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首页> 外文期刊>Oxidative Medicine and Cellular Longevity >Novel, Unifying Mechanism for Mescaline in The Central Nervous System: Electrochemistry, Catechol Redox Metabolite, Receptor, Cell Signaling and Structure Activity Relationships
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Novel, Unifying Mechanism for Mescaline in The Central Nervous System: Electrochemistry, Catechol Redox Metabolite, Receptor, Cell Signaling and Structure Activity Relationships

机译:新型中枢神经系统中甲卡斯林的统一机制:电化学,邻苯二酚氧化还原代谢产物,受体,细胞信号传导和结构活性关系

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A unifying mechanism for abused drugs has been proposed previously from the standpoint of electron transfer. Mescaline can be accommodated within the theoretical framework based on redox cycling by the catechol metabolite with its quinone counterpart. Electron transfer may play a role in electrical effects involving the nervous system in the brain. This approach is in accord with structure activity relationships involving mescaline, abused drugs, catecholamines and etoposide. Inefficient demethylation is in keeping with the various drug properties, such as requirement for high dosage and slow acting.There is a discussion of receptor binding, electrical effects, cell signaling and other modes of action. Mescaline is a nonselective, seretonin receptor agonist. 5-HTP receptors are involved in the stimulus properties. Research addresses the aspect of stereochemical requirements. Receptor binding may involve the proposed quinone metabolite and/or the amino sidechain via protonation. Electroencephalographic studies were performed on the effects of mescaline on men. Spikes are elicited by stimulation of a cortical area. The potentials likely originate in nonsynaptic dendritic membranes. Receptor-mediated signaling pathways were examined which affect mescaline behavior. The hallucinogen belongs to the class of 2AR agonists which regulate pathways in cortical neurons. The research identifies neural and signaling mechanisms responsible for the biological effects. Recently, another hallucinogen, psilocybin, has been included within the unifying mechanistic framework. This mushroom constituent is hydrolyzed to the phenol psilocin, also active, which is subsequently oxidized to an ET o-quinone or iminoquinone.
机译:从电子转移的观点出发,先前已经提出了滥用药物的统一机制。邻苯二酚及其对苯二酚代谢物可在氧化还原循环的基础上将氨甲ine呤容纳在理论框架内。电子转移可能在涉及大脑神经系统的电效应中起作用。该方法符合涉及甲斯卡林,滥用药物,儿茶酚胺和依托泊苷的结构活性关系。无效的去甲基化与各种药物特性保持一致,例如对高剂量和缓慢作用的要求。讨论了受体结合,电效应,细胞信号传导和其他作用方式。麦斯卡林是一种非选择性的血清素受体激动剂。 5-HTP受体参与刺激特性。研究涉及立体化学要求的方面。受体结合可能涉及质子化所提出的醌代谢产物和/或氨基侧链。脑电图研究了吗啡对男性的影响。刺激皮层区域会引起尖刺。电位可能起源于非突触树突状膜。检查了受体介导的信号通路,这些通路影响了麦斯卡林的行为。致幻剂属于2AR激动剂,可调节皮层神经元的途径。该研究确定了负责生物学效应的神经和信号机制。最近,另一种致幻剂,psilocybin已被包含在统一的机制框架内。该蘑菇成分被水解为同样具有活性的苯酚psilocin,随后被氧化为ET邻醌或亚氨基醌。

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