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新型μ-芋螺毒素SxIIIC的发现、药理特性及核磁共振结构,一种强效且不可逆的钠通道抑制剂

Discovery, Pharmacological Characterisation and NMR Structure of the Novel µ-Conotoxin SxIIIC, a Potent and Irreversible Na Channel Inhibitor.

作者信息

McMahon Kirsten L, Tran Hue N T, Deuis Jennifer R, Lewis Richard J, Vetter Irina, Schroeder Christina I

机构信息

Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia.

The School of Pharmacy, The University of Queensland, Woolloongabba, QLD 4102, Australia.

出版信息

Biomedicines. 2020 Oct 2;8(10):391. doi: 10.3390/biomedicines8100391.

DOI:10.3390/biomedicines8100391
PMID:33023152
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7599555/
Abstract

Voltage-gated sodium (Na) channel subtypes, including Na1.7, are promising targets for the treatment of neurological diseases, such as chronic pain. Cone snail-derived µ-conotoxins are small, potent Na channel inhibitors which represent potential drug leads. Of the 22 µ-conotoxins characterised so far, only a small number, including KIIIA and CnIIIC, have shown inhibition against human Na1.7. We have recently identified a novel µ-conotoxin, SxIIIC, from . Here we present the isolation of native peptide, chemical synthesis, characterisation of human Na channel activity by whole-cell patch-clamp electrophysiology and analysis of the NMR solution structure. SxIIIC displays a unique Na channel selectivity profile (1.4 > 1.3 > 1.1 ≈ 1.6 ≈ 1.7 > 1.2 >> 1.5 ≈ 1.8) when compared to other µ-conotoxins and represents one of the most potent human Na1.7 putative pore blockers (IC 152.2 ± 21.8 nM) to date. NMR analysis reveals the structure of SxIIIC includes the characteristic α-helix seen in other µ-conotoxins. Future investigations into structure-activity relationships of SxIIIC are expected to provide insights into residues important for Na channel pore blocker selectivity and subsequently important for chronic pain drug development.

摘要

包括Na1.7在内的电压门控钠(Na)通道亚型是治疗慢性疼痛等神经疾病的有前景的靶点。芋螺毒素衍生的μ-芋螺毒素是一类小型、强效的钠通道抑制剂,具有潜在的药物开发前景。在目前已鉴定的22种μ-芋螺毒素中,只有少数几种,包括KIIIA和CnIIIC,对人Na1.7表现出抑制作用。我们最近从……中鉴定出一种新型μ-芋螺毒素SxIIIC。在此,我们展示了天然肽的分离、化学合成、通过全细胞膜片钳电生理学对人钠通道活性的表征以及核磁共振溶液结构分析。与其他μ-芋螺毒素相比,SxIIIC呈现出独特的钠通道选择性谱(1.4 > 1.3 > 1.1 ≈ 1.6 ≈ 1.7 > 1.2 >> 1.5 ≈ 1.8),是迄今为止最有效的人Na1.7假定孔道阻滞剂之一(IC 152.2 ± 21.8 nM)。核磁共振分析表明,SxIIIC的结构包含其他μ-芋螺毒素中可见的特征性α-螺旋。预计未来对SxIIIC构效关系的研究将为钠通道孔道阻滞剂选择性的重要残基提供见解,进而对慢性疼痛药物开发具有重要意义。

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