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Molecular Breeding Using a Major QTL for Fusatiunm Head Blight Resistance in Wheat

机译:用于使用主要QTL的分子育种对小麦的福萨提姆头枯萎病

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The difficulties of breeding for Fusarium head blight (caused by Fusarium graminearum Schwabe [teieomorph: Gib-berella zeae]) resistance, a quantitatively inherited fungal disease, caused us to initiate a marker-assisted selection (MAS) approach to accelerate our gains from selection. Although MAS for simply inherited traits has become commonplace in many plant breeding programs, there are few examples of its application with quantitatively inherited traits. Several barriers to MAS for a quantitativetrait locus (QTL) must be addressed before it can be integrated into a breeding program, including (i) its efficiency or gain compared to phenotypic selection; (ii) the usefulness of markers in breeding-relevant populations; and (iii) the cost, throughput, and expertise required. We identified a major QTL, Fhb1, for Fusarium head blight resistance in wheat (Trit/cum aestiVum L.) and validated its effect in an additional mapping population and near-isogenic lines developed from segregating lines in ourbreeding program. The effect of this QTL was large and conSistent enough to justify complementing our extensive phenotypic screening efforts for this disease with MAS for this major QTL. Fhb1 is located in a highly polymorphic region, and we developed highly diagnostic markers while fine mapping this QTL. The establishment of the USDA-ARS Regional iSmall Grains Genotyping Centers has dramatically increased our capabilities to apply MAS by providing access to high-throughput DNA extraction and genotypingequipment. Because a limited number of individuals can be subjected to MAS, we use a process of retrospective breeding to identify those populations that are most likely to produce cultivar candidates. More efficient DNA extraction technologies and marker platforms will allow us to fully implement MAS in breeding programs.
机译:育种小麦赤霉病的困难(对镰刀菌施瓦布[teieomorph:镦berella赤霉病])电阻,数量遗传真菌病,使我们发起一个标记辅助选择(MAS)的方法来加快我们从选择收益。虽然MAS的只是遗传性状已成为许多植物育种计划司空见惯,还有与定量遗传性状及其应用的几个例子。前它可以被集成到一个繁殖计划,包括:(i)它的效率或增益相比表型选择几个障碍MAS用于quantitativetrait基因座(QTL)必须加以处理; (ⅱ)标记在育种相关群体的有用性;及(iii)所需的成本,吞吐量和专业知识。我们确定了主效QTL,Fhb1,在小麦赤霉病抗性(三叔/暨小麦L.),并验证其在额外的作图群体,并从分离的ourbreeding计划路线发展近等基因系的效果。该QTL的影响是较大的,一致的,足以证明我们补充大量的表型筛选努力,这种疾病与MAS这个专业QTL。 Fhb1坐落在一个高度多态性区域,因此,我们开发高度诊断标志物,而精细定位这个QTL。美国农业部ARS区域iSmall谷物基因分型中心的成立,极大地提高了我们的能力,通过提供高通量DNA提取和genotypingequipment应用MAS。因为个人的有限数量的进行MAS,我们采用回顾性繁殖的过程,以确定那些最有可能产生的候选品种群。更高效的DNA提取技术和分子标记平台将使我们能够在育种计划全面落实MAS。

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