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首页> 外文期刊>Neuroscience Letters: An International Multidisciplinary Journal Devoted to the Rapid Publication of Basic Research in the Brain Sciences >Nitric oxide increases excitability by depressing a calcium activated potassium current in snail neurons.
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Nitric oxide increases excitability by depressing a calcium activated potassium current in snail neurons.

机译:一氧化氮可通过抑制蜗牛神经元中钙激活的钾电流来增加兴奋性。

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摘要

In gastropods, the interneuronal messenger, nitric oxide (NO), modulates spike frequency and synaptic transmission. We have characterized the effect of NO on ion currents underlying neuronal excitability, using current-clamp and two-electrode voltage-clamp techniques. Identified neurons of the pulmonate snail, Helix pomatia, respond to the NO donor sodium nitroprusside (SNP) by increasing the firing frequency and decreasing the latency. Voltage-clamp experiments revealed that SNP or S-nitro-N-acetylpenicillamine (SNAP) depressed the macroscopic outward current, while the control compound N-acetylpenicillamine (NAP) had no effect. Current voltage curves generated from voltage steps to different membrane potentials ranging from -40 to +180 mV showed an N-shaped outward current. Superfusion of ganglia with Ca(2+) free Helix solution abolished the N-shape, indicating the contribution of a Ca(2+) activated K(+) current (I(K,Ca)). Exposure of neurons to SNP or SNAP diminished the N-shape, indicating that NO affects I(K,Ca). The depressing effect of SNP on the outward current was slow and reached steady state in about 5 min. In conclusion, our findings indicate that NO enhances excitability in Helix nervous system by decreasing I(K,Ca).
机译:在腹足动物中,神经元间信使一氧化氮(NO)调节突波频率和突触传递。我们已经使用电流钳位和两电极电压钳位技术表征了NO对神经元兴奋性背后的离子电流的影响。肺蜗牛的鉴定神经元Helix pomatia通过增加发射频率和减少潜伏期来响应NO供体硝普钠(SNP)。电压钳实验表明,SNP或S-硝基-N-乙酰青霉胺(SNAP)抑制了宏观向外电流,而对照化合物N-乙酰青霉胺(NAP)没有作用。从电压阶跃到-40至+180 mV范围内的不同膜电位所产生的当前电压曲线显示为N形向外电流。神经节与无Ca(2+)的螺旋溶液的过度融合废除了N形,表明Ca(2+)激活的K(+)电流(I(K,Ca))的贡献。神经元暴露于SNP或SNAP减少了N形,表明NO影响I(K,Ca)。 SNP对外向电流的抑制作用缓慢,并在约5分钟内达到稳态。总之,我们的发现表明NO可以通过降低I(K,Ca)增强螺旋神经系统的兴奋性。

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