气相色谱串联质谱法鉴定合成类固醇类固醇甾酮的质量碎片化途径。

IF 2.6 3区 医学 Q2 BIOCHEMICAL RESEARCH METHODS
Anca Raluca Muresan, Khandoker Asiqur Rahaman, Farzana Binte Rafique, Junghyun Son, Min-Jung Kang, Oh-Seung Kwon
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引用次数: 0

摘要

Bolasterone (7α,17α-二甲基-androsta-4-en-17β-ol-3-one)已被列入世界反兴奋剂机构的禁用物质清单。本研究旨在通过体外(肝微粒体)和体内(大鼠尿液)实验评估bolasterone的代谢,并采用气相色谱-四极杆串联质谱(GC-EI-MS/MS)方法提出代谢产物的质量碎片化途径。基于它们的破碎路径,提出了它们合理的化学结构,以克服缺乏可用的真实标准。三甲基硅基化后共观察到12种代谢物(5种单羟基化M1至M5, 7种二羟基化M6至M12)。关键诊断离子包括m/z 403(单羟基化)和m/z 491(双羟基化),与m/z 143,表明完整的D环(M1至M5、M7、M9、M10、M11)。在D环(M6, M12)羟基化是由离子m/z 231或219表征的。A (M5, M7)或B (M2/M3, M10)环的羟基化对应于m/z 281, C环(M4, M10)的C12羟基化对应于m/z 285。基于与睾酮和甲基睾酮等激素类似物的比较以及对断裂途径的解释,提出了单羟基化代谢物M1 (C11)、M2/M3 (C6)、M4 (C12)、M5 (C2)和二羟基化代谢物M6 (C11和C16)、M7 (C2和C11)、M10 (C6和C12)和M12 (C12和C16)。M8、M9和M11的羟基化位点无法确定。该数据可用于通过解释没有标准的合成代谢类固醇的质谱来鉴定羟基化代谢物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metabolic Identification Based on Proposed Mass Fragmentation Pathways of the Anabolic Steroid Bolasterone by Gas Chromatography Tandem Mass Spectrometry.

Bolasterone (7α,17α-dimethyl-androsta-4-en-17β-ol-3-one) was registered on the World Anti-Doping Agency's Prohibited list of substances. This study was aimed at evaluating the metabolism of bolasterone through in vitro (liver microsomes) and in vivo (rat urine) experiments to propose mass fragmentation pathways of the metabolites by gas chromatography-quadrupole tandem mass spectrometry (GC-EI-MS/MS). Their plausible chemical structures were suggested based on their fragmentation pathways to overcome the lack of available authentic standards. A total of 12 metabolites (5 mono-hydroxylated M1 to M5 and 7 di-hydroxylated M6 to M12) after trimethylsilylation were observed. Key diagnostic ions included m/z 403 (mono-hydroxylated) and m/z 491 (di-hydroxylated) with m/z 143, indicating an intact D ring (M1 to M5, M7, M9, M10, M11). Hydroxylation at the D ring (M6, M12) was characterized by ions m/z 231 or 219. Hydroxylation at the A (M5, M7) or B (M2/M3, M10) rings corresponded to m/z 281 and hydroxylation at C12 of the C ring (M4, M10) was indicated by m/z 285. Based on the comparison with bolasterone analogues such as testosterone and methyltestosterone and the interpretation of fragmentation pathways, the mono-hydroxylation metabolites M1 (at C11), M2/M3 (at C6), M4 (at C12), M5 (at C2), and di-hydroxylation metabolites M6 (at C11 and C16), M7 (at C2 and C11), M10 (at C6 and C12), and M12 (at C12 and C16) were proposed. The hydroxylation sites of M8, M9, and M11 could not be determined. This data can be useful for identifying hydroxylated metabolites by interpreting mass spectra of anabolic steroids with no standards available.

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来源期刊
Drug Testing and Analysis
Drug Testing and Analysis BIOCHEMICAL RESEARCH METHODS-CHEMISTRY, ANALYTICAL
CiteScore
5.90
自引率
24.10%
发文量
191
审稿时长
2.3 months
期刊介绍: As the incidence of drugs escalates in 21st century living, their detection and analysis have become increasingly important. Sport, the workplace, crime investigation, homeland security, the pharmaceutical industry and the environment are just some of the high profile arenas in which analytical testing has provided an important investigative tool for uncovering the presence of extraneous substances. In addition to the usual publishing fare of primary research articles, case reports and letters, Drug Testing and Analysis offers a unique combination of; ‘How to’ material such as ‘Tutorials’ and ‘Reviews’, Speculative pieces (‘Commentaries’ and ‘Perspectives'', providing a broader scientific and social context to the aspects of analytical testing), ‘Annual banned substance reviews’ (delivering a critical evaluation of the methods used in the characterization of established and newly outlawed compounds). Rather than focus on the application of a single technique, Drug Testing and Analysis employs a unique multidisciplinary approach to the field of controversial compound determination. Papers discussing chromatography, mass spectrometry, immunological approaches, 1D/2D gel electrophoresis, to name just a few select methods, are welcomed where their application is related to any of the six key topics listed below.
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