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Non-equilibrium behavior of HCN channels: insights into the role of HCN channels in native and engineered pacemakers.

作者信息

Azene Ezana M, Xue Tian, Marbán Eduardo, Tomaselli Gordon F, Li Ronald A

机构信息

Department of Medicine, Johns Hopkins University, 720 Rutland Avenue/Ross 1165, Baltimore MD 21205, USA.

出版信息

Cardiovasc Res. 2005 Aug 1;67(2):263-73. doi: 10.1016/j.cardiores.2005.03.006. Epub 2005 Apr 21.


DOI:10.1016/j.cardiores.2005.03.006
PMID:16005302
Abstract

OBJECTIVE: I(f), encoded by the hyperpolarization-activated, cyclic nucleotide-modulated (HCN) channel gene family, modulates cardiac pacing. During cardiac pacing, changes in membrane potential are rapid, preventing the very slow HCN channels from reaching equilibrium. Here, we examined the properties of HCN channels under non-equilibrium conditions to shed insight into how different HCN isoforms contribute to cardiac pacing. METHODS AND RESULTS: HCN1, 2 and 4 channels were heterologously expressed in Xenopus laevis oocytes or mammalian Cos7 cells and subjected to voltage clamp. We found that HCN1 channel activation (V1/2) depended strongly on the holding potential (V(H)) for short (100 ms; V1/2=-118 mV, -78 mV and -19 mV for V(H)= +70, -75 and -140 mV, respectively, in Xenopus oocytes) but not long (300-ms) test-pulses, hinting that shifts of V1/2 under non-equilibrium conditions may alter the impact of I(f) in different phases of the cardiac circle. Consistent with this notion, when a train of SA nodal-like action potentials was applied in voltage-clamp experiments, HCN1 exhibited pronounced current-voltage (IV)-hysteresis. Using computational modeling, we demonstrate that the intrinsically sluggish HCN1 activation kinetics underlie their IV-hysteretic behavior and do not hinder the ability to modulate cardiac pacing. By contrast, HCN4 did not exhibit IV-hysteresis. This difference can be attributed to the relatively large activation time constant and markedly delayed onsets of time-dependent HCN4 currents. Indeed, HCN2 channels, which have intermediate activation time constants and delays, displayed and intermediate hysteretic phenotype. CONCLUSION: We conclude that non-equilibrium properties of HCN channels contribute to cardiac pacing. These results provide insight for tuning the firing rate of endogenous and induced pacemakers using engineered HCN constructs with distinct gating phenotypes.

摘要

相似文献

[1]
Non-equilibrium behavior of HCN channels: insights into the role of HCN channels in native and engineered pacemakers.

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[2]
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[3]
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[4]
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[6]
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引用本文的文献

[1]
Pacemaker Channels and the Chronotropic Response in Health and Disease.

Circ Res. 2024-5-10

[2]
Paradigm shift: new concepts for HCN4 function in cardiac pacemaking.

Pflugers Arch. 2022-7

[3]
Reciprocal interaction between IK1 and If in biological pacemakers: A simulation study.

PLoS Comput Biol. 2021-3

[4]
cAMP-dependent regulation of HCN4 controls the tonic entrainment process in sinoatrial node pacemaker cells.

Nat Commun. 2020-11-3

[5]
Biological pacemaker: from biological experiments to computational simulation.

J Zhejiang Univ Sci B. 2020-7

[6]
Combinatorial Treatment of Human Cardiac Engineered Tissues With Biomimetic Cues Induces Functional Maturation as Revealed by Optical Mapping of Action Potentials and Calcium Transients.

Front Physiol. 2020-3-12

[7]
Gene and Protein Expression Profile of Selected Molecular Targets Mediating Electrophysiological Function in Deficient Murine Atria.

Int J Mol Sci. 2018-11-2

[8]
Tachycardia-bradycardia syndrome: Electrophysiological mechanisms and future therapeutic approaches (Review).

Int J Mol Med. 2017-3

[9]
Hysteresis in voltage-gated channels.

Channels (Austin). 2017-3-4

[10]
HCN2 channels: a permanent open state and conductance changes.

J Membr Biol. 2015-2

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