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Molecular genetic analyses of TTG1-dependent cell fate pathways identifies a combinatorial Myb/bHLH transcription factor network in Arabidopsis.

机译:TTG1依赖性细胞命运途径的分子遗传学分析确定拟南芥中的组合Myb / bHLH转录因子网络。

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摘要

The discovery of the Arabidopsis ttg1 mutant almost three decades ago provided a unique opportunity for the study of how several cell fates and organ identity pathways are co-regulated. Besides showing a lack of flavonoid based pigments, the pleiotropic ttg1 mutant is also deficient for the development of several epidermal characters including plant hair cells (trichomes), the non-hair cells of the root and the mucilage-secreting cells of the seed coat epidermis. Ectopic expression of the maize R bHLH transcriptional regulator of the flavonoid pigment pathway could completely suppress all the ttg1 mutant phenotypes, providing the first clue to the nature of the control mechanisms governing TTG1-dependent traits. Because it was established that a bHLH and a Myb protein are required for the regulation of anthocyanin pigment production in several plant species and an Arabidopsis Myb gene was necessary for trichome initiation, the existence of bHLH and Myb proteins that would regulate all the TTG1-dependent developmental pathways was hypothesized.;This study works towards the elucidation of the transcriptional control mechanisms that regulate the TTG1-dependent developmental pathways. The identification and characterization of a key regulator, EGL3, uncovered the redundant nature of bHLH proteins operating under the TTG1 regulatory umbrella. As a result, bHLH regulators were assigned to all TTG1-dependent epidermal cell fate pathways and new roles for previously identified bHLH proteins were revealed. Roles suggested in the literature for Arabidopsis Myb factors suspected of regulating the flavonoid pigment pathway were at odds with findings from other plant models. Analysis of Myb loss-of-function RNAi lines and TTG1:GR and GL3:GR fusion lines presented here provides a clarified understanding of the regulation of anthocyanin biosynthesis by the Myb/bHLH/WDrepeat complex in Arabidopsis. Missing from the combinatorial complex model is the Myb component controlling the differentiation of the seed coat epidermis. Work presented here characterizes Myb5 as the primary Myb regulator of this differentiation pathway and defines a new role for TT2 as partially redundant with Myb5 for testa epidermis development. Myb5 also plays a minor role in trichome development and PA biosynthesis. Thus pleiotropy among the TTG1-dependent Myb regulators previously unobserved is first noted here. A more complete Myb/bHLH combinatorial transcription factor network model for the regulation of the TTG1-dependent pathways is proposed based on the results of work presented in this dissertation.
机译:大约三十年前,拟南芥ttg1突变体的发现为研究如何共同调控几种细胞命运和器官同一性途径提供了独特的机会。除了缺乏基于类黄酮的色素外,多效性ttg1突变体还不足以发展多种表皮特性,包括植物毛细胞(毛状体),根的非毛细胞和种皮表皮的黏液分泌细胞。 。类黄酮色素途径的玉米R bHLH转录调节子的异位表达可以完全抑制所有ttg1突变表型,为控制TTG1依赖性状的控制机制的性质提供了第一个线索。因为已经确定bHLH和Myb蛋白是调节几种植物中花色苷色素生成所必需的,而拟南芥Myb基因对于毛状体萌生是必需的,所以存在bHLH和Myb蛋白将调节所有TTG1依赖性假设存在发育途径。本研究旨在阐明调节TTG1依赖性发育途径的转录控制机制。关键调节剂EGL3的鉴定和表征揭示了在TTG1调节伞下运行的bHLH蛋白的冗余性质。结果,将bHLH调节剂分配给所有TTG1依赖性表皮细胞命运途径,并揭示了先前鉴定的bHLH蛋白的新作用。拟南芥的文献中建议的作用被怀疑调节类黄酮色素途径的Myb因子与其他植物模型的发现不一致。对此处介绍的Myb功能丧失的RNAi系以及TTG1:GR和GL3:GR融合系的分析提供了对拟南芥中Myb / bHLH / WDrepeat复合物对花色苷生物合成的调控的清晰理解。组合复杂模型中缺少的是Myb组件,它控制种皮表皮的分化。此处介绍的工作将Myb5表征为该分化途径的主要Myb调节剂,并定义了TT2的新角色,与Myb5在睾丸表皮发育中部分冗余。 Myb5在毛状体发育和PA生物合成中也起着次要作用。因此,在这里首先注意到以前未观察到的TTG1依赖性Myb调节剂之间的多效性。基于本文的工作结果,提出了一个更完整的Myb / bHLH组合转录因子网络模型,用于调节TTG1依赖性途径。

著录项

  • 作者

    Gonzalez, Antonio, III.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Biology Botany.;Biology Plant Physiology.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:31

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