Kawai F, Kurahashi T, Kaneko A
Department of Information Physiology, National Institute for Physiological Sciences, Okazaki, Japan.
J Gen Physiol. 1996 Dec;108(6):525-35. doi: 10.1085/jgp.108.6.525.
Mechanisms underlying action potential generation in the newt olfactory receptor cell were investigated by using the whole-cell version of the patch-clamp technique. Isolated olfactory cells had a resting membrane potential of -70 +/- 9 mV. Injection of a depolarizing current step triggered action potentials under current clamp condition. The amplitude of the action potential was reduced by lowering external Na+ concentration. After a complete removal of Na+, however, cells still showed action potentials which was abolished either by Ca2+ removal or by an application of Ca2+ channel blocker (Co2+ or Ni2+), indicating an involvement of Ca2+ current in spike generation of newt olfactory receptor cells. Under the voltage clamp condition, depolarization of the cell to -40 mV from the holding voltage of -100 mV induced a fast transient inward current, which consisted of Na+ (INa) and T-type Ca2+ (ICa.T) currents. The amplitude of ICa,T was about one fourth of that of INa. Depolarization to more positive voltages also induced L-type Ca2+ current (ICa,L). ICa,L was as small as a few pA in normal Ringer solution. The activating voltage of ICa,T was approximately 10 mV more negative than that of INa. Under current clamp, action potentials generated by a least effective depolarization was almost completely blocked by 0.1 mM Ni2+ (a specific T-type Ca2+ channel blocker) even in the presence of Na+. These results suggest that ICa,T contributes to action potential in the newt olfactory receptor cell and lowers the threshold of spike generation.
利用膜片钳技术的全细胞模式,研究了蝾螈嗅觉受体细胞动作电位产生的机制。分离出的嗅觉细胞静息膜电位为-70±9 mV。在电流钳制条件下,注入去极化电流阶跃可触发动作电位。降低细胞外Na⁺浓度会使动作电位的幅度降低。然而,在完全去除Na⁺后,细胞仍表现出动作电位,而去除Ca²⁺或应用Ca²⁺通道阻滞剂(Co²⁺或Ni²⁺)可消除这些动作电位,这表明Ca²⁺电流参与了蝾螈嗅觉受体细胞的动作电位产生。在电压钳制条件下,将细胞从-100 mV的钳制电压去极化至-40 mV会诱发一个快速的瞬时内向电流,该电流由Na⁺电流(INa)和T型Ca²⁺电流(ICa.T)组成。ICa.T的幅度约为INa的四分之一。去极化至更正的电压也会诱发L型Ca²⁺电流(ICa.L)。在正常任氏液中,ICa.L小至几皮安。ICa.T的激活电压比INa的激活电压负约10 mV。在电流钳制下,即使存在Na⁺,由最低有效去极化产生的动作电位也几乎完全被0.1 mM Ni²⁺(一种特异性T型Ca²⁺通道阻滞剂)阻断。这些结果表明,ICa.T在蝾螈嗅觉受体细胞的动作电位形成中起作用,并降低了动作电位产生的阈值。