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Ser165 in the Second Transmembrane Region of the Kir2.1 Channel Determines its Susceptibility to Blockade by Intracellular Mg2+

机译:在Kir2.1通道的第二个跨膜区域中的Ser165确定其易受细胞内Mg2 +阻断的敏感性

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摘要

The strong inward rectification of Kir2.1 currents is reportedly due to blockade of the outward current by cytoplasmic magnesium (Mg2+ i) and polyamines, and is known to be determined in part by three negatively charged amino acid residues: Asp172, Glu224, and Glu299 (D172, E224, E299). Our aim was to identify additional sites contributing to the inward rectification of Kir2.1 currents. To accomplish this, we introduced into wild-type Kir2.1 and its D172N and D172N & E224G & E299S mutants various point mutations selected on the basis of a comparison of the sequences of Kir2.1 and the weak rectifier sWIRK. By analyzing macroscopic currents recorded from Xenopus oocytes using two-electrode voltage clamp, we determined that S165L mutation decreases inward rectification, especially with the triple mutant. The susceptibility to blockade by intracellular blockers was examined using HEK293 transfectants and the inside-out patch clamp configuration. The sensitivity to spermine was significantly diminished in the D172N and triple mutant, but not the S165L mutant. Both the S165L and D172N mutants were less susceptible to blockade by Mg2+ i than the wild-type channel, and the susceptibility was still lower in the D172N & S165L double mutant. These results suggest that S165 is situated deeper into the pore from inside than D172, where it is accessible to Mg2+ i but not to spermine. The single channel conductance of the D172N mutant was similar to that of the wild-type Kir2.1, whereas the conductance of the S165L mutant was significantly lower. Permeation by extracellular Rb+ (Rb+ o) was dramatically increased by S165L mutation, but was increased only slightly by D172N mutation. By contrast, the Rb+/K+ permeability ratio was increased equally by D172N and S165L mutation. We therefore propose that S165 forms the narrowest part of the Kir2.1 pore, where both extracellular and intracellular blockers plug the permeation pathway.
机译:据报道,Kir2.1电流的强向内整流是由于胞质镁(Mg 2 + i)和多胺对向外电流的阻止,并且已知部分由三个带负电荷的氨基确定酸残基:Asp172,Glu224和Glu299(D172,E224,E299)。我们的目标是确定其他有助于Kir2.1流向内整流的站点。为此,我们将野生型Kir2.1及其D172N和D172N和E224G和E299S突变体引入了各种点突变,这些突变是根据Kir2.1和弱整流子sWIRK的序列比较而选择的。通过分析使用两电极电压钳从非洲爪蟾卵母细胞记录的宏观电流,我们确定S165L突变减少了内向整流,特别是三重突变。使用HEK293转染子和由内而外的膜片钳配置检查了细胞内阻滞剂阻滞的敏感性。在D172N和三重突变体中,对精胺的敏感性明显降低,但在S165L突变体中却没有。与野生型通道相比,S165L和D172N突变体均不易受到Mg 2 + i的阻断,而D172N和S165L双重突变体的敏感性仍较低。这些结果表明,S165比D172从内部更深地进入孔中,Mg 2 + i可以使S165接触到,而精胺则不能接触。 D172N突变体的单通道电导率与野生型Kir2.1相似,而S165L突变体的电导率则明显更低。 S165L突变显着增加了细胞外Rb + (Rb + o)的渗透,但D172N突变仅略有增加。相比之下,D172N和S165L突变使Rb + / K + 通透性比均等增加。因此,我们建议S165形成Kir2.1孔的最窄部分,其中细胞外和细胞内阻滞剂均会堵塞渗透途径。

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