首页> 美国卫生研究院文献>The Journal of Physiology >A-type potassium channels differentially tune afferent pathways from rat solitary tract nucleus to caudal ventrolateral medulla or paraventricular hypothalamus
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A-type potassium channels differentially tune afferent pathways from rat solitary tract nucleus to caudal ventrolateral medulla or paraventricular hypothalamus

机译:A型钾离子通道从大鼠单束核到尾侧腹外侧延髓或脑室下丘脑的传入途径有差异

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摘要

The solitary tract nucleus (NTS) conveys visceral information to diverse central networks involved in homeostatic regulation. Although afferent information content arriving at various CNS sites varies substantially, little is known about the contribution of processing within the NTS to these differences. Using retrograde dyes to identify specific NTS projection neurons, we recently reported that solitary tract (ST) afferents directly contact NTS neurons projecting to caudal ventrolateral medulla (CVLM) but largely only indirectly contact neurons projecting to the hypothalamic paraventricular nucleus (PVN). Since intrinsic properties impact information transmission, here we evaluated potassium channel expression and somatodendritic morphology of projection neurons and their relation to afferent information output directed to PVN or CVLM pathways. In slices, tracer-identified projection neurons were classified as directly or indirectly (polysynaptically) coupled to ST afferents by EPSC latency characteristics (directly coupled, jitter < 200 μs). In each neuron, voltage-dependent potassium currents (IK) were evaluated and, in representative neurons, biocytin-filled structures were quantified. Both CVLM- and PVN-projecting neurons had similar, tetraethylammonium-sensitive IK. However, only PVN-projecting NTS neurons displayed large transient, 4aminopyridine-sensitive, A-type currents (IKA). PVN-projecting neurons had larger cell bodies with more elaborate dendritic morphology than CVLM-projecting neurons. ST shocks faithfully (> 75%) triggered action potentials in CVLM-projecting neurons but spike output was uniformly low (< 20%) in PVN-projecting neurons. Pre-conditioning hyperpolarization removed IKA inactivation and attenuated ST-evoked spike generation along PVN but not CVLM pathways. Thus, multiple differences in structure, organization, synaptic transmission and ion channel expression tune the overall fidelity of afferent signals that reach these destinations.
机译:孤束核(NTS)将内脏信息传递到参与稳态调节的各种中央网络。尽管到达各个CNS站点的传入信息内容变化很大,但对于NTS中处理对这些差异的贡献知之甚少。使用逆行染料来识别特定的NTS投射神经元,我们最近报道说,孤立道(ST)传入神经直接接触投射到尾腹侧延髓(CVLM)的NTS神经元,但大部分仅间接接触投射到下丘脑室旁核(PVN)的神经元。由于内在特性影响信息传递,因此我们在这里评估了投射神经元的钾通道表达和体树突状形态及其与定向到PVN或CVLM途径的传入信息输出的关系。在切片中,示踪剂识别的投射神经元通过EPSC潜伏时间特性(直接耦合,抖动<200μs)被分类为直接或间接(多突触地)耦合到ST传入。在每个神经元中,评估电压依赖性钾电流(IK),在代表性神经元中,定量生物素填充的结构。投射CVLM和PVN的神经元都具有相似的对四乙铵敏感的IK。但是,只有投射PVN的NTS神经元显示出大的瞬态4氨基吡啶敏感性A型电流(IKA)。投射PVN的神经元比投射CVLM的神经元具有更大的细胞体和更精细的树突形态。 ST电击如实地(> 75%)触发了CVLM投射神经元的动作电位,但PVN投射神经元的突波输出始终较低(<20%)。预处理超极化消除了IKA失活,并减弱了沿PVN而不是CVLM途径的ST诱发的尖峰产生。因此,结构,组织,突触传递和离子通道表达的多种差异可调节到达这些目的地的传入信号的整体保真度。

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