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Metabolic network-based predictions of toxicant-induced metabolite changes in the laboratory rat

机译:基于代谢网络的毒物诱导的大鼠体内代谢物变化的预测

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摘要

In order to provide timely treatment for organ damage initiated by therapeutic drugs or exposure to environmental toxicants, we first need to identify markers that provide an early diagnosis of potential adverse effects before permanent damage occurs. Specifically, the liver, as a primary organ prone to toxicants-induced injuries, lacks diagnostic markers that are specific and sensitive to the early onset of injury. Here, to identify plasma metabolites as markers of early toxicant-induced injury, we used a constraint-based modeling approach with a genome-scale network reconstruction of rat liver metabolism to incorporate perturbations of gene expression induced by acetaminophen, a known hepatotoxicant. A comparison of the model results against the global metabolic profiling data revealed that our approach satisfactorily predicted altered plasma metabolite levels as early as 5 h after exposure to 2 g/kg of acetaminophen, and that 10 h after treatment the predictions significantly improved when we integrated measured central carbon fluxes. Our approach is solely driven by gene expression and physiological boundary conditions, and does not rely on any toxicant-specific model component. As such, it provides a mechanistic model that serves as a first step in identifying a list of putative plasma metabolites that could change due to toxicant-induced perturbations.
机译:为了及时提供治疗药物或暴露于环境毒物引起的器官损伤的及时治疗,我们首先需要确定能够在永久性损伤发生之前对潜在不良反应进行早期诊断的标志物。具体而言,肝脏作为易于发生由毒物引起的伤害的主要器官,缺乏对伤害的早期发作具有特异性和敏感性的诊断标记。在这里,为了确定血浆代谢物是早期有毒物引起的损伤的标志物,我们使用了基于约束的建模方法,对大鼠肝脏代谢进行了基因组规模的网络重建,以结合对乙酰氨基酚(一种已知的肝毒物)引起的基因表达的扰动。模型结果与全球代谢谱数据的比较表明,我们的方法可以令人满意地预测暴露于2μg/ kg的对乙酰氨基酚后5phenh内血浆代谢产物水平的变化,并且在治疗后10 h整合时,预测显着改善测量的中心碳通量。我们的方法完全由基因表达和生理边界条件驱动,并且不依赖于任何特定于毒物的模型成分。这样,它提供了一种机械模型,作为确定可能由于毒物引起的扰动而改变的假定血浆代谢物清单的第一步。

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