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Divalent cation permeability and blockade of Ca2+-permeant non-selective cation channels in rat adrenal zona glomerulosa cells

机译:大鼠肾上腺肾小球细胞的二价阳离子通透性和对Ca2 +渗透性非选择性阳离子通道的阻断

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摘要

The effects of the divalent cations Ca2+, Mg2+ and Ni2+ on unitary Na+ currents through receptor-regulated non-selective cation channels were studied in inside-out and cell-attached patches from rat adrenal zona glomerulosa cells.External Ca2+ caused a concentration-dependent and voltage-independent inhibition of inward Na+ current, exhibiting an IC50 of 1.4 mm. The channel was also Ca2+ permeant and external Ca2+ shifted the reversal potential as expected for a channel exhibiting a constant Ca2+:Na+ permeability ratio near to 4.External and internal 2 mm Mg2+ caused voltage-dependent inhibition of inward and outward Na+ current, respectively. Modelling Mg2+ as an impermeant fast open channel blocker indicated that external Mg2+ blocked the pore at a single site exhibiting a zero voltage Kd of 5.1 mm for Mg2+ and located 19% of the distance through the transmembrane electric field from the external surface. Internal Mg2+ blocked the pore at a second site exhibiting a Kd of 1.7 mm for Mg2+ and located 36% of the distance through the transmembrane electric field from the cytosolic surface.External Ni2+ caused a voltage- and concentration-dependent slow blockade of inward Na+ current. Modelling Ni2+ as an impermeant slow open channel blocker indicated that Ni2+ blocked the pore at a single site exhibiting a Kd of 1.09 mm for Ni2+ and located 13.7% of the distance through the transmembrane electric field from the external surface.External 2 mm Mg2+ increased the Kd for external Ni2+ binding to 1.27 mm, consistent with competition for a single binding site. Changing ionic strength did not substantially affect Ni2+ blockade indicating the absence of surface potential under physiological ionic conditions.It is concluded that at least two divalent cation binding sites, separated by a high free energy barrier (the selectivity filter), are located in the pore and contribute to Ca2+ selectivity and permeability of the channel.
机译:在大鼠肾上腺肾小球细胞内外和细胞附着的膜片中研究了二价阳离子Ca2 +,Mg2 +和Ni2 +通过受体调节的非选择性阳离子通道对单一Na +电流的影响。外部Ca2 +引起浓度依赖性和电压依赖性抑制内向Na +电流,IC50为1.4 mm。该通道也是Ca2 +渗透性的,外部Ca2 +像显示恒定Ca2 +:Na +磁导率比接近4的通道所预期的那样反转了电位,外部和内部2 mm Mg2 +分别引起了电压依赖性的内向和外向Na +电流抑制。将Mg2 +建模为非渗透性快速开放通道阻滞剂表明,外部Mg2 +在单个位置处阻塞了孔,Mg2 +的零电压Kd为5.1 mm,并且位于跨膜电场从外表面的距离的19%。内部的Mg2 +阻塞了第二个孔,Mg2 +的Kd为1.7 mm,位于从胞质表面穿过跨膜电场的距离的36%。外部的Ni2 +引起电压依赖性和浓度依赖性的内向Na +电流缓慢阻滞。 。将Ni2 +模拟为非渗透性慢速开放通道阻滞剂表明,Ni2 +阻塞了单个位置的孔,Ni2 +的Kd为1.09 mm,并且位于跨膜电场从外表面的距离的13.7%,外部2 mm的Mg2 +增加了与外部Ni2 +结合的Kd为1.27 mm,与单个结合位点的竞争一致。改变离子强度并没有实质性地影响Ni2 +的阻滞,这表明在生理离子条件下没有表面电势。结论是至少有两个被高自由能垒(选择性过滤器)隔开的二价阳离子结合位点位于孔中并有助于通道的Ca2 +选择性和渗透性。

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