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醚 - 去极化相关基因钾通道对小鼠听觉脑干神经元的阈兴奋性有贡献。

Ether-à-go-go-related gene K+ channels contribute to threshold excitability of mouse auditory brainstem neurons.

作者信息

Hardman Rachael M, Forsythe Ian D

机构信息

MRC Toxicology Unit, University of Leicester, Leicester, UK.

出版信息

J Physiol. 2009 Jun 1;587(Pt 11):2487-97. doi: 10.1113/jphysiol.2009.170548. Epub 2009 Apr 9.

Abstract

The ionic basis of excitability requires identification and characterisation of expressed channels and their specific roles in native neurons. We have exploited principal neurons of the medial nucleus of the trapezoid body (MNTB) as a model system for examining voltage-gated K(+) channels, because of their known function and simple morphology. Here we show that channels of the ether-à-go-go-related gene family (ERG, Kv11; encoded by kcnh) complement Kv1 channels in regulating neuronal excitability around threshold voltages. Using whole-cell patch clamp from brainstem slices, the selective ERG antagonist E-4031 reduced action potential (AP) threshold and increased firing on depolarisation. In P12 mice, under voltage-clamp with elevated K(+) (20 mm), a slowly deactivating current was blocked by E-4031 or terfenadine (V(0.5,act) = -58.4 +/- 0.9 mV, V(0.5,inact) = -76.1 +/- 3.6 mV). Deactivation followed a double exponential time course (tau(slow) = 113.8 +/- 6.9 ms, tau(fast) = 33.2 +/- 3.8 ms at -110 mV, tau(fast) 46% peak amplitude). In P25 mice, deactivation was best fitted by a single exponential (tau(fast) = 46.8 +/- 5.8 ms at -110 mV). Quantitative RT-PCR showed that ERG1 and ERG3 were the predominant mRNAs and immunohistochemistry showed expression as somatic plasma membrane puncta on principal neurons. We conclude that ERG currents complement Kv1 currents in limiting AP firing at around threshold; ERG may have a particular role during periods of high activity when K(+) is elevated. These ERG currents suggest a potential link between auditory hyperexcitability and acoustic startle triggering of cardiac events in familial LQT2.

摘要

兴奋性的离子基础需要对表达的通道及其在天然神经元中的特定作用进行鉴定和表征。由于其已知功能和简单形态,我们利用了梯形体内侧核(MNTB)的主要神经元作为研究电压门控钾离子通道(K(+)通道)的模型系统。在这里,我们表明,醚 - 去 - 去相关基因家族(ERG,Kv11;由kcnh编码)的通道在调节阈值电压附近的神经元兴奋性方面补充了Kv1通道。使用脑干切片的全细胞膜片钳技术,选择性ERG拮抗剂E - 4031降低了动作电位(AP)阈值并增加了去极化时的放电频率。在P12小鼠中,在高K(+)(20 mM)电压钳制下,一种缓慢失活的电流被E - 4031或特非那定阻断(V(0.5,act) = -58.4 ± 0.9 mV,V(0.5,inact) = -76.1 ± 3.6 mV)。失活遵循双指数时间进程(在 -110 mV时,tau(slow) = 113.8 ± 6.9 ms,tau(fast) = 33.2 ± 3.8 ms,tau(fast)为峰值幅度的46%)。在P25小鼠中,失活最适合用单指数拟合(在 -110 mV时,tau(fast) = 46.8 ± 5.8 ms)。定量逆转录聚合酶链反应(RT - PCR)表明ERG1和ERG3是主要的信使核糖核酸(mRNA),免疫组织化学显示其表达为主神经元上的体细胞质膜斑点。我们得出结论,ERG电流在限制阈值附近的AP发放方面补充了Kv1电流;当K(+)升高时,ERG可能在高活动期发挥特殊作用。这些ERG电流提示了家族性长QT2综合征中听觉过度兴奋与心脏事件的听觉惊吓触发之间的潜在联系。

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