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首页> 外文期刊>Cellular and Molecular Neurobiology >The Effect of Recombinant Neurotoxins from the Sea Anemone Anthopleura sp. on Sodium Currents of Rat Cerebral Cortical Neurons
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The Effect of Recombinant Neurotoxins from the Sea Anemone Anthopleura sp. on Sodium Currents of Rat Cerebral Cortical Neurons

机译:海葵Anthopleura sp。重组神经毒素的作用。脑皮质神经元钠电流的变化

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摘要

We have investigated the action of the recombinant neurotoxins, named Hk7a and Hk2a, whose amino acid sequences differ only in two positions, isolated from the sea anemone Anthopleura sp., on neuronal sodium currents using the whole-cell voltage-clamp techniques. The rat cerebral cortical neurons in primary culture were used for this study. In our experiments, these cells all express tetrodotoxin-sensitive (TTX-S) sodium currents. Under the voltage-clamp condition, application of Hk7a and Hk2a reduced the sodium channel current amplitude and shifted the voltage dependence of activation to more positive potential; while Hk7a produced no significant effect on the voltage at which 50% of the channels were inactivated, Hk2a caused profound hyperpolarizing shift of the voltage-dependent inactivation. Also, both Hk7a and Hk2a increased the time course of recovery from inactivation. In kinetic studies, whereas application of Hk2a slows the time to peak of voltage-gated sodium channel, the time course of fast and slow inactivating component, no significant effect was observed in Hk7a. These results suggested that the difference of key amino acid between Hk7a and Hk2a might contribute to their different action; therefore, they could be used as pharmacological tool to study the structure and function of voltage-gated sodium channel.
机译:我们已经研究了使用全细胞电压钳技术的重组神经毒素Hk7a和Hk2a的作用,它们的氨基酸序列仅在两个位置不同(从海葵Anthopleura sp。分离)对神经元钠电流的作用。原代培养的大鼠大脑皮层神经元用于这项研究。在我们的实验中,这些细胞均表达河豚毒素敏感性(TTX-S)钠电流。在电压钳制条件下,Hk7a和Hk2a的施加降低了钠通道电流幅度,并将激活的电压依赖性转变为更正的电位。尽管Hk7a对50%的通道被灭活的电压没有产生显着影响,但Hk2a引起了电压依赖性灭活的深刻超极化位移。同样,Hk7a和Hk2a均增加了从失活中恢复的时间进程。在动力学研究中,虽然Hk2a的使用减慢了电压门控钠通道达到峰值的时间,而快速和慢速灭活组分的时间进程却没有在Hk7a中观察到明显的影响。这些结果表明,Hk7a和Hk2a之间关键氨基酸的差异可能是其不同作用的原因。因此,它们可作为药理学工具研究电压门控钠通道的结构和功能。

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