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Hydrogen isotope ratio mass spectrometry and high-resolution/high-Accuracy mass spectrometry in metabolite identification studies: Detecting target compounds for sports drug testing

机译:代谢物鉴定研究中的氢同位素比质谱法和高分辨率/高精度质谱法:运动药物检测中的目标化合物检测

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RATIONALE In sports drug testing, comprehensive studies on the metabolism of therapeutic agents with misuse potential are necessary to identify metabolites that provide utmost retrospectivity and specificity. By commonly employed approaches minor and/or long-term metabolites in urine might remain undetected. Hence, an alternative strategy to unambiguously identify the majority of urinary metabolites including low-Abundance representatives is desirable. METHODS Urine samples were collected for 20 days during an elimination study with an oral dose of 5 mg of 17α-C_2H ~3-metandienone. The specimens were processed according to established sample preparation procedures (including fractionation and deconjugation) and subjected to gas chromatography/hydrogen isotope ratio mass spectrometry (GC/IRMS) analysis. Due to the deuteration of the administered drug, urinary metabolites bearing the deuterium label yield abundant and specific signals on the GC/IRMS instrument resulting from the substantially altered ~2H/~1H ratio. The sample aliquots were measured by gas chromatography/time-of-flight (GC/Q-TOF) mass spectrometry using identical GC conditions, allowing high-resolution/high-Accuracy mass data to be obtained on all urinary metabolites previously identified by IRMS. RESULTS Within the IRMS chromatograms, labeled metabolites were identified up to 20 days after administration at urinary concentration down to 0.25 ng/mL. More than 50 metabolites were observed with the earlier described long-term metabolite of metandienone, 18-nor-17β-hyroxymethyl,17α-methyl-Androst-1,4,13- trien-3-one, being the most prominent glucuronidated metabolite in the studied time window. In the sulfoconjugated steroids fraction, a yet unknown metabolite was observed at m/z 283.1997 comprising the experimentally determined elemental composition of C_(20)H_(21)~2H_3O. CONCLUSIONS Combining IRMS with high-resolution mass spectrometry considerably facilitates and accelerates metabolite identification of deuterium-labeled compounds in urine. Of particular relevance in doping control, the principle is applicable also to other arenas of drug research, allowing the preparation and administration of e.g. radioactively labeled substances to be omitted.
机译:理由在运动药物测试中,有必要对可能滥用的治疗药物的代谢进行全面研究,以鉴定出具有最大回顾性和特异性的代谢物。通过常用方法,尿液中的次要和/或长期代谢物可能仍未被发现。因此,需要一种明确识别包括低丰度代表在内的大多数尿代谢物的替代策略。方法在消除研究期间,以口服剂量5 mg17α-C_2H〜3-metandienone收集尿液样本,为期20天。根据已建立的样品制备程序(包括分馏和去偶联)对样品进行处理,然后进行气相色谱/氢同位素比质谱(GC / IRMS)分析。由于给药药物的氘化,带有氘标记的尿代谢物在GC / IRMS仪器上产生大量且特定的信号,这是由于〜2H /〜1H比率发生了实质性变化。使用相同的GC条件,通过气相色谱/飞行时间(GC / Q-TOF)质谱仪测量样品等分试样,从而可以从以前通过IRMS鉴定的所有尿代谢物获得高分辨率/高精度质量数据。结果在IRMS色谱图内,以低至0.25 ng / mL的尿液浓度在给药后20天鉴定出标记的代谢物。观察到超过50种代谢物,其中较早描述的美丹酮,18-nor-17β-羟甲基,17α-甲基-Androst-1,4,13-trien-3-one的长期代谢物是葡聚糖中最突出的代谢产物。研究的时间窗口。在硫缀合的类固醇组分中,在m / z 283.1997处观察到未知的代谢物,该代谢物包含实验确定的C_(20)H_(21)〜2H_3O元素组成。结论将IRMS与高分辨率质谱法相结合大大促进并加速了尿中氘标记化合物的代谢产物鉴定。在兴奋剂控制方面特别重要的是,该原理也适用于药物研究的其他领域,从而可以制备和给药例如放射性标记的物质将被省略。

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