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首页> 外文期刊>Tree Physiology >Changes in fruit sugar concentrations in response to assimilate supply, metabolism and dilution: a modeling approach applied to peach fruit (Prunus persica)
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Changes in fruit sugar concentrations in response to assimilate supply, metabolism and dilution: a modeling approach applied to peach fruit (Prunus persica)

机译:响应同化物供应,代谢和稀释而改变的果糖浓度:应用于桃果实(Prunus persica)的建模方法

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The influence of assimilate supply, metabolism and dilution on sugar concentrations in the mesocarp of peach (Prunus persica (L.) Batsch) fruit during the main stage of fruit enlargement was analyzed with the SUGAR model of Genard and Souty (1996). The model predicts the partitioning of carbon into sucrose, sorbitol, glucose and fructose in the mesocarp of peach fruit. Based on measured data and the model, we determined values for the relative rates of sugar transformation. These rates were constant, varied with time or varied with relative fruit growth rate, depending on the type of sugar. Equations were derived to describe these rates and incorporated into the SUGAR model. The model simulated the effects of changing assimilate supply and fruit volume on sugar concentrations. The set of equations for the SUGAR model was rewritten to include the three components influencing sugar concentrations: assimilate supply, metabolism and dilution. The sugar types differed in sensitivity to these components. Sucrose was highly sensitive to changes in assimilate supply and to the dilution effect; it was not subject to intense metabolic transformation. Sorbitol was the most important carbohydrate in fruit metabolism, which explains why the sorbitol concentration was always low despite the strong positive effect of assimilate supply. The reducing sugars constituted a transitory storage pool and their concentrations were closely related to metabolism.
机译:利用Genard和Souty的SUGAR模型(​​1996年)分析了果实膨大主要阶段桃(Prunus persica(L.)Batsch)的果皮中同化物的供应,代谢和稀释对中果皮糖含量的影响。该模型预测桃果实中果皮中的碳分配为蔗糖,山梨糖醇,葡萄糖和果糖。基于实测数据和模型,我们确定了糖转化率的相对值。这些速率是恒定的,随时间变化或随相对水果生长速率而变化,这取决于糖的类型。导出了描述这些速率的方程,并将其合并到SUGAR模型中。该模型模拟了同化物供应和水果量的变化对糖浓度的影响。 SUGAR模型的方程组被重写为包括三个影响糖浓度的成分:同化物供应,代谢和稀释。糖类型对这些成分的敏感性不同。蔗糖对同化物供应的变化和稀释效果高度敏感;它没有进行强烈的代谢转化。山梨糖醇是水果代谢中最重要的碳水化合物,这解释了为什么尽管同化物供应有很强的积极作用,山梨糖醇的浓度总是很低。还原糖构成了一个暂时的储存池,其浓度与代谢密切相关。

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