Yang Longjin, Tae Han-Shen, Fan Zhou, Shao Xiaoxia, Xu Shaoqiong, Zhao Suwen, Adams David J, Wang Chunguang
Department of Central Laboratory, Shanghai 10th People's Hospital, School of Life Sciences and Technology, Tongji University, Shanghai 200092, China.
Illawarra Health and Medical Research Institute (IHMRI), University of Wollongong, Wollongong, NSW 2522, Australia.
Mar Drugs. 2017 Jun 5;15(6):164. doi: 10.3390/md15060164.
Nicotinic acetylcholine receptors (nAChRs) play a fundamental role in nervous signal transmission, therefore various antagonists and agonists are highly desired to explore the structure and function of nAChRs. Recently, a novel dimeric αD-conotoxin GeXXA was identified to inhibit nAChRs by binding at the top surface of the receptors, and the monomeric C-terminal domain (CTD) of αD-GeXXA retains some inhibitory activity. In this study, the internal dimeric N-terminal domain (NTD) of this conopeptide was further investigated. We first developed a regio-selective protection strategy to chemically prepare the anti-parallel dimeric NTD, and found that the isolated NTD part of GeXXA possesses the nAChR-inhibitory activity, the subtype-dependence of which implies a preferred binding of NTD to the β subunits of nAChR. Deletion of the NTD N-terminal residues did not affect the activity of NTD, indicating that the N-terminus is not involved in the interaction with nAChRs. By optimizing the sequence of NTD, we obtained a fully active single-chain cyclic NTD, based on which 4 Arg residues were found to interact with nAChRs. These results demonstrate that the NTD part of αD-GeXXA is a "lid-covering" nAChR inhibitor, displaying a novel inhibitory mechanism distinct from other allosteric ligands of nAChRs.
烟碱型乙酰胆碱受体(nAChRs)在神经信号传递中起基本作用,因此非常需要各种拮抗剂和激动剂来探索nAChRs的结构和功能。最近,一种新型二聚体αD-芋螺毒素GeXXA被鉴定出通过结合在受体的顶面来抑制nAChRs,并且αD-GeXXA的单体C末端结构域(CTD)保留了一些抑制活性。在本研究中,对这种芋螺肽的内部二聚体N末端结构域(NTD)进行了进一步研究。我们首先开发了一种区域选择性保护策略来化学制备反平行二聚体NTD,并发现GeXXA分离出的NTD部分具有nAChR抑制活性,其亚型依赖性意味着NTD优先结合到nAChR的β亚基上。删除NTD的N末端残基不影响NTD的活性,表明N末端不参与与nAChRs的相互作用。通过优化NTD的序列,我们获得了一种完全活性的单链环状NTD,在此基础上发现4个精氨酸残基与nAChRs相互作用。这些结果表明,αD-GeXXA的NTD部分是一种“覆盖盖子”的nAChR抑制剂,显示出一种不同于nAChRs其他变构配体的新型抑制机制。