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M2毒蕈碱型乙酰胆碱受体的协同相互作用:逐步缩短的双吡啶鎓和双(铵)烷烃型变构调节剂的构效关系

Cooperative interactions at M2 muscarinic acetylcholine receptors: structure/activity relationships in stepwise shortened bispyridinium- and bis(ammonio)alkane-type allosteric modulators.

作者信息

Gilsbach Ralf, Grossmüller Maren, Alptüzün Vildan, Erciyas Ercin, Tränkle Christian, Holzgrabe Ulrike, Mohr Klaus

机构信息

Pharmacology and Toxicology, Institute of Pharmacy, University of Bonn, Bonn, Germany.

出版信息

Neurochem Res. 2003 Apr;28(3-4):667-73. doi: 10.1023/a:1022858414900.

Abstract

Muscarinic M2-receptors allow for divergent modes of allosteric action, depending on the structure of the allosteric modulator. Phthalimido-substituted bis(ammonio)alkane-type modulators belong to the common mode allosteric agents, whereas a physicochemically closely related bispyridinium-oxime with dichlorobenzyl-substituents at both ends is an atypical agent. Here, we compared the actions of stepwise shortened compounds composed of the phthalimido moiety and middle chains of either the bispyridinium- or the bis(ammonio)alkane-type. Allosteric interactions were measured in pig M2 receptors with the orthosteric probe [3H]N-methylscopolamine ([3H]NMS) to label the acetylcholine binding site of the receptors. Dissociation and equilibrium binding experiments revealed parallel structure/activity-relationships in both series of compounds with regard to the cooperativity of interaction with [3H]NMS and to the underlying binding affinities in radioligand-occupied and free receptors. In conclusion, the findings are in line with the hypothesis that the phthalimido-moiety, but not the middle chain, is pivotal for the topology of interaction with the M2-receptor protein.

摘要

毒蕈碱M2受体具有不同的变构作用模式,这取决于变构调节剂的结构。邻苯二甲酰亚胺取代的双(铵)烷烃型调节剂属于常见模式的变构剂,而一种在两端带有二氯苄基取代基的物理化学性质密切相关的双吡啶肟则是一种非典型剂。在此,我们比较了由邻苯二甲酰亚胺部分和双吡啶或双(铵)烷烃型中间链组成的逐步缩短的化合物的作用。在猪M2受体中,用正构探针[3H]N-甲基东莨菪碱([3H]NMS)测量变构相互作用,以标记受体的乙酰胆碱结合位点。解离和平衡结合实验揭示了这两个系列化合物在与[3H]NMS相互作用的协同性以及放射性配体占据和游离受体中的潜在结合亲和力方面的平行结构/活性关系。总之,这些发现与以下假设一致,即邻苯二甲酰亚胺部分而非中间链对于与M2受体蛋白的相互作用拓扑结构至关重要。

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