Puil E, Werman R
Can J Physiol Pharmacol. 1981 Dec;59(12):1280-4. doi: 10.1139/y81-201.
Conventional intracellular recording with low resistance electrodes was used to examine the effects of iontophoretic injections of Cs+ ions (30-200 nA for 30-500 s) into spinal motoneurons of cats anesthetized with pentobarbital and paralyzed with gallamine. The most striking effects of internal Cs+ were a great prolongation of the falling phase of action potentials, a large reduction in the amplitude of their afterhyperpolarizations, and a considerable increase in the size of delayed depolarizations. A reduction of resting membrane conductance (up to half of control values) and a small increase in membrane potential usually were evident. Although the rate of rise and amplitude of spikes sometimes were increased, the above effects on membrane properties usually were accompanied by block of antidromic invasion or synaptic spike generation, and inactivation of directly evoked spikes. Recovery of spike genesis was very rapid but the prolongation of spikes and other effects of Cs+ lasted 4-35 min, depending on the amount of Cs+ application. Larger injections of Cs+ resulted in greater depolarizations of up to 13 mV. It is concluded that internal Cs+ ions block voltage-dependent K+ conductance of spike repolarization, the Ca2+-activated K+ conductance responsible for the afterhyperpolarization, and some of the K+ conductance responsible for the resting potential. It is suggested that the enhanced delayed depolarization may result from a Cs+-blockade of an early outward K+ current which would unmask an inward current of Ca2+ ions.
采用常规的低电阻电极细胞内记录法,研究了向用戊巴比妥麻醉并用加拉明麻痹的猫的脊髓运动神经元中离子电泳注射Cs⁺离子(30 - 200 nA,持续30 - 500 s)的效应。胞内Cs⁺的最显著效应是动作电位下降相极大延长、其超极化后电位幅度大幅降低以及延迟去极化幅度显著增加。静息膜电导降低(可达对照值的一半)且膜电位通常有小幅升高。尽管峰电位的上升速率和幅度有时会增加,但上述对膜特性的影响通常伴随着逆向冲动入侵或突触峰电位产生的阻断以及直接诱发峰电位的失活。峰电位产生的恢复非常迅速,但Cs⁺对峰电位的延长及其他效应持续4 - 35分钟,这取决于Cs⁺的施加量。较大剂量的Cs⁺注射导致高达13 mV的更大去极化。结论是,胞内Cs⁺离子阻断了负责峰电位复极化的电压依赖性K⁺电导、负责超极化后电位的Ca²⁺激活K⁺电导以及一些负责静息电位的K⁺电导。有人提出,增强的延迟去极化可能是由于Cs⁺阻断了早期外向K⁺电流,从而使Ca²⁺离子的内向电流暴露出来。