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烟碱型乙酰胆碱受体的一个新结合位点可解释 MB327 的变构调节作用,这种作用与有机磷中毒治疗有关。

A novel binding site in the nicotinic acetylcholine receptor for MB327 can explain its allosteric modulation relevant for organophosphorus-poisoning treatment.

机构信息

Institute for Pharmaceutical and Medicinal Chemistry, Heinrich Heine University Düsseldorf, Düsseldorf, Germany.

Department of Pharmacy - Center for Drug Research, Ludwig-Maximilians-Universität München, München, Germany.

出版信息

Toxicol Lett. 2023 Jan 15;373:160-171. doi: 10.1016/j.toxlet.2022.11.018. Epub 2022 Nov 26.

Abstract

Organophosphorus compounds (OPCs) are highly toxic compounds that can block acetylcholine esterase (AChE) and thereby indirectly lead to an overstimulation of muscarinic and nicotinic acetylcholine receptors (nAChRs). The current treatment with atropine and AChE reactivators (oximes) is insufficient to prevent toxic effects, such as respiratory paralysis, after poisonings with various OPCs. Thus, alternative treatment options are required to increase treatment efficacy. Novel therapeutics, such as the bispyridinium non-oxime MB327, have been found to reestablish neuromuscular transmission by interacting directly with nAChR, probably via allosteric mechanisms. To rationally design new, more potent drugs addressing nAChR, knowledge of the binding mode of MB327 is fundamental. However, the binding pocket of MB327 has remained elusive. Here, we identify a new potential allosteric binding pocket (MB327-PAM-1) of MB327 located at the transition of the extracellular to the transmembrane region using blind docking experiments and molecular dynamics simulations. MB327 forms striking interactions with the receptor at this site. The interacting amino acids are highly conserved among different subunits and different species. Correspondingly, MB327 can interact with several nAChR subtypes from different species. We predict by rigidity analysis that MB327 exerts an allosteric effect on the orthosteric binding pocket and the transmembrane domain after binding to MB327-PAM-1. Furthermore, free ligand diffusion MD simulations reveal that MB327 also has an affinity to the orthosteric binding pocket, which agrees with recently published results that related bispyridinium compounds show inhibitory effects via the orthosteric binding site. The newly identified binding site allowed us to predict structural modifications of MB327, resulting in the more potent resensitizers PTM0062 and PTM0063.

摘要

有机磷化合物(OPCs)是高度有毒的化合物,可抑制乙酰胆碱酯酶(AChE),从而间接导致毒蕈碱和烟碱型乙酰胆碱受体(nAChRs)过度刺激。目前使用阿托品和 AChE 重激活剂(肟)的治疗方法不足以防止各种 OPC 中毒后的毒性作用,例如呼吸麻痹。因此,需要替代治疗方法来提高治疗效果。已经发现,新型治疗药物,如双吡啶非肟 MB327,通过直接与 nAChR 相互作用,可能通过变构机制,重新建立神经肌肉传递。为了合理设计针对 nAChR 的新型、更有效的药物,了解 MB327 的结合模式是基础。然而,MB327 的结合口袋仍然难以捉摸。在这里,我们使用盲目对接实验和分子动力学模拟,鉴定了位于细胞外到跨膜区域过渡处的 MB327 的新的潜在变构结合口袋(MB327-PAM-1)。MB327 在该部位与受体形成惊人的相互作用。相互作用的氨基酸在不同亚基和不同物种中高度保守。相应地,MB327 可以与来自不同物种的几种 nAChR 亚型相互作用。通过刚性分析预测,MB327 在与 MB327-PAM-1 结合后对正位结合口袋和跨膜域产生变构效应。此外,游离配体扩散 MD 模拟表明 MB327 也与正位结合口袋具有亲和力,这与最近发表的结果一致,即相关双吡啶化合物通过正位结合位点显示出抑制作用。新鉴定的结合位点使我们能够预测 MB327 的结构修饰,从而产生更有效的再敏化剂 PTM0062 和 PTM0063。

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