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资源分配建模用于植物细胞表型的自主预测。

Resource allocation modeling for autonomous prediction of plant cell phenotypes.

机构信息

Université Paris-Saclay, INRAE, MaIAGE, 78350, Jouy-en-Josas, France.

Université Paris-Saclay, INRAE, AgroParisTech, Institut Jean-Pierre Bourgin (IJPB), 78000, Versailles, France.

出版信息

Metab Eng. 2024 May;83:86-101. doi: 10.1016/j.ymben.2024.03.009. Epub 2024 Mar 30.

Abstract

Predicting the plant cell response in complex environmental conditions is a challenge in plant biology. Here we developed a resource allocation model of cellular and molecular scale for the leaf photosynthetic cell of Arabidopsis thaliana, based on the Resource Balance Analysis (RBA) constraint-based modeling framework. The RBA model contains the metabolic network and the major macromolecular processes involved in the plant cell growth and survival and localized in cellular compartments. We simulated the model for varying environmental conditions of temperature, irradiance, partial pressure of CO and O, and compared RBA predictions to known resource distributions and quantitative phenotypic traits such as the relative growth rate, the C:N ratio, and finally to the empirical characteristics of CO fixation given by the well-established Farquhar model. In comparison to other standard constraint-based modeling methods like Flux Balance Analysis, the RBA model makes accurate quantitative predictions without the need for empirical constraints. Altogether, we show that RBA significantly improves the autonomous prediction of plant cell phenotypes in complex environmental conditions, and provides mechanistic links between the genotype and the phenotype of the plant cell.

摘要

预测植物细胞在复杂环境条件下的反应是植物生物学的一个挑战。在这里,我们基于资源平衡分析(RBA)约束建模框架,为拟南芥叶片光合细胞开发了一种细胞和分子尺度的资源分配模型。RBA 模型包含了代谢网络和与植物细胞生长和存活相关的主要大分子过程,并在细胞区室中进行了本地化。我们模拟了模型在温度、光照、CO 和 O 分压等不同环境条件下的情况,并将 RBA 预测与已知的资源分布以及相对生长率、C:N 比等定量表型特征进行了比较,最终还与由成熟的 Farquhar 模型给出的 CO 固定的经验特征进行了比较。与通量平衡分析等其他标准约束建模方法相比,RBA 模型无需经验约束即可进行准确的定量预测。总的来说,我们表明 RBA 可以显著提高植物细胞在复杂环境条件下的自主表型预测能力,并提供了植物细胞基因型和表型之间的机制联系。

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