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Integration of transcriptomics and metabonomics: improving diagnostics biomarker identification and phenotyping in ulcerative colitis

机译:转录组学与代谢组学的整合:改善溃疡性结肠炎的诊断生物标志物鉴定和表型分析

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摘要

A systems biology approach to multi-faceted diseases has provided an opportunity to establish a holistic understanding of the processes at play. Thus, the current study merges transcriptomics and metabonomics data in order to improve diagnostics, biomarker identification and to explore the possibilities of a molecular phenotyping of ulcerative colitis (UC) patients. Biopsies were obtained from the descending colon of 43 UC patients (22 active UC and 21 quiescent UC) and 15 controls. Genome-wide gene expression analyses were performed using Affymetrix GeneChip Human Genome U133 Plus 2.0. Metabolic profiles were generated using 1H Nuclear magnetic resonance spectroscopy (Bruker 600 MHz, Bruker BioSpin, Rheinstetten, Germany). Data were analyzed with the use of orthogonal-projection to latent structure-discriminant analysis and a multivariate logistic regression model fitted by lasso. Prediction performance was evaluated using nested Monte Carlo cross-validation. The prediction performance of the merged data sets and that of relative small (<20 variables) multivariate biomarker panels suggest that it is possible to discriminate between active UC, quiescent UC, and controls; between patients with or without steroid dependency, as well as between early or late disease onset. Consequently, this study demonstrates that the novel approach of integrating metabonomics and transcriptomics combines the better of the two worlds, and provides us with clinical applicable candidate biomarker panels. These combined panels improve diagnostics and more importantly also the molecular phenotyping in UC and provide insight into the pathophysiological processes at play, making optimized and personalized medication a possibility.Electronic supplementary materialThe online version of this article (doi:10.1007/s11306-013-0580-3) contains supplementary material, which is available to authorized users.
机译:针对多方面疾病的系统生物学方法提供了一个机会,可以使人们全面了解正在发挥作用的过程。因此,本研究合并了转录组学和代谢组学数据,以改善诊断,生物标志物鉴定和探索溃疡性结肠炎(UC)患者分子表型的可能性。从43例UC患者的降结肠(22例活动UC和21例静态UC)和15例对照中获得活检。使用Affymetrix GeneChip Human Genome U133 Plus 2.0进行全基因组基因表达分析。使用 1 H核磁共振波谱仪(Bruker 600MHz,Bruker BioSpin,Rheinstetten,Germany)生成代谢谱。使用正交投影进行潜在结构判别分析和套索拟合的多元逻辑回归模型分析数据。使用嵌套蒙特卡洛交叉验证对预测性能进行评估。合并数据集和相对较小(<20个变量)的多元生物标志物组的预测性能表明,可以区分活动UC,静态UC和对照。在有或没有类固醇依赖的患者之间以及疾病的早期或晚期发作之间。因此,这项研究表明,整合代谢组学和转录组学的新颖方法结合了两个方面的优势,并为我们提供了临床适用的候选生物标志物组。这些组合的面板改善了诊断能力,更重要的是还改善了UC中的分子表型,并提供了对正在发挥作用的病理生理过程的洞察力,从而使优化和个性化药物治疗成为可能。电子补充材料本文的在线版本(doi:10.1007 / s11306-013-0580 -3)包含补充材料,授权用户可以使用。

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