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乌贼巨大轴突中正常及经蟾毒素修饰的钠通道中的离子通透

Ion permeation in normal and batrachotoxin-modified Na+ channels in the squid giant axon.

作者信息

Correa A M, Latorre R, Bezanilla F

机构信息

Department of Physiology, Ahmanson Laboratory of Neurobiology, University of California, Los Angeles 90024.

出版信息

J Gen Physiol. 1991 Mar;97(3):605-25. doi: 10.1085/jgp.97.3.605.

Abstract

Na+ permeation through normal and batrachotoxin (BTX)-modified squid axon Na+ channels was characterized. Unmodified and toxin-modified Na+ channels were studied simultaneously in outside-out membrane patches using the cut-open axon technique. Current-voltage relations for both normal and BTX-modified channels were measured over a wide range of Na+ concentrations and voltages. Channel conductance as a function of Na+ concentration curves showed that within the range 0.015-1 M Na+ the normal channel conductance is 1.7-2.5-fold larger than the BTX-modified conductance. These relations cannot be fitted by a simple Langmuir isotherm. Channel conductance at low concentrations was larger than expected from a Michaelis-Menten behavior. The deviations from the simple case were accounted for by fixed negative charges located in the vicinity of the channel entrances. Fixed negative charges near the pore mouths would have the effect of increasing the local Na+ concentration. The results are discussed in terms of energy profiles with three barriers and two sites, taking into consideration the effect of the fixed negative charges. Either single- or multi-ion pore models can account for all the permeation data obtained in both symmetric and asymmetric conditions. In a temperature range of 5-15 degrees C, the estimated Q10 for the conductance of the BTX-modified Na+ channel was 1.53. BTX appears not to change the Na+ channel ion selectively (for the conditions used) or the surface charge located near the channel entrances.

摘要

对钠离子通过正常和经蛙毒素(BTX)修饰的鱿鱼轴突钠离子通道的渗透特性进行了表征。使用切开轴突技术,在向外膜片上同时研究了未修饰和经毒素修饰的钠离子通道。在广泛的钠离子浓度和电压范围内测量了正常和BTX修饰通道的电流-电压关系。通道电导作为钠离子浓度曲线的函数表明,在0.015 - 1 M钠离子范围内,正常通道电导比BTX修饰的电导大1.7 - 2.5倍。这些关系不能用简单的朗缪尔等温线拟合。低浓度下的通道电导比米氏行为预期的要大。与简单情况的偏差是由位于通道入口附近的固定负电荷引起的。孔口附近的固定负电荷会增加局部钠离子浓度。考虑到固定负电荷的影响,根据具有三个势垒和两个位点的能量分布对结果进行了讨论。单离子或多离子孔模型都可以解释在对称和不对称条件下获得的所有渗透数据。在5 - 15摄氏度的温度范围内,BTX修饰的钠离子通道电导的估计Q10为1.53。BTX似乎不会改变钠离子通道的离子选择性(在所使用的条件下)或通道入口附近的表面电荷。

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Modification of single Na+ channels by batrachotoxin.由蟾毒素对单个钠离子通道的修饰作用。
Proc Natl Acad Sci U S A. 1982 Nov;79(21):6732-6. doi: 10.1073/pnas.79.21.6732.

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