Structural and functional perspectives on interactions between synthetic cathinones and monoamine transporters.

Q1 Pharmacology, Toxicology and Pharmaceutics
Advances in pharmacology Pub Date : 2024-01-01 Epub Date: 2023-10-20 DOI:10.1016/bs.apha.2023.09.001
Vy T Nguyen, Alan C Harris, Jose M Eltit
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引用次数: 0

Abstract

Synthetic cathinone derivatives comprise a family of psychoactive compounds structurally related to amphetamine. Over the last decade, clandestine chemists have synthesized a consistent stream of innovative cathinone derivatives to outpace governmental regulatory restrictions. Many of these unregulated substances are produced and distributed as designer drugs. Two of the principal chemical scaffolds exploited to expand the synthetic cathinone family are methcathinone and α-pyrrolidinopentiophenone (or α-pyrrolidinovalerophenone, α-PVP). These compounds' main physiological targets are monoamine transporters, where they promote addiction by potentiating dopaminergic neurotransmission. This chapter describes techniques used to study the pharmacodynamic properties of cathinones at monoamine transporters in vitro. Biochemical techniques described include uptake inhibition and release assays in rat brain synaptosomes and in mammalian expression systems. Electrophysiological techniques include current measurements using the voltage clamp technique. We describe a Ca2+ mobilization assay wherein voltage-gated Ca2+ channels function as reporters to study the action of synthetic cathinones at monoamine transporters. We discuss results from systematic structure-activity relationship studies on simple and complex cathinones at monoamine transporters with an emphasis on identifying structural moieties that modulate potency and selectivity at these transporters. Moreover, different profiles of selectivity at monoamine transporters directly predict compounds associated with behavioral and subjective effects within animals and humans. In conclusion, clarification of the structural aspects of compounds which modulate potency and selectivity at monoamine transporters is critical to identify and predict potential addictive drugs. This knowledge may allow prompt allocation of resources toward drugs that represent the greatest threats after drugs are identified by forensic laboratories.

从结构和功能角度看合成卡西酮与单胺转运体之间的相互作用。
合成卡西酮衍生物是一种精神活性化合物,在结构上与苯丙胺有关。在过去十年中,秘密化学家不断合成新颖的卡西酮衍生物,以超越政府的监管限制。这些不受管制的物质中有许多是作为特制毒品生产和销售的。扩大合成卡西酮家族的两个主要化学支架是甲卡西酮和α-吡咯烷基苯戊酮(或α-吡咯烷基苯戊酮,α-PVP)。这些化合物的主要生理靶标是单胺转运体,它们通过增强多巴胺能神经递质来促进成瘾。本章介绍了用于研究卡西酮在体外单胺转运体药效学特性的技术。所述生化技术包括大鼠脑突触体和哺乳动物表达系统中的摄取抑制和释放测定。电生理技术包括使用电压钳技术测量电流。我们介绍了一种 Ca2+ 迁移试验,其中电压门控 Ca2+ 通道可作为报告器来研究合成卡西酮对单胺转运体的作用。我们讨论了对简单和复杂的卡西酮在单胺转运体上的结构-活性关系进行系统研究的结果,重点是确定在这些转运体上调节效力和选择性的结构分子。此外,单胺转运体选择性的不同特征可直接预测与动物和人类行为和主观效应相关的化合物。总之,澄清调节单胺转运体效力和选择性的化合物的结构方面对于识别和预测潜在的成瘾药物至关重要。有了这些知识,就可以在法医实验室鉴定出毒品后,迅速将资源分配给威胁最大的毒品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in pharmacology
Advances in pharmacology Pharmacology, Toxicology and Pharmaceutics-Pharmacology
CiteScore
9.10
自引率
0.00%
发文量
45
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