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烟碱型乙酰胆碱受体转导区:不变精氨酸与多个富电子残基偶联。

Nicotinic receptor transduction zone: invariant arginine couples to multiple electron-rich residues.

机构信息

Department of Physiology and Biomedical Engineering, Mayo Clinic College of Medicine, Rochester, Minnesota, USA.

出版信息

Biophys J. 2013 Jan 22;104(2):355-67. doi: 10.1016/j.bpj.2012.12.013.

Abstract

Gating of the muscle-type acetylcholine receptor (AChR) channel depends on communication between the ACh-binding site and the remote ion channel. A key region for this communication is located within the structural transition zone between the ligand-binding and pore domains. Here, stemming from β-strand 10 of the binding domain, the invariant αArg209 lodges within the hydrophobic interior of the subunit and is essential for rapid and efficient channel gating. Previous charge-reversal experiments showed that the contribution of αArg209 to channel gating depends strongly on αGlu45, also within this region. Here we determine whether the contribution of αArg209 to channel gating depends on additional anionic or electron-rich residues in this region. Also, to reconcile diverging findings in the literature, we compare the dependence of αArg209 on αGlu45 in AChRs from different species, and compare the full agonist ACh with the weak agonist choline. Our findings reveal that the contribution of αArg209 to channel gating depends on additional nearby electron-rich residues, consistent with both electrostatic and steric contributions. Furthermore, αArg209 and αGlu45 show a strong interdependence in both human and mouse AChRs, whereas the functional consequences of the mutation αE45R depend on the agonist. The emerging picture shows a multifaceted network of interdependent residues that are required for communication between the ligand-binding and pore domains.

摘要

肌肉型乙酰胆碱受体(AChR)通道的门控依赖于 ACh 结合位点和远程离子通道之间的通讯。这种通讯的关键区域位于配体结合域和孔域之间的结构转换区。在这里,源自结合域的β-10 链的不变αArg209 位于亚基的疏水性内部,对于快速和有效的通道门控是必不可少的。以前的电荷反转实验表明,αArg209 对通道门控的贡献强烈依赖于该区域内的αGlu45。在这里,我们确定 αArg209 对通道门控的贡献是否取决于该区域内的其他阴离子或富电子残基。此外,为了调和文献中的分歧发现,我们比较了来自不同物种的 AChR 中 αArg209 对αGlu45 的依赖性,并比较了完全激动剂 ACh 和弱激动剂胆碱。我们的发现表明,αArg209 对通道门控的贡献依赖于附近的其他富电子残基,这与静电和空间贡献一致。此外,αArg209 和αGlu45 在人和鼠 AChR 中表现出很强的相互依赖性,而突变αE45R 的功能后果取决于激动剂。新出现的画面显示了一个相互依存的残基的多方面网络,这些残基是配体结合域和孔域之间通讯所必需的。

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