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拓展组学资源以改良大豆种子成分性状

Expanding Omics Resources for Improvement of Soybean Seed Composition Traits.

作者信息

Chaudhary Juhi, Patil Gunvant B, Sonah Humira, Deshmukh Rupesh K, Vuong Tri D, Valliyodan Babu, Nguyen Henry T

机构信息

Division of Plant Sciences, National Center for Soybean Biotechnology, University of Missouri Columbia, MO, USA.

出版信息

Front Plant Sci. 2015 Nov 24;6:1021. doi: 10.3389/fpls.2015.01021. eCollection 2015.

Abstract

Food resources of the modern world are strained due to the increasing population. There is an urgent need for innovative methods and approaches to augment food production. Legume seeds are major resources of human food and animal feed with their unique nutrient compositions including oil, protein, carbohydrates, and other beneficial nutrients. Recent advances in next-generation sequencing (NGS) together with "omics" technologies have considerably strengthened soybean research. The availability of well annotated soybean genome sequence along with hundreds of identified quantitative trait loci (QTL) associated with different seed traits can be used for gene discovery and molecular marker development for breeding applications. Despite the remarkable progress in these technologies, the analysis and mining of existing seed genomics data are still challenging due to the complexity of genetic inheritance, metabolic partitioning, and developmental regulations. Integration of "omics tools" is an effective strategy to discover key regulators of various seed traits. In this review, recent advances in "omics" approaches and their use in soybean seed trait investigations are presented along with the available databases and technological platforms and their applicability in the improvement of soybean. This article also highlights the use of modern breeding approaches, such as genome-wide association studies (GWAS), genomic selection (GS), and marker-assisted recurrent selection (MARS) for developing superior cultivars. A catalog of available important resources for major seed composition traits, such as seed oil, protein, carbohydrates, and yield traits are provided to improve the knowledge base and future utilization of this information in the soybean crop improvement programs.

摘要

由于人口不断增加,现代世界的食物资源紧张。迫切需要创新方法和途径来增加粮食产量。豆类种子是人类食物和动物饲料的主要资源,具有独特的营养成分,包括油脂、蛋白质、碳水化合物和其他有益营养物质。新一代测序(NGS)技术与“组学”技术的最新进展极大地加强了大豆研究。注释完善的大豆基因组序列以及数百个与不同种子性状相关的已鉴定数量性状位点(QTL)可用于基因发现和分子标记开发,以应用于育种。尽管这些技术取得了显著进展,但由于遗传遗传、代谢分配和发育调控的复杂性,对现有种子基因组学数据的分析和挖掘仍然具有挑战性。整合“组学工具”是发现各种种子性状关键调控因子的有效策略。在本综述中,介绍了“组学”方法的最新进展及其在大豆种子性状研究中的应用,以及可用的数据库和技术平台及其在大豆改良中的适用性。本文还强调了现代育种方法的应用,如全基因组关联研究(GWAS)、基因组选择(GS)和标记辅助轮回选择(MARS),以培育优良品种。提供了主要种子成分性状(如种子油、蛋白质、碳水化合物)和产量性状的可用重要资源目录,以改善知识库,并在大豆作物改良计划中进一步利用这些信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eac6/4657443/220cc92879cf/fpls-06-01021-g0001.jpg

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