-7 cells, site-directed mutagenesis, electrophysiological measurements, and immunofluorescence confocal microscopy, we addressed whether these two major mechanisms of voltage-dependent gating are conserved in KV10.2 channels. Using cysteine bridges and S4-S5L–mimicking peptides, we show that the ligand/receptor model is conserved in KV10.2, suggesting that this model is a hallmark of EAG channels. Truncation of the N-Cap domain, Per-Arnt-Sim (PAS) domain, or both in KV10.2 abolished the current and altered channel trafficking to the membrane, unlike for the hERG channel in which N-Cap and PAS domain truncations mainly affected channel deactivation. Our results suggest that EAG channels function via a conserved ligand/receptor model of voltage gating, but that the N-Cap and PAS domains have different roles in these channels.
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15
Total citations:
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Citations from 2024:
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(33%)
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GOST
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Malak O. A. et al. Voltage-dependent activation in EAG channels follows a ligand-receptor rather than a mechanical-lever mechanism // Journal of Biological Chemistry. 2019. Vol. 294. No. 16. pp. 6506-6521.
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Malak O. A., Gluhov G. S., Grizel A. V., Kudryashova K. S., Sokolova O. S., Loussouarn G. Voltage-dependent activation in EAG channels follows a ligand-receptor rather than a mechanical-lever mechanism // Journal of Biological Chemistry. 2019. Vol. 294. No. 16. pp. 6506-6521.
Cite this
RIS
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TY - JOUR
DO - 10.1074/jbc.RA119.007626
UR - https://doi.org/10.1074/jbc.RA119.007626
TI - Voltage-dependent activation in EAG channels follows a ligand-receptor rather than a mechanical-lever mechanism
T2 - Journal of Biological Chemistry
AU - Malak, Olfat A
AU - Gluhov, Grigory S
AU - Grizel, Anastasia V
AU - Kudryashova, Kseniya S
AU - Sokolova, Olga S.
AU - Loussouarn, G.
PY - 2019
DA - 2019/04/01
PB - American Society for Biochemistry and Molecular Biology
SP - 6506-6521
IS - 16
VL - 294
PMID - 30808709
SN - 0021-9258
SN - 1083-351X
ER -
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BibTex (up to 50 authors)
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@article{2019_Malak,
author = {Olfat A Malak and Grigory S Gluhov and Anastasia V Grizel and Kseniya S Kudryashova and Olga S. Sokolova and G. Loussouarn},
title = {Voltage-dependent activation in EAG channels follows a ligand-receptor rather than a mechanical-lever mechanism},
journal = {Journal of Biological Chemistry},
year = {2019},
volume = {294},
publisher = {American Society for Biochemistry and Molecular Biology},
month = {apr},
url = {https://doi.org/10.1074/jbc.RA119.007626},
number = {16},
pages = {6506--6521},
doi = {10.1074/jbc.RA119.007626}
}
Cite this
MLA
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Malak, Olfat A., et al. “Voltage-dependent activation in EAG channels follows a ligand-receptor rather than a mechanical-lever mechanism.” Journal of Biological Chemistry, vol. 294, no. 16, Apr. 2019, pp. 6506-6521. https://doi.org/10.1074/jbc.RA119.007626.
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