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电压门控钠离子通道的计算结构药理学和毒理学。

Computational Structural Pharmacology and Toxicology of Voltage-Gated Sodium Channels.

机构信息

McMaster University, Hamilton, ON, Canada; Russian Academy of Sciences, St. Petersburg, Russian Federation.

Russian Academy of Sciences, St. Petersburg, Russian Federation.

出版信息

Curr Top Membr. 2016;78:117-44. doi: 10.1016/bs.ctm.2015.12.001. Epub 2016 Mar 14.

Abstract

Voltage-gated sodium channels are targets for many toxins and medically important drugs. Despite decades of intensive studies in industry and academia, atomic mechanisms of action are still not completely understood. The major cause is a lack of high-resolution structures of eukaryotic channels and their complexes with ligands. In these circumstances a useful approach is homology modeling that employs as templates X-ray structures of potassium channels and prokaryotic sodium channels. On one hand, due to inherent limitations of this approach, results should be treated with caution. In particular, models should be tested against relevant experimental data. On the other hand, docking of drugs and toxins in homology models provides a unique possibility to integrate diverse experimental data provided by mutational analysis, electrophysiology, and studies of structure-activity relations. Here we describe how homology modeling advanced our understanding of mechanisms of several classes of ligands. These include tetrodotoxins and mu-conotoxins that block the outer pore, local anesthetics that block of the inner pore, batrachotoxin that binds in the inner pore but, paradoxically, activates the channel, pyrethroid insecticides that activate the channel by binding at lipid-exposed repeat interfaces, and scorpion alpha and beta-toxins, which bind between the pore and voltage-sensing domains and modify the channel gating. We emphasize importance of experimental data for elaborating the models.

摘要

电压门控钠离子通道是许多毒素和医学上重要药物的靶标。尽管工业界和学术界进行了数十年的深入研究,但原子作用机制仍不完全清楚。主要原因是缺乏真核通道及其与配体复合物的高分辨率结构。在这种情况下,同源建模是一种有用的方法,它使用钾通道和原核钠通道的 X 射线结构作为模板。一方面,由于这种方法的固有局限性,结果应该谨慎对待。特别是,模型应该针对相关的实验数据进行测试。另一方面,在同源模型中对接药物和毒素提供了一个独特的可能性,可以整合突变分析、电生理学和结构-活性关系研究提供的各种实验数据。在这里,我们描述了同源建模如何促进我们对几类配体机制的理解。这些包括河豚毒素和 mu 型芋螺毒素,它们阻断外孔;局部麻醉剂,它们阻断内孔;蟾蜍毒素,它结合在内孔中,但矛盾的是,激活通道;拟除虫菊酯杀虫剂,通过结合在暴露于脂质的重复界面上激活通道;以及蝎 alpha 和 beta 毒素,它们结合在孔和电压感应域之间,改变通道门控。我们强调了实验数据对于阐述模型的重要性。

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