Alekseev S I, Ziskin M C
Institute of Cell Biophysics, Russian Academy of Sciences, Puschino, Moscow Region, Russia.
J Membr Biol. 1995 Aug;146(3):327-41. doi: 10.1007/BF00233952.
The gating mechanism of A-channels of Lymnaea neurons and the effect of tetraethylammonium (TEA) on these channels were studied using macroscopic recording techniques. Along with the fast-inactivating A-current (Iaf) described earlier we found a slow-inactivating A-current (Ias) in some neurons of the visceral ganglion. Both currents have revealed similar activation kinetics, but differ in the inactivation kinetics and mechanisms. The inactivation kinetics of Ias were satisfactorily described by a sum of two exponentials with rate constants (tau -1) of 28 s-1 and 4.5 s-1 at V = -20 mV. Intracellular TEA reduced the peak amplitudes of Iaf and Ias and slowed the rate of the fast phase of inactivation of Iaf. This resulted in a crossover of the current traces in the presence and absence of TEA, as though it competes with the binding of the inactivating particle. The mechanism of the fast phase of inactivation of Iaf is similar to that of fast inactivation of the Shaker K+ channels which appears to be due to a ball-and-chain mechanism. The slow phases of inactivation of Iaf and Ias reveal properties characteristic of C-type inactivation shown in Shaker K+ channels. A partially coupled model including three pathways for transition of a channel from the closed to open states accurately reproduces all of the experimental data. It has voltage-independent transitions to the inactivation states indicating that inactivation of A-current is not associated with charge movement through the membrane. The results suggest that Lymnaea A-channels seem to be heteromultimeric.
运用宏观记录技术研究了椎实螺神经元A通道的门控机制以及四乙铵(TEA)对这些通道的影响。除了先前描述的快速失活A电流(Iaf)外,我们在内脏神经节的一些神经元中还发现了一种缓慢失活的A电流(Ias)。两种电流都显示出相似的激活动力学,但在失活动力学和机制上有所不同。在V = -20 mV时,Ias的失活动力学可以用两个指数之和很好地描述,速率常数(tau -1)分别为28 s-1和4.5 s-1。细胞内TEA降低了Iaf和Ias的峰值幅度,并减慢了Iaf快速失活相的速率。这导致了有无TEA时电流轨迹的交叉,就好像它与失活颗粒的结合相互竞争。Iaf快速失活相的机制与Shaker K+通道的快速失活机制相似,似乎是由于球链机制。Iaf和Ias的缓慢失活相显示出Shaker K+通道中C型失活的特征性质。一个包括通道从关闭状态到开放状态转变的三条途径的部分耦合模型准确地再现了所有实验数据。它具有向失活状态的电压非依赖性转变,表明A电流的失活与通过膜的电荷移动无关。结果表明,椎实螺A通道似乎是异源多聚体。