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Computational Complementation: A Modelling Approach to Study Signalling Mechanisms during Legume Autoregulation of Nodulation

机译:计算补充:研究豆科植物结节自动调节信号机制的一种建模方法

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摘要

Autoregulation of nodulation (AON) is a long-distance signalling regulatory system maintaining the balance of symbiotic nodulation in legume plants. However, the intricacy of internal signalling and absence of flux and biochemical data, are a bottleneck for investigation of AON. To address this, a new computational modelling approach called “Computational Complementation” has been developed. The main idea is to use functional-structural modelling to complement the deficiency of an empirical model of a loss-of-function (non-AON) mutant with hypothetical AON mechanisms. If computational complementation demonstrates a phenotype similar to the wild-type plant, the signalling hypothesis would be suggested as “reasonable”. Our initial case for application of this approach was to test whether or not wild-type soybean cotyledons provide the shoot-derived inhibitor (SDI) to regulate nodule progression. We predicted by computational complementation that the cotyledon is part of the shoot in terms of AON and that it produces the SDI signal, a result that was confirmed by reciprocal epicotyl-and-hypocotyl grafting in a real-plant experiment. This application demonstrates the feasibility of computational complementation and shows its usefulness for applications where real-plant experimentation is either difficult or impossible.
机译:结瘤自动调节(AON)是一种长途信号调节系统,可在豆类植物中维持共生结瘤的平衡。但是,内部信号的复杂性以及缺乏通量和生化数据是研究AON的瓶颈。为了解决这个问题,已经开发了一种称为“计算补全”的新计算建模方法。主要思想是使用功能结构模型来补充具有假设的AON机制的功能丧失(非AON)突变体的经验模型的不足。如果计算互补表现出与野生型植物相似的表型,则信号假说将被认为是“合理的”。我们应用该方法的最初案例是测试野生型大豆子叶是否提供芽衍生抑制剂(SDI)来调节结节进程。我们通过计算互补预测,就AON而言,子叶是枝条的一部分,并且它会产生SDI信号,这一结果已在实际植物实验中通过相互进行的表皮和下胚轴嫁接得到了证实。此应用程序演示了计算互补的可行性,并显示了其在难以或不可能进行实际植物实验的应用中的有用性。

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