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Metabolomic and Gene Expression Profiles Exhibit Modular Genetic and Dietary Structure Linking Metabolic Syndrome Phenotypes in Drosophila

机译:代谢组学和基因表达谱展示果蝇中的模块化遗传和饮食结构链接代谢综合症表型。

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摘要

Genetic and environmental factors influence complex disease in humans, such as metabolic syndrome, and Drosophila melanogaster serves as an excellent model in which to test these factors experimentally. Here we explore the modularity of endophenotypes with an in-depth reanalysis of a previous study by , where we raised 20 wild-type genetic lines of Drosophila larvae on four diets and measured gross phenotypes of body weight, total sugar, and total triglycerides, as well as the endophenotypes of metabolomic and whole-genome expression profiles. We then perform new gene expression experiments to test for conservation of phenotype-expression correlations across different diets and populations. We find that transcript levels correlated with gross phenotypes were enriched for puparial adhesion, metamorphosis, and central energy metabolism functions. The specific metabolites L-DOPA and N-arachidonoyl dopamine make physiological links between the gross phenotypes across diets, whereas leucine and isoleucine thus exhibit genotype-by-diet interactions. Between diets, we find low conservation of the endophenotypes that correlate with the gross phenotypes. Through the follow-up expression study, we found that transcript-trait correlations are well conserved across populations raised on a familiar diet, but on a novel diet, the transcript-trait correlations are no longer conserved. Thus, physiological canalization of metabolic phenotypes breaks down in a novel environment exposing cryptic variation. We cannot predict the physiological basis of disease in a perturbing environment from profiles observed in the ancestral environment. This study demonstrates that variation for disease traits within a population is acquired through a multitude of physiological mechanisms, some of which transcend genetic and environmental influences, and others that are specific to an individual’s genetic and environmental context.
机译:遗传和环境因素会影响人类的复杂疾病,例如代谢综合症,而果蝇(Drosophila melanogaster)是一个很好的模型,可以通过实验来测试这些因素。在这里,我们通过对的先前研究进行深入的重新分析来探索内表型的模块性,在该研究中,我们在四种饮食下培养了果蝇幼虫的20种野生型遗传系,并测量了体重,总糖和总甘油三酸酯的总表型,以及代谢组学和全基因组表达谱的内表型。然后,我们进行新的基因表达实验,以测试不同饮食和人群之间的表型表达相关性的保守性。我们发现,与总表型相关的转录水平丰富了肺黏附,变态和中央能量代谢功能。特定的代谢物L-DOPA和N-花生四烯酸多巴胺在不同饮食之间形成总表型之间的生理联系,而亮氨酸和异亮氨酸因此表现出饮食间的基因型相互作用。在两种饮食之间,我们发现与总表型相关的内表型保守性较低。通过后续表达研究,我们发现,在以熟悉的饮食饲养的人群中,转录本特征相关性得到了很好的保守,但是在新型饮食中,转录本特征相关性已不再被保守。因此,在新的环境中,代谢表型的生理通道分解会暴露出神秘的变异。我们无法根据祖先环境中观察到的概况预测扰动环境中疾病的生理基础。这项研究表明,人群中疾病特征的变异是通过多种生理机制获得的,其中一些超越了遗传和环境的影响,而另一些则是针对个体的遗传和环境的。

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