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首页> 外文期刊>Annals of Botany >An updated model for nitrate uptake modelling in plants. I. Functional component: cross-combination of flow-force interpretation of nitrate uptake isotherms, and environmental and in planta regulation of nitrate influx.
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An updated model for nitrate uptake modelling in plants. I. Functional component: cross-combination of flow-force interpretation of nitrate uptake isotherms, and environmental and in planta regulation of nitrate influx.

机译:植物硝酸盐吸收模型的更新模型。 I.功能组件:硝酸盐吸收等温线的流动力解释的交叉组合,以及环境和植物体内硝酸盐流入的调节。

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Background and Aims: In spite of major breakthroughs in the last three decades in the identification of root nitrate uptake transporters in plants and the associated regulation of nitrate transport activities, a simplified and operational modelling approach for nitrate uptake is still lacking. This is due mainly to the difficulty in linking the various regulations of nitrate transport that act at different levels of time and on different spatial scales. Methods: A cross-combination of a Flow-Force approach applied to nitrate influx isotherms and experimentally determined environmental and in planta regulation is used to model nitrate in oilseed rape, Brassica napus. In contrast to 'Enzyme-Substrate' interpretations, a Flow-Force modelling approach considers the root as a single catalytic structure and does not infer hypothetical cellular processes among nitrate transporter activities across cellular layers in the mature roots. In addition, this approach accounts for the driving force on ion transport based on the gradient of electrochemical potential, which is more appropriate from a thermodynamic viewpoint. Key Results and Conclusions: Use of a Flow-Force formalism on nitrate influx isotherms leads to the development of a new conceptual mechanistic basis to model more accurately N uptake by a winter oilseed rape crop under field conditions during the whole growth cycle. This forms the functional component of a proposed new structure-function mechanistic model of N uptake.
机译:背景和目的:尽管在过去的三十年中,植物根硝酸盐吸收转运蛋白的识别和对硝酸盐吸收活动的相关调节取得了重大突破,但仍缺乏简化的硝酸盐吸收操作模型。这主要是由于很难将硝酸盐运输的各种法规联系起来,这些法规在不同的时间水平和不同的空间尺度上起作用。方法:将流力方法的交叉组合应用于硝酸盐流入等温线,并通过实验确定环境和植物调节,以模拟油菜油菜(甘蓝型油菜)中的硝酸盐。与“酶-底物”的解释相反,Flow-Force建模方法将根视为单个催化结构,并且不会推断出成熟根中跨细胞层的硝酸盐转运蛋白活动中的假设细胞过程。另外,这种方法考虑了基于电化学势梯度的离子传输驱动力,从热力学角度来看,这种驱动力更为合适。主要结果和结论:对硝酸盐流入等温线使用Flow-Force形式主义导致了新的概念性机理基础的发展,以更准确地模拟冬季油菜在整个生长周期中田间条件下的氮吸收量。这形成了提出的新的氮吸收结构-功能机制模型的功能组件。

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