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Crop Systems Biology as An Avenue to Bridge Applied Crop Science and Fundamental Plant Biology

机译:作物系统生物学作为桥梁应用作物科学和基本植物生物学的途径

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Plant biologists, agronomists and breeders alike have been constantly facing challenges in narrowing genotype-phenotype gaps. Plant systems biology, as first recognized, seems to target those phenotypes at molecular, sub-cellular, or cellular levels. To emphasize the importance of bridging this gap for understanding and directionally modifying phenotypes relevant to the real-world challenges for agriculture, the concept 'crop systems biology' seems more appropriate. This new concept acknowledges the complementarity of the roles of modern plant biology, traditional crop physiology and advanced crop modelling in improving yield and resource use efficiencies of major crops. As a first step, biochemical modules of photosynthesis and molecular marker-based quantitative trait locus information were incorporated into existing crop models. These case studies underline that current modelling shows promise in studying complex crop traits. For further progress, crop models should be upgraded based on understandings of complicated phenomena at lower organizational levels. We expect that this crop systems biology approach will ultimately be instrumental in realizing the expected roles of in silico modelling in narrowing genotypecrop phenotype gaps, and in understanding genotype-by-environment interactions at crop level.
机译:植物生物学家,农学学家和育种者相似,在狭窄的基因型表型差距方面一直存在挑战。第一次认识到植物系统生物学似乎在分子,亚细胞或细胞水平下靶向这些表型。强调促进这种差距的重要性,了解理解和定向修饰与农业真实挑战相关的表型,概念“作物系统生物学”似乎更合适。这一新概念承认现代植物生物学,传统作物生理学和先进作物建模在提高产量和资源利用效率方面的互补性。作为第一步,将光合作用的生化模块和基于分子标记的定量性状轨迹信息纳入现有的作物模型。这些案例研究强调了当前建模显示在研究复杂作物特征时的承诺。为了进一步进步,应根据在较低的组织层面的复杂现象的理解中升级作物模型。我们预期,这种作物系统的生物学方法最终将有助于实现在缩窄基因分类表型间隙间隙中的硅模型的预期作用,并在了解作物水平的基因型逐环相互作用。

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