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Modulation of Nano-Selenium on Tetrodotoxin-Sensitive Voltage-Gated Sodium Currents in Rat Dorsal Root Ganglion Neurons

机译:纳米硒对大鼠背根神经节神经元中河豚毒素敏感的电压门控钠电流的调节

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Nano-selenium, a novel nano technology production, was demonstrated to be useful in medical and scientific researches. Here, we investigated the effects of nano-Selenium on tetrodotoxin-sensitive (TTX-S) voltage-dependent Na+ channels in isolated rat dorsal root ganglion neurons, using whole-cell patch-clamp method. Nano-selenium irreversibly decreased TTX-S Na+ current (INa) in a concentration-dependent manner and shifted the maximum of the current/voltage relationship from -67mV to -52mV, without modifying the threshold potential of the current. Nano-selenium shifted the steady-state activation and inactivation curves to the left. In the contrast of Na2SeO3, the inhibition effect of 1nM nano-Se was much stronger. The cell treated with 1nM Na2SeO 3 firstly, still respond to further addition of 1nM nano-selenium. These results prove nano-selenium to be a novel antagonist, acted within the channel pore, not on or near the exterior surface of the channel protein where it would experience the membrane electric field, which possesses a distinct binding site from Na2 SeO3
机译:纳米硒是一种新型的纳米技术产品,被证明可用于医学和科学研究。在这里,我们使用全细胞膜片钳方法研究了纳米硒对分离的大鼠背根神经节神经元中河豚毒素敏感(TTX-S)电压依赖性Na + 通道的影响。纳米硒以浓度依赖的方式不可逆地降低了TTX-S Na + 电流(I Na ),并将电流/电压关系的最大值从-67mV变为- 52mV,而无需修改电流的阈值电势。纳米硒将稳态活化和失活曲线向左移动。与Na 2 SeO 3 相反,1nM纳米硒的抑制作用更强。首先用1nM Na 2 SeO 3 处理的细胞仍然对进一步添加1nM纳米硒有反应。这些结果证明纳米硒是一种新型的拮抗剂,在通道孔内起作用,而不是在通道蛋白的外表面上或附近,在那里它会经历膜电场,该膜电场具有与Na 2明显不同的结合位点。 SeO 3

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