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在器官型培养中维持的大鼠梯形束中间核中 Kv 通道表达和神经元兴奋性的调节。

Regulation of Kv channel expression and neuronal excitability in rat medial nucleus of the trapezoid body maintained in organotypic culture.

机构信息

MRC Toxicology Unit, University of Leicester, Leicester LE1 9HN, UK.

出版信息

J Physiol. 2010 May 1;588(Pt 9):1451-68. doi: 10.1113/jphysiol.2009.186676. Epub 2010 Mar 8.

Abstract

Principal neurons of the medial nucleus of the trapezoid body (MNTB) express a spectrum of voltage-dependent K(+) conductances mediated by Kv1-Kv4 channels, which shape action potential (AP) firing and regulate intrinsic excitability. Postsynaptic factors influencing expression of Kv channels were explored using organotypic cultures of brainstem prepared from P9-P12 rats and maintained in either low (5 mm, low-K) or high (25 mm, high-K) K(+) medium. Whole cell patch-clamp recordings were made after 7-28 days in vitro. MNTB neurons cultured in high-K medium maintained a single AP firing phenotype, while low-K cultures had smaller K(+) currents, enhanced excitability and fired multiple APs. The calyx of Held inputs degenerated within 3 days in culture, having lost their major afferent input; this preparation of calyx-free MNTB neurons allowed the effects of postsynaptic depolarisation to be studied with minimal synaptic activity. The depolarization caused by the high-K aCSF only transiently increased spontaneous AP firing (<2 min) and did not measurably increase synaptic activity. Chronic depolarization in high-K cultures raised basal levels of Ca(2+), increased Kv3 currents and shortened AP half-widths. These events relied on raised Ca(2+), mediated by influx through voltage-gated calcium channels (VGCCs) and release from intracellular stores, causing an increase in cAMP-response element binding protein (CREB) phosphorylation. Block of VGCCs or of CREB function suppressed Kv3 currents, increased AP duration, and reduced Kv3.3 and c-fos expression. Real-time PCR revealed higher Kv3.3 and Kv1.1 mRNA in high-K compared to low-K cultures, although the increased Kv1.1 mRNA was mediated by a CREB-independent mechanism. We conclude that Kv channel expression and hence the intrinsic membrane properties of MNTB neurons are homeostatically regulated by Ca(2+)-dependent mechanisms and influenced by sustained depolarization of the resting membrane potential.

摘要

脑桥中梯形体内侧核(MNTB)的主要神经元表达一系列由 Kv1-Kv4 通道介导的电压依赖性 K(+)电导,这些通道调节动作电位(AP)的发放和调节内在兴奋性。使用从 P9-P12 大鼠制备的脑桥器官型培养物,并在低(5mm,低 K)或高(25mm,高 K)[K(+)](o)介质中维持,探索了影响 Kv 通道表达的突触后因素。在体外培养 7-28 天后进行全细胞膜片钳记录。在高 K 培养基中培养的 MNTB 神经元保持单一 AP 发放表型,而低 K 培养物具有较小的 K(+)电流、增强的兴奋性并发放多个 AP。培养物中 3 天内失去了其主要传入输入的 Held 输入的 calyx 变性;这种无 calyx 的 MNTB 神经元的制备允许在最小的突触活动下研究突触后去极化的影响。高 K aCSF 引起的去极化仅短暂增加自发 AP 发放(<2 分钟),并且不能显著增加突触活动。高 K 培养物中的慢性去极化提高了基础[Ca(2+)](i)水平,增加了 Kv3 电流并缩短了 AP 半宽度。这些事件依赖于通过电压门控钙通道(VGCCs)内流和细胞内储存释放引起的升高的[Ca(2+)](i),导致 cAMP 反应元件结合蛋白(CREB)磷酸化增加。VGCC 阻断或 CREB 功能阻断抑制 Kv3 电流,增加 AP 持续时间,并减少 Kv3.3 和 c-fos 表达。实时 PCR 显示高 K 培养物中 Kv3.3 和 Kv1.1 mRNA 高于低 K 培养物,尽管增加的 Kv1.1 mRNA是通过 CREB 独立的机制介导的。我们得出结论,Kv 通道表达,因此 MNTB 神经元的内在膜特性通过[Ca(2+)](i)依赖性机制进行稳态调节,并受静息膜电位持续去极化的影响。

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