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将视网膜视杆细胞环鸟苷酸依赖性电导整合到平面双层膜中。

Incorporation of a retinal rod cGMP-dependent conductance into planar bilayers.

作者信息

Tanaka J C, Furman R E, Cobbs W H, Mueller P

出版信息

Proc Natl Acad Sci U S A. 1987 Feb;84(3):724-8. doi: 10.1073/pnas.84.3.724.

Abstract

The light-modulated current of vertebrate retinal rods flows through a 3',5'-cyclic GMP-dependent conductance located in the outer segment plasma membrane. We report the incorporation into planar bilayers of a conductance derived from vertebrate rod outer segment membranes specifically activated by cGMP but not by cAMP, 5'-GMP, GTP, or 5'-AMP. When the mean currents were measured as a function of increasing cGMP concentration, maximal activation occurred at concentrations less than 50 microM. Washout of cGMP rapidly reversed the effect. The apparent half-saturating concentrations were between 12 and 27 microM. Sodium, lithium, cesium, and potassium supported current in the presence of low concentrations of Ca2+, Mg2+, and 100 microM cGMP; choline did not. Removal of the divalent cations reversibly increased the currents. When calcium was the only current-carrying cation, attenuated currents were seen. These experiments support the hypothesis that calcium is a permeant blocker of the conductance. At low concentrations of cGMP in solutions also containing 0.5 mM EDTA, brief current spikes occurred with amplitudes from 0.5 to 4 pA at 50 mV. These spikes differed from the well-defined, unitary conductance steps usually associated with the opening and closing of ion channels. Occasionally we saw longer-lasting channel-like events; however, amplitude histograms did not resolve discrete conductance levels.

摘要

脊椎动物视网膜视杆细胞的光调制电流流经位于外段质膜的一种依赖3',5'-环鸟苷酸的电导。我们报道了将一种源自脊椎动物视杆细胞外段膜的电导整合到平面双层膜中,该电导由环鸟苷酸特异性激活,而非由环腺苷酸、5'-鸟苷酸、鸟苷三磷酸或5'-腺苷酸激活。当测量平均电流作为环鸟苷酸浓度增加的函数时,在浓度低于50微摩尔时出现最大激活。环鸟苷酸的洗脱迅速逆转了这种效应。表观半饱和浓度在12至27微摩尔之间。在低浓度的钙离子、镁离子和100微摩尔环鸟苷酸存在下,钠、锂、铯和钾支持电流;胆碱则不支持。去除二价阳离子可使电流可逆性增加。当钙是唯一携带电流的阳离子时,会观察到电流减弱。这些实验支持了钙是该电导的渗透性阻滞剂这一假说。在还含有0.5毫摩尔乙二胺四乙酸的溶液中,当环鸟苷酸浓度较低时,在50毫伏下会出现幅度为0.5至4皮安的短暂电流尖峰。这些尖峰与通常与离子通道的开放和关闭相关的明确的单位电导阶跃不同。偶尔我们会看到持续时间更长的类似通道的事件;然而,幅度直方图并未解析出离散的电导水平。

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