Pharmaceutical Chemistry Group (GQF), IQS School of Engineering, Universitat Ramon Llull, 08017 Barcelona, Spain.
Department of Pharmacology, Toxicology and Therapeutic Chemistry, Pharmacology Section and Institute of Biomedicine (IBUB), Faculty of Pharmacy, University of Barcelona, 08028 Barcelona, Spain.
ACS Chem Neurosci. 2023 Feb 15;14(4):787-799. doi: 10.1021/acschemneuro.2c00772. Epub 2023 Feb 3.
Synthetic cathinones are β-keto amphetamine derivatives whose appearance has increased dramatically in the past decades. -Ethyl substituted cathinones have been proven to potently inhibit dopamine (DA) uptake and induce psychostimulant and rewarding effects in mice. However, little is known about the influence of the alpha-carbon side-chain length of -ethyl cathinones on their pharmacological and toxicological effects. Thus, the aim of this study was to synthesize and investigate the in vitro and in vivo effects of five -ethyl substituted cathinones: -ethyl-cathinone (NEC), -ethyl-buphedrone (NEB), -ethyl-pentedrone, -ethyl-hexedrone (NEH), and -ethyl-heptedrone. HEK293 cells expressing the human DA or serotonin transporter (hDAT and hSERT) were used for uptake inhibition and binding assays. PC12 cells were used for the cytotoxicity assays. Swiss CD-1 mice were used to study the in vivo psychostimulant, anxiogenic, and rewarding properties. Our results show that all tested cathinones are able to inhibit DA uptake and are DAT-selective. The potency of DA uptake inhibitors increases with the elongation of the aliphatic side chain from methyl to propyl and decreases when increasing from butyl to pentyl, which correlates with an inverted -shape psychostimulant response in mice at the medium dose tested. On the other hand, an increase in the α-carbon side-chain length correlates with an increase in the cytotoxic properties in PC12 cells, probably due to better membrane penetration. Moreover, all the cathinones tested have shown higher cytotoxicity than methamphetamine. Finally, our study not only demonstrated the rewarding properties of NEC and NEB but also the anxiety-like behavior induced at high doses by all the cathinones tested.
合成卡西酮是β-酮苯丙胺衍生物,其外观在过去几十年中急剧增加。-乙基取代的卡西酮已被证明能有效抑制多巴胺(DA)摄取,并在小鼠中诱导精神兴奋剂和奖赏作用。然而,关于-α-碳侧链长度对其药理和毒理学作用的影响知之甚少。因此,本研究旨在合成和研究五种 -乙基取代的卡西酮:-乙基-卡西酮(NEC)、-乙基-丁基苯丙胺(NEB)、-乙基-戊基苯丙胺、-乙基-己基苯丙胺(NEH)和-乙基-庚基苯丙胺的体外和体内效应。表达人多巴胺或 5-羟色胺转运体(hDAT 和 hSERT)的 HEK293 细胞用于摄取抑制和结合测定。PC12 细胞用于细胞毒性测定。瑞士 CD-1 小鼠用于研究体内精神兴奋剂、焦虑和奖赏特性。我们的结果表明,所有测试的卡西酮都能够抑制 DA 摄取,并且是 DAT 选择性的。DA 摄取抑制剂的效力随着从甲基到丙基的脂肪侧链的延长而增加,当从丁基增加到戊基时减少,这与在中等剂量测试的小鼠中呈倒“U”形的精神兴奋剂反应相关。另一方面,α-碳侧链长度的增加与 PC12 细胞中细胞毒性的增加相关,这可能是由于更好的膜穿透性。此外,所有测试的卡西酮的细胞毒性都高于苯丙胺。最后,我们的研究不仅证明了 NEC 和 NEB 的奖赏特性,还证明了所有测试的卡西酮在高剂量下引起的类似焦虑的行为。