Barley genomics: An overview.

Nese Sreenivasulu, Andreas Graner, Ulrich Wobus
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引用次数: 74

Abstract

Barley (Hordeum vulgare), first domesticated in the Near East, is a well-studied crop in terms of genetics, genomics, and breeding and qualifies as a model plant for Triticeae research. Recent advances made in barley genomics mainly include the following: (i) rapid accumulation of EST sequence data, (ii) growing number of studies on transcriptome, proteome, and metabolome, (iii) new modeling techniques, (iv) availability of genome-wide knockout collections as well as efficient transformation techniques, and (v) the recently started genome sequencing effort. These developments pave the way for a comprehensive functional analysis and understanding of gene expression networks linked to agronomically important traits. Here, we selectively review important technological developments in barley genomics and related fields and discuss the relevance for understanding genotype-phenotype relationships by using approaches such as genetical genomics and association studies. High-throughput genotyping platforms that have recently become available will allow the construction of high-density genetic maps that will further promote marker-assisted selection as well as physical map construction. Systems biology approaches will further enhance our knowledge and largely increase our abilities to design refined breeding strategies on the basis of detailed molecular physiological knowledge.

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大麦基因组学:综述。
大麦(Hordeum vulgare)最早在近东被驯化,是一种在遗传学、基因组学和育种方面得到充分研究的作物,有资格作为小麦科研究的模式植物。大麦基因组学的最新进展主要包括:(i) EST序列数据的快速积累,(ii)转录组、蛋白质组和代谢组的研究越来越多,(iii)新的建模技术,(iv)全基因组敲除收集的可用性以及有效的转化技术,以及(v)最近开始的基因组测序工作。这些发展为全面的功能分析和理解与农学重要性状相关的基因表达网络铺平了道路。在这里,我们有选择性地回顾了大麦基因组学和相关领域的重要技术进展,并讨论了利用遗传基因组学和关联研究等方法来理解基因型-表型关系的相关性。最近出现的高通量基因分型平台将允许高密度遗传图谱的构建,这将进一步促进标记辅助选择和物理图谱的构建。系统生物学方法将进一步增强我们的知识,并在很大程度上提高我们在详细的分子生理学知识的基础上设计精细育种策略的能力。
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