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Comparing two approaches for introgression of germplasm from Aegilops tauschii into common wheat

机译:比较两种方式将Taegchips tauschii的种质渗入普通小麦

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摘要

Allelic diversity in the wild grass Aegilops tauschii is vastly greater than that in the D genome of common wheat (Triticum aestivum), of which Ae. tauschii is the source. Since the 1980s, there have been numerous efforts to harness a much larger share of Ae. tauschii's extensive and highly variable gene pool for wheat improvement. Those efforts have followed two distinct approaches:production of amphiploids, known as"synthetic hexaploids,"between T. turgidum and Ae. tauschii, and direct hybridization between T. aestivum and Ae. tauschii;both approaches then involve backcrossing to T. aestivum. Both synthetic hexaploid production and direct hybridization have led to the transfer of numerous new genes into common wheat that confer improvements in many traits. This work has led to release of improved cultivars in China, the United States, and many other countries. Each approach to D-genome improvement has advantages and disadvantages. For example, production of synthetic hexaploids can incorporate useful germplasm from both T. turgidum and Ae. tauschii, thereby enhancing the A, B, and D genomes;on the other hand, direct hybridization rapidly restores the recurrent parent's A and B genomes and avoids incorporation of genes with adverse effects on threshability, hybrid necrosis, vernalization response, milling and baking quality, and other traits, which are often transferred when T. turgidum is used as a parent. Choice of method will depend in part on the type of wheat being developed and the target environment. However, more extensive use of the so-far underexploited direct hybridization approach is especially warranted.
机译:野草埃及山羊草的等位基因多样性远远大于普通小麦(普通小麦)D基因组中的等位基因多样性。 tauschii是来源。自1980年代以来,已经进行了许多努力来利用更大份额的Ae。 tauschii广泛而高度可变的小麦改良基因库。这些努力遵循了两种截然不同的方法:在T. turgidum和Ae之间产生称为“合成六倍体”的二倍体。 tauschii,以及普通小麦和小麦之间的直接杂交。 tauschii;这两种方法都涉及回交至普通小麦。合成六倍体的生产和直接杂交都导致将许多新基因转移到普通小麦中,从而赋予许多性状改善的能力。这项工作导致在中国,美国和许多其他国家发布了改良的品种。改善D基因组的每种方法各有利弊。例如,合成六倍体的生产可以掺入来自杜鹃花和杜鹃花的有用种质。 tauschii,从而增强了A,B和D基因组;另一方面,直接杂交可快速恢复轮回亲本的A和B基因组,并避免掺入对脱粒性,杂种坏死,春化反应,研磨和烘烤质量有不利影响的基因以及其他性状,当将T. turgidum用作亲本时通常会转移这些性状。方法的选择将部分取决于正在开发的小麦类型和目标环境。但是,特别需要进一步利用迄今尚未充分利用的直接杂交方法。

著录项

  • 来源
    《作物学报(英文版)》 |2017年第5期|355-362|共8页
  • 作者单位

    Institute of Crop Germplasm and Biotechnology, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, Jiangsu, China;

    Institute of Crop Germplasm and Biotechnology, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, Jiangsu, China;

    Institute of Crop Germplasm and Biotechnology, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, Jiangsu, China;

    Institute of Crop Germplasm and Biotechnology, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, Jiangsu, China;

    Institute of Crop Germplasm and Biotechnology, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, Jiangsu, China;

    Institute of Crop Germplasm and Biotechnology, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, Jiangsu, China;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
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