INRA, UR1115 Plantes et Systèmes de Culture Horticoles, F-84 914 Avignon, France.
J Exp Bot. 2010 Feb;61(4):955-67. doi: 10.1093/jxb/erp377. Epub 2009 Dec 27.
Detailed information has arisen from research at gene and cell levels, but it is still incomplete in the context of a quantitative understanding of whole plant physiology. Because of their integrative nature, process-based simulation models can help to bridge the gap between genotype and phenotype and assist in deconvoluting genotype-by-environment (GxE) interactions for complex traits. Indeed, GxE interactions are emergent properties of simulation models, i.e. unexpected properties generated by complex interconnections between subsystem components and biological processes. They co-occur in the system with synergistic or antagonistic effects. In this work, different kinds of GxE interactions are illustrated. Approaches to link model parameters to genes or quantitative trait loci (QTL) are briefly reviewed. Then the analysis of GxE interactions through simulation models is illustrated with an integrated model simulation of peach (Prunus persica (L.) Batsch) fruit mass and sweetness, and with a model of wheat (Triticum aestivum L.) grain yield and protein concentration. This paper suggests that the management of complex traits such as fruit and grain quality may become possible, thanks to the increasing knowledge concerning the genetic and environmental regulation of organ size and composition and to the development of models simulating the complex aspects of metabolism and biophysical behaviours at the plant and organ levels.
从基因和细胞水平的研究中已经产生了详细的信息,但在全面了解植物生理学的情况下,这些信息仍然不完整。由于其综合性,基于过程的模拟模型可以帮助弥合基因型和表型之间的差距,并协助分解复杂性状的基因型-环境(GxE)相互作用。实际上,GxE 相互作用是模拟模型的涌现特性,即子系统组件和生物过程之间复杂相互作用产生的意外特性。它们与协同或拮抗作用一起在系统中共同发生。在这项工作中,说明了不同类型的 GxE 相互作用。简要回顾了将模型参数与基因或数量性状位点(QTL)联系起来的方法。然后,通过对桃(Prunus persica(L.)Batsch)果实质量和甜度的综合模型模拟以及小麦(Triticum aestivum L.)籽粒产量和蛋白质浓度的模型,说明了通过模拟模型分析 GxE 相互作用。本文认为,由于对器官大小和组成的遗传和环境调控的了解不断增加,以及对模拟植物和器官水平代谢和生物物理行为复杂方面的模型的开发,对果实和谷物等复杂性状的管理可能成为可能质量。