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首页> 外文期刊>The Plant Cell >Analysis of the root system architecture of Arabidopsis provides a quantitative readout of crosstalk between nutritional signals.
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Analysis of the root system architecture of Arabidopsis provides a quantitative readout of crosstalk between nutritional signals.

机译:对拟南芥根系体系结构的分析提供了营养信号之间串扰的定量读数。

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As plant roots forage the soil for food and water, they translate a multifactorial input of environmental stimuli into a multifactorial developmental output that manifests itself as root system architecture (RSA). Our current understanding of the underlying regulatory network is limited because root responses have traditionally been studied separately for individual nutrient deficiencies. In this study, we quantified 13 RSA parameters of Arabidopsis thaliana in 32 binary combinations of N, P, K, S, and light. Analysis of variance showed that each RSA parameter was determined by a typical pattern of environmental signals and their interactions. P caused the most important single-nutrient effects, while N-effects were strongly light dependent. Effects of K and S occurred mostly through nutrient interactions in paired or multiple combinations. Several RSA parameters were selected for further analysis through mutant phenotyping, which revealed combinations of transporters, receptors, and kinases acting as signaling modules in K-N interactions. Furthermore, nutrient response profiles of individual RSA features across NPK combinations could be assigned to transcriptionally coregulated clusters of nutrient-responsive genes in the roots and to ionome patterns in the shoots. The obtained data set provides a quantitative basis for understanding how plants integrate multiple nutritional stimuli into complex developmental programs.
机译:当植物的根部在土壤中觅食以获取食物和水时,它们会将环境刺激的多因素输入转化为多因素发展输出,从而将自身表现为根系统架构(RSA)。我们目前对基本监管网络的理解是有限的,因为传统上已经针对各种营养素缺乏情况分别研究了根系反应。在这项研究中,我们在N,P,K,S和光的32种二元组合中量化了拟南芥的13个RSA参数。方差分析表明,每个RSA参数都是由环境信号及其相互作用的典型模式决定的。磷引起最重要的单一养分效应,而氮效应强烈依赖光。钾和硫的影响主要通过成对或多种组合的养分相互作用而发生。通过突变表型选择了几个RSA参数进行进一步分析,揭示了转运蛋白,受体和激酶在K-N相互作用中起信号传递模块的作用。此外,可以将跨NPK组合的单个RSA特征的营养响应图谱分配给根中营养响应基因的转录成核簇,并分配给芽中的离子组模式。获得的数据集为理解植物如何将多种营养刺激物整合到复杂的发育程序中提供了定量基础。

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