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马铃薯品种总成分分析和品质性状研究中代谢组指纹数据的表征、比较与解读

Representation, comparison, and interpretation of metabolome fingerprint data for total composition analysis and quality trait investigation in potato cultivars.

作者信息

Beckmann Manfred, Enot David P, Overy David P, Draper John

机构信息

Institute of Biological Sciences, Edward Llwyd Building, University of Wales, Aberystwyth, Ceredigion SY23 3DA, United Kingdom.

出版信息

J Agric Food Chem. 2007 May 2;55(9):3444-51. doi: 10.1021/jf0701842. Epub 2007 Apr 7.

Abstract

Understanding attributes of crop varieties and food raw materials underlying desirable characteristics is a significant challenge. Metabolomics technology based on flow infusion electrospray ionization mass spectrometry (FIE-MS) has been used to investigate the chemical composition of potato cultivars associated with quality traits in harvested tubers. Through the combination of metabolite fingerprinting with random forest data modeling, a subset of metabolome signals explanatory of compositional differences between individual genotypes were ranked for importance. Interpretative analysis of highlighted signals based on ranking behavior, intensity correlations, and mathematical relationships of ion masses correctly predicted metabolites associated with flavor and pigmentation traits in potato tubers. GC-MS profiling was used to further validate proposed compositional differences. The potential for the development of a database strategy for large scale, long-term projects requiring comparison of chemical composition in plant breeding, mutant population analysis in functional genomics experiments, or food raw material analysis is described.

摘要

了解作物品种和食品原材料中潜在优良特性的属性是一项重大挑战。基于流动注射电喷雾电离质谱(FIE-MS)的代谢组学技术已被用于研究与收获块茎品质性状相关的马铃薯品种的化学成分。通过将代谢物指纹图谱与随机森林数据建模相结合,对解释个体基因型间成分差异的代谢组信号子集按重要性进行了排序。基于排名行为、强度相关性和离子质量的数学关系对突出信号进行解释性分析,正确预测了与马铃薯块茎风味和色素沉着性状相关的代谢物。气相色谱-质谱分析用于进一步验证所提出的成分差异。描述了为大规模、长期项目开发数据库策略的潜力,这些项目需要在植物育种中比较化学成分、功能基因组学实验中的突变群体分析或食品原材料分析。

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