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Physiological and Molecular Approaches to Improve Drought Resistance in Soybean

机译:改善大豆抗旱性的生理和分子方法

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摘要

Drought stress is a major constraint to the production and yield stability of soybean [Glycine max (L.) Merr.]. For developing high yielding varieties under drought conditions, the most widely employed criterion has traditionally been direct selection for yield stability over multiple locations. However, this approach is time consuming and labor intensive, because yield is a highly quantitative trait with low heritability, and influenced by differences arising from soil heterogeneity and environmental factors. The alternative strategy of indirect selection using secondary traits has succeeded only in a few crops, due to problems with repeatability and lack of phenotyping strategies, especially for root-related traits. Considerable efforts have been directed towards identifying traits associated with drought resistance in soybean. With the availability of the whole genome sequence, physical maps, genetics and functional genomics tools, integrated approaches using molecular breeding and genetic engineering offer new opportunities for improving drought resistance in soybean. Genetic engineering for drought resistance with candidate genes has been reported in the major food crops, and efforts for developing drought-resistant soybean lines are in progress. The objective of this review is to consolidate the current knowledge of physiology, molecular breeding and func-tional genomics which may be influential in integrating breeding and genetic engineering approaches for drought resistance in soybean.
机译:干旱胁迫是大豆[Glycine max(L.)Merr。]的生产和产量稳定性的主要限制。为了在干旱条件下开发高产品种,传统上最广泛采用的标准是直接选择多个位置的产量稳定性。但是,这种方法既费时又费力,因为产量是一种高度定量的特征,遗传力较低,并且受土壤异质性和环境因素引起的差异的影响。由于存在重复性问题和缺乏表型分析策略的问题,特别是对于根系相关性状,使用次生性状间接选择的替代策略仅在少数作物中获得成功。已经进行了大量的努力来鉴定与大豆中的抗旱性有关的性状。随着整个基因组序列,物理图谱,遗传学和功能基因组学工具的可用性,使用分子育种和基因工程的综合方法为提高大豆的抗旱性提供了新的机会。在主要的粮食作物中已经报道了具有候选基因的抗旱基因工程,并且正在开发抗旱大豆品系。这篇综述的目的是巩固当前的生理学,分子育种和功能基因组学知识,这些知识可能对整合大豆育种和基因工程方法的抗旱性产生影响。

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