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Elucidation of the Complex Metabolic Profile of Cerebrospinal Fluid Using an Untargeted Biochemical Profiling Assay

机译:使用非靶向生化分析法分析脑脊液的复杂代谢谱

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摘要

We sought to determine the molecular composition of human cerebrospinal fluid (CSF) and identify the biochemical pathways represented in CSF to understand the potential for untargeted screening of inborn errors of metabolism (IEMs). Biochemical profiles for each sample were obtained using an integrated metabolomics workflow comprised of four chromatographic techniques followed by mass spectrometry. Secondarily, we wanted to compare the biochemical profile of CSF with those of plasma and urine within the integrated mass spectrometric-based metabolomic workflow. Three sample types, CSF (N=30), urine (N=40) and EDTA plasma (N=31), were analyzed from retrospectively collected pediatric cohorts of equivalent age and gender characteristics. We identified 435 biochemicals in CSF epresenting numerous biological and chemical/structural families. Sixty-three percent (273 of 435) of the biochemicals detected in CSF also were detected in urine and plasma, another 32% (140 of 435) were detected in either plasma or urine, and 5% (22 of 435) were detected only in CSF.Analyses of several metabolites showed agreement between clinically useful assays and the metabolomics approach. An additional set of CSF and plasma samples collected from the same patient revealed correlation between several biochemicals detected in paired samples. Finally, analysis of CSF from a pediatric case with dihydropteridine reductase (DHPR) deficiency demonstrated the utility of untargeted global metabolic phenotyping as a broad assessment to screen samples from patients with undifferentiated phenotypes. The results indicate a single CSF sample processed with an integrated metabolomics workflow can be used to identify a large breadth of biochemicals that could be useful for identifying disrupted metabolic patterns associated with IEMs.
机译:我们试图确定人脑脊髓液(CSF)的分子组成,并确定以CSF表示的生化途径,以了解对代谢性先天性错误(IEM)进行无针对性筛查的潜力。使用包括四种色谱技术和质谱的集成代谢组学工作流程,获得每个样品的生化特征。其次,我们想在基于质谱的集成代谢组学工作流程中比较脑脊液的生化特性与血浆和尿液的生化特性。从回顾性收集的具有相同年龄和性别特征的儿科队列中分析了三种样本类型:脑脊液(N = 30),尿液(N = 40)和EDTA血浆(N = 31)。我们在脑脊液中鉴定了435种生物化学物质,它们代表了许多生物和化学/结构家族。还在尿液和血浆中检出了脑脊液中检测到的百分之六十三(435的273)生化试剂,在血浆或尿液中也检出了32%(435的140),而仅检测到5%(435的22)。对几种代谢物的分析显示,临床上有用的检测方法与代谢组学方法之间存在一致性。从同一患者收集的另一组CSF和血浆样品显示,在配对样品中检测到的几种生化试剂之间存在相关性。最后,对患有二氢蝶啶还原酶(DHPR)缺乏症的小儿科病例的脑脊液进行分析,结果表明,无针对性的全球代谢表型可作为一种广泛的评估方法,用于筛选未分化表型患者的样本。结果表明,使用集成的代谢组学工作流程处理的单个CSF样品可用于识别大量生化试剂,这些生化试剂可用于识别与IEM相关的破坏性代谢模式。

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