首页> 外文学位 >Construction and analysis of a transgenomic cytogenetic sorghum (Sorghum propinquum) BAC FISH map of maize (Zea mays L.) pachytene chromosome 9.
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Construction and analysis of a transgenomic cytogenetic sorghum (Sorghum propinquum) BAC FISH map of maize (Zea mays L.) pachytene chromosome 9.

机译:玉米(Zea mays L.)粗线染色体9号染色体的转基因细胞遗传高粱(Sorghum propinquum)BAC FISH图的构建和分析。

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摘要

Large-scale cytogenetic mapping in maize has been a major challenge primarily due to fact that the maize genome has a low gene density and an abundance of repetitive sequence elements. Using a unique combination of biological and genome resources for maize, sorghum, and oat, we have solved this problem and produced a cytogenetic FISH map of maize pachytenestage chromosome 9 with 32 maize markers. The genetically mapped markers used are distributed along the linkage maps at an average spacing of 5 centiMorgans. Each locus was mapped by means of multicolor direct FISH with a fluorescently labeled probe mix containing a whole chromosome paint, a single sorghum BAC clone, and the centromeric sequence, CentC. A maize-chromosome-addition line of oat was used for bright unambiguous identification of the maize 9 fiber within pachytene chromosome spreads. The locations of the sorghum BAC FISH signals were determined, and each new cytogenetic locus was assigned a centiMcClintock position on the short (9S) or long (9L) arm. Nearly all of the markers appeared in the same order on linkage and cytogenetic maps but at different relative positions on the two. The CentC FISH signal was localized between tda66 (at 9S.03) and cdo17 (at 9L.03). Several regions of genome hyperexpansion on maize chromosome 9 were found by comparative analysis of relative marker spacing in maize and sorghum. This transgenomic cytogenetic FISH map creates anchors between various maps of maize and sorghum integrating genetic markers, BAC fingerprints, and BAC hybridization data. It will provide tools for validating sequenced genomes, a foundation for exploring genomic diversity among related species, and a framework for comparative mapping of other plants with large and complex genomes.
机译:玉米中大规模的细胞遗传学定位一直是一个主要的挑战,这主要是由于玉米基因组的基因密度低且重复序列元素丰富。使用玉米,高粱和燕麦的生物学和基因组资源的独特组合,我们已经解决了这个问题,并绘制了带有32个玉米标记的玉米9号染色体上的细胞遗传FISH图。所使用的遗传图谱标记沿着连锁图以5厘摩的平均间隔分布。通过多色直接FISH用荧光标记的探针混合物对每个基因座进行定位,该探针混合物包含完整的染色体涂料,单个高粱BAC克隆和着丝粒序列CentC。燕麦的玉米染色体加成系用于明亮地识别粗线型染色体传播中的玉米9纤维。确定了高粱BAC FISH信号的位置,并为每个新的细胞遗传基因座在短(9S)或长(9L)臂上分配了centiMcClintock位置。几乎所有标记在连锁图和细胞遗传图上都以相同顺序出现,但在两者上的相对位置不同。 CentC FISH信号位于tda66(9S.03)和cdo17(9L.03)之间。通过对玉米和高粱中相对标记间距的比较分析,发现了玉米第9号染色体上基因组过度扩增的几个区域。该基因组细胞遗传学FISH图谱在玉米和高粱的各种图谱之间创建了锚点,整合了遗传标记,BAC指纹和BAC杂交数据。它将提供验证测序基因组的工具,为探索相关物种之间的基因组多样性提供基础,并为比较具有大型和复杂基因组的其他植物作图提供一个框架。

著录项

  • 作者单位

    The Florida State University.;

  • 授予单位 The Florida State University.;
  • 学科 Biology Botany.Biology Genetics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 117 p.
  • 总页数 117
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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