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In-silico analysis of water and carbon relations under stress conditions. A multi-scale perspective centered on fruit

机译:应力条件下水和碳关系的计算机模拟分析。以水果为中心的多尺度视角

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摘要

Fruit development, from its early stages, is the result of a complex network of interacting processes, on different scales. These include cell division, cell expansion but also nutrient transport from the plant, and exchanges with the environment. In the presence of nutrient limitation, in particular, the plant reacts as a whole, by modifying its architecture, metabolism, and reproductive strategy, determining the resources available for fruit development, which in turn affects the overall source-sink balance of the system. Here, we present an integrated model of tomato that explicitly accounts for early developmental changes (from cell division to harvest), and use it to investigate the impact of water deficit and carbon limitation on nutrient fluxes and fruit growth, in both dry and fresh mass. Variability in fruit response is analyzed on two different scales: among trusses at plant level, and within cell populations at fruit level. Results show that the effect of stress on individual cells strongly depends on their age, size, and uptake capabilities, and that the timing of stress application, together with the fruit position on the plant, is crucial in determining the final phenotypic outcome. Water deficit and carbon depletion impacted either source size, source activity, or sink strength with contrasted effects on fruit growth. An important prediction of the model is the major role of symplasmic transport of carbon in the early stage of fruit development, as a catalyst for cell and fruit growth.
机译:从早期阶段开始,水果的发展是由不同规模的相互作用过程组成的复杂网络的结果。其中包括细胞分裂,细胞扩增,还包括植物中的养分转运以及与环境的交换。特别是在存在营养限制的情况下,植物会通过修改其结构,新陈代谢和生殖策略来整体上做出反应,确定可用于果实发育的资源,进而影响系统的整体源库平衡。在这里,我们提出了一个番茄的综合模型,该模型明确地说明了早期发育变化(从细胞分裂到收获),并使用它来研究水分和碳限制对干燥和新鲜状态下养分通量和水果生长的影响。水果响应的变异性从两个不同的角度进行分析:植物级别的桁架之间和水果级别的细胞群体内。结果表明,胁迫对单个细胞的影响在很大程度上取决于它们的年龄,大小和摄取能力,并且施加胁迫的时间以及植物上的果实位置对于确定最终的表型结果至关重要。水分亏缺和碳耗竭会影响水源大小,水源活动或水槽强度,对水果生长的影响相反。该模型的重要预测是碳在果实发育早期的同质转运作为细胞和果实生长的催化剂的主要作用。

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