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Metabolome-wide association studies for agronomic traits of rice

机译:水稻农艺性状的全代谢组关联研究

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摘要

Identification of trait-associated metabolites will advance the knowledge and understanding of the biosynthetic and catabolic pathways that are relevant to the complex traits of interest. In the past, the association between metabolites (treated as quantitative traits) and genetic variants (e.g., SNPs) has been extensively studied using metabolomic quantitative trait locus (mQTL) mapping. Nevertheless, the research on the association between metabolites with agronomic traits has been inadequate. In practice, the regular approaches for QTL mapping analysis may be adopted for metabolites-phenotypes association analysis due to the similarity in data structure of these two types of researches. In the study, we compared four regular QTL mapping approaches, i.e., simple linear regression (LR), linear mixed model (LMM), Bayesian analysis with spike-slab priors (Bayes B) and least absolute shrinkage and selection operator (LASSO), by testing their performances on the analysis of metabolome-phenotype associations. Simulation studies showed that LASSO had the higher power and lower false positive rate than the other three methods. We investigated the associations of 839 metobolites with five agronomic traits in a collection of 533 rice varieties. The results implied that a total of 25 metabolites were significantly associated with five agronomic traits. Literature search and bioinformatics analysis indicated that the identified 25 metabolites are significantly involved in some growth and development processes potentially related to agronomic traits. We also explored the predictability of agronomic traits based on the 839 metabolites through cross-validation, which showed that metabolomic prediction was efficient and its application in plant breeding has been justified.
机译:与性状相关的代谢产物的鉴定将促进与感兴趣的复杂性状相关的生物合成和分解代谢途径的知识和理解。过去,代谢物(作为定量性状)和遗传变异(例如SNP)之间的关联已使用代谢组学定量性状基因座(mQTL)作图法进行了广泛研究。然而,关于代谢物与农艺性状之间关系的研究还不够。在实践中,由于这两种研究数据结构的相似性,可以将常规的QTL作图分析方法用于代谢物-表型的关联分析。在这项研究中,我们比较了四种常规QTL映射方法,即简单线性回归(LR),线性混合模型(LMM),带尖峰先验先验的贝叶斯分析(Bayes B)和最小绝对收缩和选择算子(LASSO),通过测试其在代谢组与表型之间的关联分析中的表现。仿真研究表明,LASSO具有比其他三种方法更高的功效和更低的误报率。我们调查了533种水稻品种中839种代谢产物与5种农艺性状的关联。结果表明共有25种代谢物与5个农艺性状显着相关。文献搜索和生物信息学分析表明,已鉴定出的25种代谢物显着参与了某些与农艺性状相关的生长和发育过程。我们还通过交叉验证探索了基于839种代谢产物的农艺性状的可预测性,这表明代谢组学预测是有效的,并且其在植物育种中的应用是合理的。

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