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5-(N,N-六亚甲基)氨氯吡脒是一种GABA-A ρ1受体正向变构调节剂。

5-(N, N-Hexamethylene) amiloride is a GABA-A ρ1 receptor positive allosteric modulator.

作者信息

Snell Heather D, Gonzales Eric B

机构信息

a Center for Neuroscience Discovery , Institute for Healthy Aging, University of North Texas Health Science Center , Fort Worth , TX , USA.

出版信息

Channels (Austin). 2016 Nov;10(6):498-506. doi: 10.1080/19336950.2016.1207021. Epub 2016 Jul 1.

Abstract

Guanidine compounds act as ion channel modulators. In the case of Cys-loop receptors, the guanidine compound amiloride antagonized the heteromeric GABA-A, glycine, and nicotinic acetylcholine receptors. However, amiloride exhibits characteristics consistent with a positive allosteric modulator for the human GABA-A (hGABA-A) ρ1 receptor. Site-directed mutagenesis revealed that the positive allosteric modulation was influenced by the GABA-A ρ1 second transmembrane domain 15' position, a site implicated in ligand allosteric modulation of Cys-loop receptors. There are a variety of amiloride derivatives that provide opportunities to assess the significance of amiloride functional groups (e.g., the guanidine group, the pyrazine ring, etc.) in the modulation of the GABA-A ρ1 receptor activity. We utilized 3 amiloride derivatives (benzamil, phenamil, and 5-(N, N-Hexamethylene) amiloride) to assess the contribution of these groups toward the potentiation of the GABA-A ρ1 receptor. Benzamil and phenamil failed to potentiate on the wild type GABA-A ρ1 GABA-mediated current while HMA demonstrated efficacy only at the highest concentration studied. The hGABA-A ρ1 (I15'N) mutant receptor activity was potentiated by lower HMA concentrations compared to the wild type receptor. Our findings suggest that an exposed guanidine group on amiloride and amiloride derivatives is critical for modulating the GABA-A ρ1 receptor. The present study provides a conceptual framework for predicting which amiloride derivatives will demonstrate positive allosteric modulation of the GABA-A ρ1 receptor.

摘要

胍类化合物可作为离子通道调节剂。就半胱氨酸环受体而言,胍类化合物氨氯地平可拮抗异聚GABA - A、甘氨酸和烟碱型乙酰胆碱受体。然而,氨氯地平对人GABA - A(hGABA - A)ρ1受体表现出与正变构调节剂一致的特性。定点诱变显示,正变构调节受GABA - A ρ1第二个跨膜结构域15'位置的影响,该位点与半胱氨酸环受体的配体变构调节有关。有多种氨氯地平衍生物,这为评估氨氯地平官能团(如胍基、吡嗪环等)在调节GABA - A ρ1受体活性中的重要性提供了机会。我们利用3种氨氯地平衍生物(苄甲氯噻嗪、苯甲氯噻嗪和5 -(N,N - 六亚甲基)氨氯地平)来评估这些基团对GABA - A ρ1受体增强作用的贡献。苄甲氯噻嗪和苯甲氯噻嗪未能增强野生型GABA - A ρ1 GABA介导的电流,而六亚甲基氨氯地平仅在研究的最高浓度下显示出效果。与野生型受体相比,较低浓度的六亚甲基氨氯地平可增强hGABA - A ρ1(I15'N)突变体受体的活性。我们的研究结果表明,氨氯地平及其衍生物上暴露的胍基对于调节GABA - A ρ1受体至关重要。本研究为预测哪些氨氯地平衍生物将对GABA - A ρ1受体表现出正变构调节提供了一个概念框架。

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