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Identification of Orthosteric and Allosteric Site Mutations in M2 Muscarinic Acetylcholine Receptors That Contribute to Ligand-selective Signaling Bias*

机译:鉴定导致配体选择性信号偏向的M2毒蕈碱型乙酰胆碱受体的正构和变构位点突变*

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摘要

Muscarinic acetylcholine receptors contain at least one allosteric site that is topographically distinct from the acetylcholine, orthosteric binding site. Although studies have investigated the basis of allosteric modulation at these receptors, less is known about putative allosteric ligands that activate the receptor in their own right. We generated M2 muscarinic acetylcholine receptor mutations in either the orthosteric site in transmembrane helices 3 and 6 (TM3 and -6) or part of an allosteric site involving the top of TM2, the second extracellular (E2) loop, and the top of TM7 and investigated their effects on the binding and function of the novel selective (putative allosteric) agonists (AC-42 (4-n-butyl-1-(4-(2-methylphenyl)-4-oxo-1-butyl)piperidine HCl), 77-LH-28-1 (1-(3-(4-butyl-1-piperidinyl)propyl)-3,3-dihydro-2(1H)-quinolinone), and N-desmethylclozapine) as well as the bitopic orthosteric/allosteric ligand, McN-A-343 (4-(m-chlorophenyl-carbamoyloxy)-2-butynyltrimethylammonium). Four classes of agonists were identified, depending on their response to the mutations, suggesting multiple, distinct modes of agonist-receptor interaction. Interestingly, with the exception of 77-LH-28-1, allosteric site mutations had no effect on the affinity of any of the agonists tested, but some mutations in the E2 loop influenced the efficacy of both orthosteric and novel selective agonists, highlighting a role for this region of the receptor in modulating activation status. Two point mutations (Y1043.33A (Ballesteros and Weinstein numbers in superscript) in the orthosteric and Y177A in the allosteric site) unmasked ligand-selective and signaling pathway-selective effects, providing evidence for the existence of pathway-specific receptor conformations. Molecular modeling of 77-LH-28-1 and N-desmethylclozapine yielded novel binding poses consistent with the possibility that the functional selectivity of such agents may arise from a bitopic mechanism.
机译:毒蕈碱型乙酰胆碱受体包含至少一个变构位点,其在地形上不同于乙酰胆碱的正构结合位点。尽管研究已经研究了这些受体的变构调节的基础,但对于能自行激活该受体的推定变构配体的了解却很少。我们在跨膜螺旋3和6(TM3和-6)的正构位点或部分变构位点(包括TM2的顶部,第二个细胞外(E2)环和TM7的顶部)中生成了M2毒蕈碱乙酰胆碱受体突变研究了它们对新型选择性(假定变构)激动剂(AC-42(4-正丁基-1-(4-(2-(2-甲基苯基)-4-氧代-1-丁基)哌啶)HCl)的结合和功能的影响,77-LH-28-1(1-(3-(4-丁基-1-哌啶基)丙基)-3,3-二氢-2(1H)-喹啉酮)和N-去甲基氯氮平)以及联用正构/变构配体,McN-A-343(4-(间氯苯基-氨基甲酰氧基)-2-丁炔基三甲基铵)。根据它们对突变的反应,鉴定出四类激动剂,表明激动剂-受体相互作用的多种不同模式。有趣的是,除77-LH-28-1外,变构位点突变对任何测试的激动剂的亲和力均无影响,但E2环中的某些突变影响正构和新型选择性激动剂的功效,突出了受体这一区域在调节激活状态中的作用。正点的两个点突变(Y1043.33A(变构的Ballesteros和Weinstein数)和变构位点的Y177A)揭示了配体选择性和信号通路选择性效应,为通路特异性受体构象的存在提供了证据。 77-LH-28-1和N-去甲基氯氮平的分子模型产生了新颖的结合姿势,与这种试剂的功能选择性可能来自双位机制的可能性是一致的。

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