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HCN通道的非平衡行为:对HCN通道在天然和工程化起搏器中作用的见解。

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.

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

目的

由超极化激活的环核苷酸调节(HCN)通道基因家族编码的I(f),可调节心脏起搏。在心脏起搏过程中,膜电位变化迅速,阻止了非常缓慢的HCN通道达到平衡。在此,我们研究了非平衡条件下HCN通道的特性,以深入了解不同的HCN亚型如何对心脏起搏产生影响。

方法与结果

HCN1、2和4通道在非洲爪蟾卵母细胞或哺乳动物Cos7细胞中进行异源表达,并进行电压钳实验。我们发现,对于短(100毫秒)测试脉冲,HCN1通道激活(V1/2)强烈依赖于钳制电位(V(H))(在非洲爪蟾卵母细胞中,当V(H)= +70、-75和-140 mV时,V1/2分别为-118 mV、-78 mV和-19 mV),但对于长(300毫秒)测试脉冲则不然,这表明非平衡条件下V1/2的变化可能会改变I(f)在心动周期不同阶段的影响。与此观点一致,在电压钳实验中施加一串窦房结样动作电位时,HCN1表现出明显的电流-电压(IV)滞后现象。通过计算建模,我们证明了HCN1内在缓慢的激活动力学是其IV滞后行为的基础,并且并不妨碍其调节心脏起搏的能力。相比之下,HCN4没有表现出IV滞后现象。这种差异可归因于相对较大的激活时间常数以及时间依赖性HCN4电流明显延迟的起始。实际上,具有中等激活时间常数和延迟的HCN2通道表现出中等程度的滞后表型。

结论

我们得出结论,HCN通道的非平衡特性有助于心脏起搏。这些结果为利用具有不同门控表型的工程化HCN构建体调节内源性和诱导性起搏器的发放频率提供了见解。

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