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神经元钾通道治疗性激活的原子基础。

Atomic basis for therapeutic activation of neuronal potassium channels.

作者信息

Kim Robin Y, Yau Michael C, Galpin Jason D, Seebohm Guiscard, Ahern Christopher A, Pless Stephan A, Kurata Harley T

机构信息

Department of Anesthesiology, Pharmacology, and Therapeutics, University of British Columbia, 2176 Health Sciences Mall, Vancouver, British Columbia, Canada V6T 1Z3.

Department of Molecular Physiology and Biophysics, University of Iowa, 285 Newton Road, Iowa City, Iowa 52242, USA.

出版信息

Nat Commun. 2015 Sep 3;6:8116. doi: 10.1038/ncomms9116.

Abstract

Retigabine is a recently approved anticonvulsant that acts by potentiating neuronal M-current generated by KCNQ2-5 channels, interacting with a conserved Trp residue in the channel pore domain. Using unnatural amino-acid mutagenesis, we subtly altered the properties of this Trp to reveal specific chemical interactions required for retigabine action. Introduction of a non-natural isosteric H-bond-deficient Trp analogue abolishes channel potentiation, indicating that retigabine effects rely strongly on formation of a H-bond with the conserved pore Trp. Supporting this model, substitution with fluorinated Trp analogues, with increased H-bonding propensity, strengthens retigabine potency. In addition, potency of numerous retigabine analogues correlates with the negative electrostatic surface potential of a carbonyl/carbamate oxygen atom present in most KCNQ activators. These findings functionally pinpoint an atomic-scale interaction essential for effects of retigabine and provide stringent constraints that may guide rational improvement of the emerging drug class of KCNQ channel activators.

摘要

瑞替加滨是一种最近获批的抗惊厥药物,其作用机制是增强由KCNQ2 - 5通道产生的神经元M电流,与通道孔结构域中一个保守的色氨酸残基相互作用。利用非天然氨基酸诱变技术,我们巧妙地改变了这个色氨酸的性质,以揭示瑞替加滨作用所需的特定化学相互作用。引入一种非天然的等排体、缺乏氢键的色氨酸类似物可消除通道增强作用,这表明瑞替加滨的作用强烈依赖于与保守的孔道色氨酸形成氢键。支持该模型的是,用具有增强氢键倾向的氟化色氨酸类似物进行取代可增强瑞替加滨的效力。此外,许多瑞替加滨类似物的效力与大多数KCNQ激活剂中存在的羰基/氨基甲酸酯氧原子的负静电表面电位相关。这些发现从功能上确定了对瑞替加滨作用至关重要的原子尺度相互作用,并提供了严格的限制条件,这可能会指导对新兴的KCNQ通道激活剂药物类别的合理改进。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1aa5/4569714/735bd6ba4288/ncomms9116-f1.jpg

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