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Photomorphogenesis in the model fern Ceratopteris richardii.

机译:模型蕨Ceratopteris richardii的光形态发生。

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摘要

Light is one of the major environmental signals that influence plant growth and development. Plants have evolved a sophisticated system of three major classes of photoreceptors---the red/far-red light-absorbing phytochromes, the blue/UV-A light-absorbing cryptochromes and phototropins, and the UV-B light receptors---to monitor light and regulate plant physiology and morphology.; Although the roles of light in regulating many physiological processes in higher plants have been intensively studied, comparatively little information exists about the role of light on early development such as gametophyte development and embryogenesis. Ceratopteris richardii, an increasingly popular fern model, offers unique opportunities for developmental, physiological, genetic, and molecular studies of plant photomorphogenesis.; Information is lacking about the effects of phytochrome over prolonged periods and in more developed mature gametophytes. Allowing spores to germinate and develop under different controlled light conditions has yielded more information about how phytochrome acts on cell division, expansion, morphogenesis, and plastid development of maturing gametophytes and young sporophytes. These characterizations lead to demonstrate that phytochrome and blue light sensory photoreceptors play a major role in regulating germination, the rate and direction of cell division, cell expansion, chlorophyll accumulation, archegonia development and sex determination, and early sporophyte development in Ceratopteris . By comparison with other plant responses to supplementary far-red light or to end-of-day far-red light regimes, Ceratopteris responded not only differently but in a manner opposite that of angiosperms, which indicates different mechanisms of phytochrome-regulated morphogenesis.; Until recently, very little was known about the mechanisms of phytochrome signaling in lower plants. To elucidate the signal transduction mechanisms of different phytochromes, it is essential to know the sites of their action within the cell. Furthermore, the molecular biology of Ceratopteris is largely unexplored. The addition of transgenic and pharmacological analysis techniques to Ceratopteris research would improve the range of possible experiments available.; Studying AtPhyB and CrPhy1 translocation behavior in Ceratopteris has proven suggestive for understanding evolutionary conservation of behavior between higher plant and fern phytochromes. The slow kinetics of AtPhyB:GFP translocation and lack of CrPhy1:GFP nucleocytoplasmic repartitioning in Ceratopteris cells, and their distinct localization patterns, suggest that different mechanisms or signal transduction components may be active in fern and higher plant phytochrome action.
机译:光是影响植物生长发育的主要环境信号之一。植物已经进化出一个复杂的系统,该系统包含三大类感光器-吸收红/远红光的植物色素,吸收蓝/ UV-A的隐色色素和光蛋白以及紫外线-B的光感受器。监测光照并调节植物的生理和形态。尽管已经深入研究了光在调节高等植物的许多生理过程中的作用,但是关于光在诸如配子体发育和胚发生等早期发育中的作用的信息很少。 Ceratopteris richardii,一种越来越流行的蕨类模型,为植物光形态发生的发育,生理,遗传和分子研究提供了独特的机会。缺乏关于植物色素在较长时期内以及在更发达的成熟配子体中的影响的信息。允许孢子在不同的受控光照条件下发芽和发育已经获得了更多有关植物色素如何作用于成熟配子体和幼子孢子体的细胞分裂,扩增,形态发生和质体发育的信息。这些特征表明,植物色素和蓝光感官感光细胞在调节翅目昆虫的发芽,细胞分裂的速率和方向,细胞膨胀,叶绿素积累,古菌发育和性别确定以及早期孢子体发育中起主要作用。通过与其他植物对补充远红光或对一天结束时的远红光的反应比较,鳞翅目不仅反应不同,而且被子植物的反应相反,这表明植物色素调节形态发生的机制不同。直到最近,对低等植物中植物色素信号传导机制的了解还很少。为了阐明不同植物色素的信号转导机制,必须了解其在细胞内的作用位点。此外,盲翅目的分子生物学在很大程度上还没有被探索。在翅足类动物研究中增加转基因和药理分析技术将扩大可用实验的范围。研究了对翅足类动物AtPhyB和CrPhy1易位行为的研究,对于理解高等植物和蕨类植物植物色素之间行为的进化保守性具有暗示意义。 AtPhyB:GFP易位的缓慢动力学和ceratopteris细胞中缺乏CrPhy1:GFP核质重分配,以及它们独特的定位模式,表明不同的机制或信号转导成分可能在蕨类植物和更高的植物植物色素作用中起作用。

著录项

  • 作者

    Mohamed, Abeer.;

  • 作者单位

    City University of New York.;

  • 授予单位 City University of New York.;
  • 学科 Biology Molecular.; Biology Plant Physiology.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 181 p.
  • 总页数 181
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子遗传学;植物学;
  • 关键词

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