大豆基因组学:利用“福雷斯特”品种的发展。

David A Lightfoot
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引用次数: 37

摘要

豆科作物尤其重要,因为它们具有支持共生固氮的能力,这是可持续作物生产和减少碳排放的关键。大豆(Glycine max)在普通的草豆科植物轮作中具有特殊的地位,是增加蛋白质和油脂产量的主要来源。“福雷斯特”这个品种已经为美国种植者节省了数十亿美元的作物损失,这是由于基因中植入了抗性。此外,由于阿甘在南北过渡区生长良好,育种者已将该品种用作连接美国南部和北部基因库的桥梁。对福雷斯特基因组学的投资导致了以下研究工具的发展:(我)一个遗传图谱,(ii)三个瑞来斯人口(96 > n > 975),(3)约200尼尔斯,(iv) 115 220•巴BIBACs, (v)物理地图,(vi) 4种不同的最低花砖路径(MTP)集,(七)25 123 BAC结束序列(贝丝),包括18.5 Mbp MTP飘飘然的,和2 000个微卫星标记(八)2408个地区的地图每发现一个在基因组中的位置和2104个地区2或4中发现类似的副本在不同基因组的位置(> 150 kbp),(ix)两组区域之间的同源区域图,(x)一组解决生物抗逆性的转录物丰度测量,(xi)转化方法,(xii) RNAi方法,(xiii)定向突变体分离的TILLING资源,以及(xiv)与其他测序基因组的保守性分析。SoyGD门户提供对数据的访问。迄今为止,这些资源有助于大豆结瘤和抗病的基因组分析。本文综述了相关资源及其用途。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Soybean genomics: Developments through the use of cultivar "Forrest".

Soybean genomics: Developments through the use of cultivar "Forrest".

Soybean genomics: Developments through the use of cultivar "Forrest".

Soybean genomics: Developments through the use of cultivar "Forrest".

Legume crops are particularly important due to their ability to support symbiotic nitrogen fixation, a key to sustainable crop production and reduced carbon emissions. Soybean (Glycine max) has a special position as a major source of increased protein and oil production in the common grass-legume rotation. The cultivar "Forrest" has saved US growers billions of dollars in crop losses due to resistances programmed into the genome. Moreover, since Forrest grows well in the north-south transition zone, breeders have used this cultivar as a bridge between the southern and northern US gene pools. Investment in Forrest genomics resulted in the development of the following research tools: (i) a genetic map, (ii) three RIL populations (96 > n > 975), (iii) approximately 200 NILs, (iv) 115 220 BACs and BIBACs, (v) a physical map, (vi) 4 different minimum tiling path (MTP) sets, (vii) 25 123 BAC end sequences (BESs) that encompass 18.5 Mbp spaced out from the MTPs, and 2 000 microsatellite markers within them (viii) a map of 2408 regions each found at a single position in the genome and 2104 regions found in 2 or 4 similar copies at different genomic locations (each of >150 kbp), (ix) a map of homoeologous regions among both sets of regions, (x) a set of transcript abundance measurements that address biotic stress resistance, (xi) methods for transformation, (xii) methods for RNAi, (xiii) a TILLING resource for directed mutant isolation, and (xiv) analyses of conserved synteny with other sequenced genomes. The SoyGD portal at sprovides access to the data. To date these resources assisted in the genomic analysis of soybean nodulation and disease resistance. This review summarizes the resources and their uses.

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