具有抗惊厥作用的新型薄荷酮衍生物

M. Nesterkina, D. Barbalat, Ivan Zheltvay, I. Rakipov, M. Atakay, B. Salih, I. Kravchenko
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引用次数: 0

摘要

目前,大量的抗癫痫药物旨在影响主要的抑制性递质- γ -氨基丁酸(GABA)。具有不同化学结构的化合物,结合到不同的GABAA位点,增强氨基酸的作用。最近的研究报道,萜类化合物如l-薄荷酮及其衍生物被发现作为GABAA受体的调节剂,从而显示出抗惊厥活性。另一方面,苯氧乙酸衍生物显示出神经保护和抗惊厥的潜力。综上所述,将l-薄荷酮和苯氧乙酸残基组合成一个分子,获得具有抗癫痫作用的药物是可行的。为了达到上述目的,在一定催化量的冰醋酸存在下,通过萜类化合物与4- r -苯氧乙酸肼缩合合成l-薄荷酮腙。通过FTIR-ATR、拉曼光谱、1H-NMR和13C-NMR谱分析以及EI/FAB/ESI质谱分析确定了目标化合物的结构。用DSC分析了腙的热性质,用HPLC -质谱联用分析了其纯度。合成的化合物以C=N键和顺/反酰胺构象的Z/E几何异构体存在。在本研究中,通过评价其抗惊厥活性,可以可靠地证实所获得的衍生物对中枢神经系统的影响。本研究结果表明,上述所有化合物在口服ptz诱导的惊厥和最大电休克诱发(MES)癫痫发作后均具有抗癫痫作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel menthone derivatives with anticonvulsant effect
Nowadays, a significant number of antiepileptic drugs aimed at influencing the main inhibitory transmitter – gamma-aminobutyric acid (GABA). Compounds with various chemical structures, binding to different GABAA sites, potentiate the action of amino acid. Recent studies have reported that terpenoids such as l-menthone and its derivatives were found to act as modulators of GABAA receptors, thereby demonstrating anticonvulsant activity. On the other hand, neuroprotective and anticonvulsant potentialities were revealed in phenoxyacetic acid derivatives. Based on the foregoing, the combination of l-menthone and phenoxyacetic acid residues into one molecule is feasible for obtaining the pharmacological agents with antiseizure action. In order to achieve the above-mentioned goal, l-menthone hydrazones were synthesized via condensation of terpenoid with 4-R-phenoxyacetic acid hydrazides in the presence of a catalytic amount of glacial acetic acid. The structure of the target compounds has been established by FTIR-ATR, Raman, 1H-NMR and 13C-NMR spectral analysis and EI/FAB/ESI mass spectrometry. Thermal properties of hydrazones were elucidated by DSC and their purity ‒ by HPLC coupled to mass spectrometry. Synthesized compounds were found to exist as Z/E geometrical isomers about C=N bond and cis/trans amide conformers. At the present study, the influence of obtained derivatives on the central nervous system was reliably confirmed by evaluating their anticonvulsant activity. The present findings indicate that all aforementioned compounds possess antiseizure action after oral administration on PTZ-induced convulsion and maximal electroshock-induced (MES) seizures.
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