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Metabonomics in Diabetes Research

机译:糖尿病研究中的代谢组学

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摘要

Metabonomics has been defined as “quantitative measurement of the dynamic multiparametric metabolic response of living systems to pathophysiological stimuli or genetic modification” and can provide information on disease processes, drug toxicity, and gene function. In this approach many samples of biological origin (biofluids such as urine or plasma) are analyzed using techniques that produce simultaneous detection. A variety of analytical metabolic profiling tools are used routinely, are also currently under development, and include proton nuclear magnetic resonance spectroscopy and mass spectrometry with a prior online separation step such as high-performance liquid chromatography, ultra-performance liquid chromatography, or gas chromatography. Data generated by these analytical techniques are often combined with multivariate data analysis, i.e., pattern recognition, for respectively generating and interpreting the metabolic profiles of the investigated samples. Metabonomics has gained great prominence in diabetes research within the last few years and has already been applied to understand the metabolism in a range of animal models and, more recently, attempts have been done to process complex metabolic data sets from clinical studies. A future hope for the metabonomic approach is the identification of biomarkers that are able to highlight individuals likely to suffer from diabetes and enable early diagnosis of the disease or the identification of those at risk. This review summarizes the technologies currently being used in metabonomics, as well as the studies reported related to diabetes prior to a description of the general objective of the research plan of the metabonomics part of the European Union project, Molecular Phenotyping to Accelerate Genomic Epidemiology.
机译:代谢组学已被定义为“对生命系统对病理生理刺激或基因修饰的动态多参数代谢反应的定量测量”,并可提供有关疾病过程,药物毒性和基因功能的信息。在这种方法中,使用产生同时检测的技术分析了许多生物来源的样品(如尿液或血浆等生物流体)。常规使用各种分析性代谢谱分析工具,目前也在开发中,包括质子核磁共振波谱和质谱分析以及事先在线分离步骤,例如高效液相色谱,超高效液相色谱或气相色谱。由这些分析技术产生的数据通常与多变量数据分析,即模式识别相结合,以分别产生和解释所研究样品的代谢谱。在过去的几年中,代谢组学在糖尿病研究中获得了极大的重视,并且已经被用于理解一系列动物模型中的代谢,最近,人们已经尝试处理来自临床研究的复杂代谢数据集。代谢组学方法的未来希望是鉴定生物标记物,这些标记物可以突出显示可能患有糖尿病的个体并能够对该病进行早期诊断或鉴定那些有风险的人。这篇综述总结了目前在代谢组学中使用的技术,以及与糖尿病有关的报道的研究,然后再描述了欧盟项目“加速基因组流行病学的分子表型分析”的代谢组学部分研究计划的总体目标。

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