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The molecular and evolutionary outcomes of transgenerational plasticity in Mimulus guttatus.

机译:Mi鱼跨代可塑性的分子和进化结果。

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摘要

Derived from the same family line, in the same greenhouse, and self-pollinated in an identical fashion, what effect could hole-puncher induced leaf damage have on the offspring of these individuals? Across three independent experiments during my graduate career I have demonstrated the diverse array of lingering epigenetic, gene expression, phenotypic, and fitness effects that simple mechanical wounding has on the following generation. While focused initially on the epigenetic and gene expression basis of increased trichome density in the offspring of damaged plants, it became clear early on that a host of other pathways were also differentially regulated. In the end I identified hundreds of differentially expressed genes and thousands of genomic regions where DNA methylation varied depending on parental wounding. Along with identifying numerous differentially regulated hormone synthesis genes and secondary metabolism pathways, I twice confirmed the differential regulation of the previously identified transgenerationally plastic Mimulus guttatus MYB Mixta-like 8 (MgMYBML8 ). A brief foray into molecular epigenetics and gene expression modeling provided our lab with the necessary information to utilize DNA methylation data and test hypotheses regarding the role of DNA methylation on transgenerational inheritance. Finally, through the use of a two-generation common garden experiment I demonstrated that transgenerational effects alter the development and resistance of plants in nature. While much remains to be deciphered regarding the molecular underpinnings, evolutionary role, and ecological relevance of transgenerational inheritance, the work presented herein provides a relatively comprehensive look at the complexity underlying an extremely simplified case of transgenerational inheritance.
机译:来自相同的家庭系,相同的温室,并且以相同的方式自花授粉,打孔器诱导的叶片损伤会对这些个体的后代产生什么影响?在我毕业期间的三个独立实验中,我证明了简单的机械创伤对后代产生的各种持久的表观遗传,基因表达,表型和适应性影响。虽然最初着眼于受损植物的后代中毛状体密度增加的表观遗传学和基因表达基础,但很早就很清楚,许多其他途径也受到差异调节。最后,我确定了数百个差异表达的基因和数千个基因组区域,这些区域的DNA甲基化程度取决于父母的受伤情况。除了确定众多差异调节的激素合成基因和次级代谢途径外,我两次确认了先前鉴定的跨代可塑性胶质鼠胶MYB Mixta-like 8(MgMYBML8)的差异调节。对分子表观遗传学和基因表达建模的简要介绍为我们的实验室提供了必要的信息,以利用DNA甲基化数据并测试有关DNA甲基化在跨代遗传中的作用的假设。最后,通过使用两代普通花园实验,我证明了跨代效应改变了自然界植物的发育和抗性。尽管关于跨代遗传的分子基础,进化作用和生态相关性还有很多要解释的地方,但本文介绍的工作对跨代遗传极其简化的情况下的复杂性提供了相对全面的了解。

著录项

  • 作者

    Colicchio, Jack.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Evolution development.;Genetics.;Ecology.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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