首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >S3b amino acid residues do not shuttle across the bilayer in voltage-dependent Shaker K+ channels
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S3b amino acid residues do not shuttle across the bilayer in voltage-dependent Shaker K+ channels

机译:S3b氨基酸残基不会在电压依赖性Shaker K +通道中穿梭穿过双层

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摘要

In voltage-dependent channels, positive charges contained within the S4 domain are the voltage-sensing elements. The “voltage-sensor paddle” gating mechanism proposed for the KvAP K+ channel has been the subject of intense discussion regarding its general applicability to the family of voltage-gated channels. In this model, the voltage sensor composed of the S3b and the S4 segment shuttles across the lipid bilayer during channel activation. Guided by this mechanism, we assessed here the accessibility of residues in the S3 segment of the Shaker K+ channel by using cysteine-scanning mutagenesis. Mutants expressed robust K+ currents in Xenopus oocytes and reacted with methanethiosulfonate ethyltrimethylammonium in both closed and open conformations of the channel. Because Shaker has a long S3–S4 linker segment, we generated a deletion mutant with only three residues to emulate the KvAP structure. In this short linker mutant, all of the tested residues in the S3b were accessible to methanethiosulfonate ethyltrimethylammonium in both closed and open conformations. Because the S3b moves together with the S4 domain in the paddle model, we tested the effects of deleting two negative charges or adding a positive charge to this region of the channel. We found that altering the S3b net charge does not modify the total gating charge involved in channel activation. We conclude that the S3b segment is always exposed to the external milieu of the Shaker K+ channel. Our results are incompatible with any model involving a large membrane displacement of segment S3b.
机译:在电压相关通道中,包含在S4域中的正电荷是电压传感元件。针对KvAP K + 通道提出的“电压传感器桨状”门控机制一直是对其在电压门控通道系列中的普遍适用性进行激烈讨论的主题。在此模型中,由S3b和S4片段组成的电压传感器在通道激活过程中跨脂质双层穿梭。在这种机制的指导下,我们在这里通过半胱氨酸扫描诱变评估了Shaker K + 通道S3段中残基的可及性。突变体在爪蟾卵母细胞中表达强健的K + 电流,并在通道的闭合和开放构象下与甲硫代磺酸乙酯三甲基铵反应。由于Shaker具有较长的S3–S4接头片段,我们生成了仅具有三个残基的缺失突变体来模拟KvAP结构。在这个短连接子突变体中,甲烷硫代磺酸乙酯三甲基铵的封闭和开放构型都可接近S3b中的所有测试残基。由于S3b在桨状模型中与S4域一起移动,因此我们测试了删除两个负电荷或向通道的该区域添加正电荷的效果。我们发现,更改S3b净电荷不会修改通道激活中涉及的总选通电荷。我们得出结论,S3b段始终暴露于Shaker K + 通道的外部环境。我们的结果与涉及片段S3b的大膜位移的任何模型都不相容。

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