Chen N, Lucero M T
Department of Psychiatry, Faculty of Medicine, University of British Columbia, Vancouver, Canada.
J Comp Physiol A. 1999 Jan;184(1):63-72. doi: 10.1007/s003590050306.
Squid olfactory receptor neurons are primary bipolar sensory neurons capable of transducing water-born odorant signals into electrical impulses that are transmitted to the brain. In this study, we have identified and characterized the macroscopic properties of voltage-gated Na+ channels in olfactory receptor neurons from the squid Lolliguncula brevis. Using whole-cell voltage-clamp techniques, we found that the voltage-gated Na+ channels were tetrodotoxin sensitive and had current densities ranging from 5 to 169 pA pF-1. Analyses of the voltage dependence and kinetics revealed interesting differences from voltage-gated Na+ channels in olfactory receptor neurons from other species; the voltage of half-inactivation was shifted to the right and the voltage of half-activation was shifted to the left such that a "window-current" occurred, where 10-18% of the Na+ channels activated and did not inactivate at potentials near action potential threshold. Our findings suggest that in squid olfactory neurons, a subset of voltage-gated Na+ channels may play a role in generating a pacemaker-type current for setting the tonic levels of electrical activity required for transmission of hyperpolarizing odor responses to the brain.
鱿鱼嗅觉受体神经元是初级双极感觉神经元,能够将水生气味信号转换为电脉冲,并将其传输到大脑。在本研究中,我们鉴定并表征了来自短蛸(Lolliguncula brevis)的嗅觉受体神经元中电压门控Na⁺通道的宏观特性。使用全细胞电压钳技术,我们发现电压门控Na⁺通道对河豚毒素敏感,电流密度范围为5至169 pA pF⁻¹。对电压依赖性和动力学的分析揭示了与其他物种嗅觉受体神经元中电压门控Na⁺通道有趣的差异;半失活电压向右移动,半激活电压向左移动,从而产生了一个“窗口电流”,在动作电位阈值附近的电位下,10 - 18%的Na⁺通道被激活且不会失活。我们的研究结果表明,在鱿鱼嗅觉神经元中,一部分电压门控Na⁺通道可能在产生起搏器型电流中发挥作用,以设定将超极化气味反应传递到大脑所需的电活动的紧张性水平。