首页> 外文OA文献 >The Eeee Locus Is the Sole High-Affinity Ca2+ Binding Structure in the Pore of a Voltage-Gated Ca2+ Channel: Block by Ca2+ Entering from the Intracellular Pore Entrance
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The Eeee Locus Is the Sole High-Affinity Ca2+ Binding Structure in the Pore of a Voltage-Gated Ca2+ Channel: Block by Ca2+ Entering from the Intracellular Pore Entrance

机译:Eeee基因座是电压门控Ca2 +通道孔中的唯一高亲和力Ca2 +结合结构:受Ca2 +从细胞内孔入口进入的阻碍。

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摘要

Selective permeability in voltage-gated Ca2+ channels is dependent upon a quartet of pore-localized glutamate residues (EEEE locus). The EEEE locus is widely believed to comprise the sole high-affinity Ca2+ binding site in the pore, which represents an overturning of earlier models that had postulated two high-affinity Ca2+ binding sites. The current view is based on site-directed mutagenesis work in which Ca2+ binding affinity was attenuated by single and double substitutions in the EEEE locus, and eliminated by quadruple alanine (AAAA), glutamine (QQQQ), or aspartate (DDDD) substitutions. However, interpretation of the mutagenesis work can be criticized on the grounds that EEEE locus mutations may have additionally disrupted the integrity of a second, non-EEEE locus high-affinity site, and that such a second site may have remained undetected because the mutated pore was probed only from the extracellular pore entrance. Here, we describe the results of experiments designed to test the strength of these criticisms of the single high-affinity locus model of selective permeability in Ca2+ channels. First, substituted-cysteine accessibility experiments indicate that pore structure in the vicinity of the EEEE locus is not extensively disrupted as a consequence of the quadruple AAAA mutations, suggesting in turn that the quadruple mutations do not distort pore structure to such an extent that a second high affinity site would likely be destroyed. Second, the postulated second high-affinity site was not detected by probing from the intracellularly oriented pore entrance of AAAA and QQQQ mutants. Using inside-out patches, we found that, whereas micromolar Ca2+ produced substantial block of outward Li+ current in wild-type channels, internal Ca2+ concentrations up to 1 mM did not produce detectable block of outward Li+ current in the AAAA or QQQQ mutants. These results indicate that the EEEE locus is indeed the sole high-affinity Ca2+ binding locus in the pore of voltage-gated Ca2+ channels.
机译:电压门控Ca2 +通道中的选择性渗透率取决于孔定位的谷氨酸残基(EEEE基因座)的四重态。普遍认为EEEE基因座在孔中包含唯一的高亲和力Ca2 +结合位点,这代表了已推定两个高亲和力Ca2 +结合位点的早期模型的推翻。当前观点基于定点诱变工作,其中Ca2 +结合亲和力通过EEEE基因座中的单取代和双取代而减弱,并被四倍丙氨酸(AAAA),谷氨酰胺(QQQQ)或天冬氨酸(DDDD)取代所消除。然而,可以基于以下观点批评对诱变工作的解释:EEEE基因座突变可能另外破坏了第二个非EEEE基因座高亲和力位点的完整性,并且第二个位点可能仍未被发现,因为突变的孔仅从细胞外孔入口进行探测。在这里,我们描述了旨在测试这些对Ca2 +通道中的选择性渗透性的单个高亲和性轨迹模型的批评的强度的实验结果。首先,取代的半胱氨酸可及性实验表明,EEAAA基因座附近的孔结构并未因四倍的AAAA突变而被广泛破坏,这提示四倍的突变不会使孔结构变形至第二个程度。高亲和力位点可能会被破坏。其次,通过从AAAA和QQQQ突变体的细胞内定向孔入口进行探测,未发现假定的第二个高亲和力位点。使用由内而外的贴片,我们发现,虽然微摩尔Ca2 +在野生型通道中产生大量的向外Li +电流阻断,但内部Ca2 +浓度高达1 mM却在AAAA或QQQQ突变体中未检测到向外Li +电流阻断。这些结果表明,EEEE基因座确实是电压门控Ca2 +通道孔中唯一的高亲和力Ca2 +结合基因座。

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