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Environmental analyses and candidate gene expression of ms9 male-sterility locus and computational identification of candidate genes for male-sterility loci in soybean.

机译:ms9雄性不育基因座的环境分析和候选基因表达以及大豆雄性不育基因座候选基因的计算鉴定。

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摘要

Rapid growth rate of the human population is driving the increased demand for cultivated soybean [Glycine max (L.) Merrill], a major source of protein and oil in global food, feed, and biofuel production. Increasing yield at a pace faster than traditional breeding methods presently achieve has become a need and future commitment. In soybean, a self-pollinated crop, a possibility to increase yield may result from the development of hybrid cultivars. Researchers have been interested in floral development and pollination, as these factors have a direct impact on maintaining and enhancing crop yields. Soybean breeders also need to understand phenotypic differences in male-sterility loci that could be manipulated for use in hybrid seed production. Among them, the ms9 locus is particularly interesting because it has high insect pollinator attraction, which facilitates its potential use in hybrid seed production. Recent release of multiple genomic tools for soybean, new bioinformatic approaches can be used to identify candidate male-sterility genes and compare their function. This dissertation is organized in chapters dealing with different aspects related to the use of male sterility.;In Chapter 2, we determined that ms9 is a thermosensitive male-sterility locus, influenced by day temperature. Bioinformatic analyses in Chapter 3 identified four homeologs of male-sterility genes from Arabidopsis and rice as candidate genes for ms3, msp, and ms2 loci. A total of 23 candidate genes for the ms9, msp, ms3, and ms2 loci were identified. In Chapter 4, utilizing a similar bioinformatic approach targeting the ms9 locus, we prioritized a list of nine candidate genes for analyses using quantitative real-time polymerase chain reaction (qRT-PCR). Two genes, a small nuclear ribonucleoprotein (snRNP, Glyma03g30880) and an auxin-indole-3-acetic acid (AUX/IAA) responsive gene (Glyma03g31530), had increased expression in fertile and in male-sterile floral phenotypes as day temperature increased from 30 to 35 °C.;Our results will facilitate protocol development to utilize ms9 as the source of male sterility for soybean breeding and hybrid seed production programs. The bioinformatic approaches used, identified for the first time, candidate male-sterility genes in soybean, which allow future elucidation of functional aspects of these candidate male-sterility genes. Finally, polymorphic markers will be designed once the male-sterility gene is confirmed. Marker assisted selection (MAS) programs can be used to identify male-sterile, female-fertile plants prior to flowering. This approach would ultimately improve efficiency of identifying plants for use as female (pod) parent in hybrid seed production.
机译:人口的快速增长推动了对栽培大豆[Glycine max(L.)Merrill]的需求的增加,大豆是全球食品,饲料和生物燃料生产中蛋白质和石油的主要来源。以比目前传统育种方法更快的速度增加产量已成为一种需要和未来的承诺。在大豆(一种自花授粉作物)中,杂交品种的发展可能会增加产量。研究人员对花卉的发育和授粉很感兴趣,因为这些因素对维持和提高农作物的产量有着直接的影响。大豆育种者还需要了解雄性不育基因座的表型差异,可以将其用于杂种种子生产。其中,ms9基因座特别有趣,因为它具有很高的昆虫传粉媒介吸引力,这有助于其在杂交种子生产中的潜在用途。最近发布了多种大豆基因组学工具,新的生物信息学方法可用于鉴定候选雄性不育基因并比较其功能。本论文分为几章,分别涉及与雄性不育利用有关的各个方面。在第二章中,我们确定ms9是受日温度影响的热敏雄性不育位点。第三章中的生物信息学分析确定了来自拟南芥和水稻的雄性不育基因的四个同源物,作为ms3,msp和ms2基因座的候选基因。总共为ms9,msp,ms3和ms2基因座选择了23个候选基因。在第4章中,利用针对ms9基因座的类似生物信息学方法,我们确定了9个候选基因的清单的优先级,以便使用定量实时聚合酶链反应(qRT-PCR)进行分析。随着温度的升高,两个基因,一个小的核糖核蛋白(snRNP,Glyma03g30880)和一个生长素-吲哚-3-乙酸(AUX / IAA)响应基因(Glyma03g31530),在可育和雄性不育花型中表达增加。 30至35°C 。;我们的研究结果将有助于开发协议,以利用ms9作为大豆育种和杂种种子生产计划的雄性不育源。首次使用的生物信息学方法确定了大豆中的候选雄性不育基因,这使得将来可以阐明这些候选雄性不育基因的功能方面。最后,一旦确认雄性不育基因,就将设计多态性标记。标记辅助选择(MAS)程序可用于在开花前鉴定雄性不育,雌性可育植物。这种方法最终将提高鉴定用作杂交种子生产中雌性(荚果)亲本的植物的效率。

著录项

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Agriculture Agronomy.;Agriculture Plant Culture.;Biology Genetics.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 186 p.
  • 总页数 186
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:13

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