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A Dynamic Multi-Tissue Flux Balance Model Captures Carbon and Nitrogen Metabolism and Optimal Resource Partitioning During Arabidopsis Growth

机译:动态多组织通量平衡模型可捕获拟南芥生长过程中的碳和氮代谢以及最佳的资源分配。

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摘要

Plant metabolism is highly adapted in response to its surrounding for acquiring limiting resources. In this study, a dynamic flux balance modeling framework with a multi-tissue (leaf and root) diel genome-scale metabolic model of Arabidopsis thaliana was developed and applied to investigate the reprogramming of plant metabolism through multiple growth stages under different nutrient availability. The framework allowed the modeling of optimal partitioning of resources and biomass in leaf and root over diel phases. A qualitative flux map of carbon and nitrogen metabolism was identified which was consistent across growth phases under both nitrogen rich and limiting conditions. Results from the model simulations suggested distinct metabolic roles in nitrogen metabolism played by enzymes with different cofactor specificities. Moreover, the dynamic model was used to predict the effect of physiological or environmental perturbation on the growth of Arabidopsis leaves and roots.
机译:植物新陈代谢适应周围环境以获取有限资源而高度适应。在这项研究中,动态通量平衡建模框架具有拟南芥的多组织(叶和根)diel基因组规模的代谢模型,并被用于研究在不同养分利用率下植物在多个生长阶段的代谢重新编程。该框架允许在diel阶段对叶和根中的资源和生物量进行最佳分配的建模。确定了碳和氮代谢的定性通量图,该图在富氮和极限条件下在整个生长期都一致。模型模拟的结果表明,具有不同辅因子特异性的酶在氮代谢中具有不同的代谢作用。此外,动力学模型被用来预测生理或环境扰动对拟南芥叶和根生长的影响。

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