Bioinformatic-driven search for metabolic biomarkers in disease.

Christian Baumgartner, Melanie Osl, Michael Netzer, Daniela Baumgartner
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Abstract

The search and validation of novel disease biomarkers requires the complementary power of professional study planning and execution, modern profiling technologies and related bioinformatics tools for data analysis and interpretation. Biomarkers have considerable impact on the care of patients and are urgently needed for advancing diagnostics, prognostics and treatment of disease. This survey article highlights emerging bioinformatics methods for biomarker discovery in clinical metabolomics, focusing on the problem of data preprocessing and consolidation, the data-driven search, verification, prioritization and biological interpretation of putative metabolic candidate biomarkers in disease. In particular, data mining tools suitable for the application to omic data gathered from most frequently-used type of experimental designs, such as case-control or longitudinal biomarker cohort studies, are reviewed and case examples of selected discovery steps are delineated in more detail. This review demonstrates that clinical bioinformatics has evolved into an essential element of biomarker discovery, translating new innovations and successes in profiling technologies and bioinformatics to clinical application.

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生物信息学驱动的疾病代谢生物标记物搜索。
寻找和验证新型疾病生物标记物需要专业研究规划和执行、现代分析技术以及相关生物信息学工具的互补力量,以进行数据分析和解读。生物标志物对病人的护理有相当大的影响,是推进疾病诊断、预后和治疗的迫切需要。这篇调查文章重点介绍了用于临床代谢组学生物标记物发现的新兴生物信息学方法,侧重于数据预处理和整合问题,以及疾病中潜在代谢候选生物标记物的数据驱动搜索、验证、优先排序和生物学解读。特别是对适用于从最常用的实验设计类型(如病例对照或纵向生物标记物队列研究)中收集的 omic 数据的数据挖掘工具进行了综述,并详细介绍了选定发现步骤的案例。这篇综述表明,临床生物信息学已发展成为生物标志物发现的一个基本要素,它将剖析技术和生物信息学的新创新和成功经验转化为临床应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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