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使用手性和振动光谱法确定丁酮作为一种新的精神活性物质的结构。

Structure determination of butylone as a new psychoactive substance using chiroptical and vibrational spectroscopies.

机构信息

Department of Analytical Chemistry, University of Chemistry and Technology, Prague 6, Czech Republic.

Department of Organic Chemistry, University of Chemistry and Technology, Prague 6, Czech Republic.

出版信息

Chirality. 2018 May;30(5):548-559. doi: 10.1002/chir.22825. Epub 2018 Feb 9.

Abstract

Recently, there has been a worldwide substantial increase in the consumption of new psychoactive substances (NPS), compounds that mimic the structure of illicit drugs, such as amphetamines or ecstasy. The producers try to avoid the law by a slight modification of illicit structures, thereby developing dozens of temporarily legal NPS every year. The current trends in the detection and monitoring of such substances demand a fast and reliable analysis. Molecular spectroscopy represents a highly effective tool for the identification of NPS and chiroptical methods can provide further information on their 3D structure, which is the key for the determination of their biological activity. We present the first systematic study of NPS, specifically butylone, combining chiroptical and vibrational spectroscopies with ab initio calculations. According to density functional theory calculations, 6 stable lowest energy conformers of butylone were found and their molecular structure was described. For each conformer, the relative abundance based on the Boltzmann distribution was estimated, their population weighted spectra predicted and compared to the experimental results. Very good agreement between the experimental and the simulated spectra was achieved, which allowed not only the assignment of the absolute configuration, but also a precise description of the molecular structure.

摘要

最近,新精神活性物质(NPS)的全球消费大幅增加,这些物质模仿安非他命或摇头丸等非法药物的结构。生产商通过对非法结构进行轻微修改来逃避法律,从而每年开发数十种暂时合法的 NPS。目前对这些物质的检测和监测趋势要求快速可靠的分析。分子光谱学是鉴定 NPS 的一种非常有效的工具,手性光学方法可以提供有关其 3D 结构的进一步信息,这是确定其生物活性的关键。我们结合手性和振动光谱学以及从头算计算,首次对 NPS(特别是丁基酮)进行了系统研究。根据密度泛函理论计算,发现了 6 种稳定的丁基酮最低能量构象,并描述了它们的分子结构。对于每个构象,根据玻尔兹曼分布估计了相对丰度,预测了它们的加权光谱,并与实验结果进行了比较。实验和模拟光谱之间达到了非常好的一致性,这不仅允许对绝对构型进行分配,而且还可以对分子结构进行精确描述。

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