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A型电流和T型电流相互作用,在小脑星状细胞中产生一种新的峰潜伏期-电压关系。

A-type and T-type currents interact to produce a novel spike latency-voltage relationship in cerebellar stellate cells.

作者信息

Molineux Michael L, Fernandez Fernando R, Mehaffey W Hamish, Turner Ray W

机构信息

Hotchkiss Brain Institute, University of Calgary, Calgary, Alberta, T2N 4N1, Canada.

出版信息

J Neurosci. 2005 Nov 23;25(47):10863-73. doi: 10.1523/JNEUROSCI.3436-05.2005.

Abstract

The modification of first-spike latencies by low-threshold and inactivating K+ currents (IA) have important implications in neuronal coding and synaptic integration. To date, cells in which first-spike latency characteristics have been analyzed have shown that increased hyperpolarization results in longer first-spike latencies, producing a monotonic relationship between first-spike latency and membrane voltage. Previous work has established that cerebellar stellate cells express members of the Kv4 potassium channel subfamily, which underlie IA in many central neurons. Spike timing in stellate cells could be particularly important to cerebellar output, because the discharge of even single spikes can significantly delay spike discharge in postsynaptic Purkinje cells. In the present work, we studied the first-spike latency characteristics of stellate cells. We show that first-spike latency is nonmonotonic, such that intermediate levels of prehyperpolarization produce the longest spike latencies, whereas greater hyperpolarization or depolarization reduces spike latency. Moreover, the range of first-spike latency values can be substantial in spanning 20-128 ms with preceding membrane shifts of <10 mV. Using patch clamp and modeling, we illustrate that spike latency characteristics are the product of an interplay between IA and low-threshold calcium current (IT) that requires a steady-state difference in the inactivation parameters of the currents. Furthermore, we show that the unique first-spike latency characteristics of stellate cells have important implications for the integration of coincident IPSPs and EPSPs, such that inhibition can shift first-spike latency to differentially modulate the probability of firing.

摘要

低阈值和失活钾电流(IA)对首次峰潜伏期的调节在神经元编码和突触整合中具有重要意义。迄今为止,已分析首次峰潜伏期特征的细胞表明,超极化增强会导致首次峰潜伏期延长,从而在首次峰潜伏期与膜电压之间产生单调关系。先前的研究已经证实,小脑星状细胞表达Kv4钾通道亚家族的成员,该家族是许多中枢神经元中IA电流的基础。星状细胞的峰时间对小脑输出可能尤为重要,因为即使单个峰的发放也会显著延迟突触后浦肯野细胞的峰发放。在本研究中,我们研究了星状细胞的首次峰潜伏期特征。我们发现首次峰潜伏期是非单调的,即预超极化的中间水平会产生最长的峰潜伏期,而更强的超极化或去极化会缩短峰潜伏期。此外,在膜电位变化小于10 mV的情况下,首次峰潜伏期值的范围可以很大,跨度为20 - 128毫秒。通过膜片钳技术和建模,我们表明峰潜伏期特征是IA电流和低阈值钙电流(IT)相互作用的产物,这需要两种电流在失活参数上存在稳态差异。此外,我们还表明,星状细胞独特的首次峰潜伏期特征对同时发生的抑制性突触后电位(IPSP)和兴奋性突触后电位(EPSP)的整合具有重要意义,即抑制作用可以改变首次峰潜伏期,从而不同程度地调节发放概率。

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