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Diversity of eukaryotes and their genomes.

机译:真核生物及其基因组的多样性。

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摘要

My dissertation addresses two aspects of eukaryotic evolution, (1) the organization of eukaryotic diversity and (2) genomic variation in Foraminifera. The bulk of eukaryotic diversity is microbial with plants and animals representing just two of the estimated 75 lineages of eukaryotes. Among these microbial lineages, there are many examples of dynamic genome processes. Elucidating the origin and evolution of genome features requires a robust phylogenetic framework for eukaryotes. Taxon-rich molecular analyses provide a mechanism to test hypothesized evolutionary relationships and enable placement of diverse taxa on the tree of life. These analyses result in a well-resolved eukaryotic tree of life. Relaxed molecular clock analyses of this taxon-rich dataset place the origin on eukaryotes in the Paleoproterozoic, and suggest that all of the major lineages of eukaryotes diverged before the Neoproterozoic. This robust scaffold of the tree of eukaryotes is also used to elucidate common themes in genome evolution across eukaryotes. Mapping dynamic genome features onto this tree demonstrates that they are widespread in eukaryotes, and suggests that a common mechanism underlies genome plasticity. Foraminifera, a diverse lineage of marine amoebae, provide a good model system for investigating genome dynamics because they amplify portions of their genome and go through ploidy cycles during their life cycle. Assessment of nuclear dynamics in one species of Foraminifera, Allogromia laticollaris strain CSH, reveals that genome content varies according the life cycle stage and food source, which may differentially impact organismal fitness. The inclusion of diverse microbial eukaryotes enables better resolution of eukaryotic relationships and improves our understanding the dynamic nature of eukaryotic genomes.
机译:我的论文主要涉及真核生物进化的两个方面:(1)真核生物多样性的组织;(2)有孔虫的基因组变异。大部分的真核生物是微生物,动植物仅代表估计的75种真核生物中的两个。在这些微生物谱系中,有许多动态基因组过程的例子。阐明基因组特征的起源和进化需要真核生物的稳健的系统发育框架。富含分类单元的分子分析提供了一种机制,可以测试假设的进化关系,并可以将各种分类单元放置在生命树上。这些分析产生了一个良好解析的真核生物生命树。对此生物分类丰富的数据集进行轻松的分子钟分析可将其起源定位于古元古代的真核生物上,并表明所有的真核生物主要谱系在新元古代之前就已经发散了。真核生物树的这种坚固的支架还用于阐明跨真核生物的基因组进化中的常见主题。将动态基因组特征映射到这棵树上表明它们在真核生物中广泛存在,并表明基因组可塑性的基础是一个共同的机制。有孔虫是海洋变形虫的多样化谱系,它为研究基因组动力学提供了一个很好的模型系统,因为它们放大了部分基因组并在生命周期中经历了倍性周期。对有孔虫Allogromia laticollaris菌株CSH的一种物种的核动力学评估表明,基因组含量随生命周期阶段和食物来源的不同而变化,这可能对有机适应性产生不同影响。包含各种微生物真核生物可以更好地解析真核生物关系,并增进我们对真核生物基因组动态性质的了解。

著录项

  • 作者

    Wegener Parfrey, Laura E.;

  • 作者单位

    University of Massachusetts Amherst.;

  • 授予单位 University of Massachusetts Amherst.;
  • 学科 Biology Microbiology.;Biology Systematic.;Biology Evolution and Development.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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