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首页> 外文期刊>Journal of Plant Growth Regulation >An Inhibitor of Tryptophan-Dependent Biosynthesis of Indole-3-Acetic Acid Alters Seedling Development in Arabidopsis
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An Inhibitor of Tryptophan-Dependent Biosynthesis of Indole-3-Acetic Acid Alters Seedling Development in Arabidopsis

机译:吲哚-3-乙酸的色氨酸依赖性生物合成抑制剂改变拟南芥的幼苗发育。

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摘要

Although polar transport and the TIR1-dependent signaling pathway of the plant hormone auxin/indole-3-acetic acid (IAA) are well characterized, understanding of the biosynthetic pathway(s) leading to the production of IAA is still limited. Genetic dissection of IAA biosynthetic pathways has been complicated by the metabolic redundancy caused by the apparent existence of several parallel biosynthetic routes leading to IAA production. Valuable complementary tools for genetic as well as biochemical analysis of auxin biosynthesis would be molecular inhibitors capable of acting in vivo on specific or general components of the pathway(s), which unfortunately have been lacking. Several indole derivatives have been previously identified to inhibit tryptophan-dependent IAA biosynthesis in an in vitro system from maize endosperm. We examined the effect of one of them, 6-fluoroindole, on seedling development of Arabidopsis thaliana and tested its ability to inhibit IAA biosynthesis in feeding experiments in vivo. We demonstrated a correlation of severe developmental defects or growth retardation caused by 6-fluoroindole with significant downregulation of de novo synthesized IAA levels, derived from the stable isotope-labeled tryptophan pool, upon treatment. Hence, 6-fluoroindole shows important features of an inhibitor of tryptophan-dependent IAA biosynthesis both in vitro and in vivo and thus may find use as a promising molecular tool for the identification of novel components of the auxin biosynthetic pathway(s).
机译:尽管已经很好地表征了植物激素生长素/吲哚-3-乙酸(IAA)的极性转运和TIR1依赖性信号传导途径,但对导致IAA产生的生物合成途径的理解仍然有限。 IAA生物合成途径的遗传解剖已经复杂化,因为代谢冗余是由导致IAA生产的几种平行生物合成途径的明显存在引起的。用于生长素生物合成的遗传以及生化分析的有价值的补充工具将是能够在体内对途径的特定或一般成分起作用的分子抑制剂,遗憾的是,这种抑制剂一直缺乏。先前已经鉴定了几种吲哚衍生物在体外系统中抑制玉米胚乳的色氨酸依赖性IAA生物合成。我们检查了其中一种(6-氟吲哚)对拟南芥幼苗发育的影响,并在体内饲养实验中测试了其抑制IAA生物合成的能力。我们证明了在治疗后,由6-氟吲哚引起的严重发育缺陷或生长迟缓与从头合成的稳定的同位素标记的色氨酸池中的从头合成的IAA水平显着下调之间存在相关性。因此,6-氟吲哚在体外和体内均显示出色氨酸依赖性IAA生物合成抑制剂的重要特征,因此可以用作鉴定生长素生物合成途径新成分的有前途的分子工具。

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