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首页> 外文期刊>The Plant Cell >Computational Modeling and Molecular Physiology Experiments Reveal New Insights into Shoot Branching in Pea.
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Computational Modeling and Molecular Physiology Experiments Reveal New Insights into Shoot Branching in Pea.

机译:计算模型和分子生理学实验揭示了豌豆枝条的新见解。

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Bud outgrowth is regulated by the interplay of multiple hormones, including auxin, cytokinin, strigolactones, and an unidentified long-distance feedback signal that moves from shoot to root. The model of bud outgrowth regulation in pea (Pisum sativum) includes these signals and a network of five RAMOSUS (RMS) genes that operate in a shoot-root-shoot loop to regulate the synthesis of, and response to, strigolactones. The number of components in this network renders the integration of new and existing hypotheses both complex and cumbersome. A hypothesis-driven computational model was therefore developed to help understand regulation of shoot branching. The model evolved in parallel with stepwise laboratory research, helping to define and test key hypotheses. The computational model was used to verify new mechanisms involved in the regulation of shoot branching by confirming that the new hypotheses captured all relevant biological data sets. Based on cytokinin and RMS1 expression analyses, this model is extended to include subtle but important differences in the function of RMS3 and RMS4 genes in the shoot and rootstock. Additionally, this research indicates that a branch-derived signal upregulates RMS1 expression independent of the other feedback signal. Furthermore, we propose xylem-sap cytokinin promotes sustained bud outgrowth, rather than acting at the earlier stage of bud release.
机译:芽的生长受多种激素(包括植物生长素,细胞分裂素,松果内酯)以及从芽到根的未确定的长距离反馈信号相互作用的调节。豌豆(Pisum sativum)的芽长出调控模型包括这些信号和五个RAMOSUS(RMS)基因的网络,这些基因在枝根-shoot回环中起作用,以调节strigolactones的合成和响应。该网络中的组件数量众多,使得新的和现有的假设的集成既复杂又麻烦。因此,建立了假设驱动的计算模型,以帮助理解枝条的调控。该模型与逐步的实验室研究并行发展,有助于定义和检验关键假设。通过确认新的假设捕获了所有相关的生物学数据,该计算模型被用于验证参与枝条调控的新机制。基于细胞分裂素和RMS1表达分析,该模型扩展到包括芽和砧木中RMS3和RMS4基因功能的细微但重要的差异。此外,这项研究表明分支衍生信号独立于其他反馈信号上调RMS1表达。此外,我们建议木质部汁液细胞分裂素促进持续的芽生长,而不是在芽释放的早期起作用。

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