首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Conversion of tryptophan to indole-3-acetic acid by TRYPTOPHAN AMINOTRANSFERASES OF ARABIDOPSIS and YUCCAs in Arabidopsis
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Conversion of tryptophan to indole-3-acetic acid by TRYPTOPHAN AMINOTRANSFERASES OF ARABIDOPSIS and YUCCAs in Arabidopsis

机译:拟南芥中拟南芥的酪氨酸氨基转移酶将色氨酸转化为吲哚-3-乙酸

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摘要

Auxin is an essential hormone, but its biosynthetic routes in plants have not been fully defined. In this paper, we show that the TRYPTOPHAN AMINOTRANSFERASE OF ARABIDOPSIS (TAA) family of amino transferases converts tryptophan to indole-3-pyruvate (IPA) and that the YUCCA (YUC) family of flavin monooxygenases participates in converting IPA to indole-3-acetic acid, the main auxin in plants. Both the YUCs and the TAAs have been shown to play essential roles in auxin biosynthesis, but it has been suggested that they participate in two independent pathways. Here, we show that all of the taa mutant phenotypes, including defects in shade avoidance, root resistance to ethylene and N-1-naphthylphthalamic acid (NPA), are phenocopied by inactivating YUC genes. On the other hand, we show that the taa mutants in several known auxin mutant backgrounds, including pid and npy1, mimic all of the well-characterized developmental defects caused by combining yuc mutants with the auxin mutants. Furthermore, we show that overexpression of YUC1 partially suppresses the shade avoidance defects of taa1 and the sterile phenotypes of the weak but not the strong taa mutants. In addition, we discovered that the auxin overproduction phenotypes of YUC overexpression lines are dependent on active TAA genes. Our genetic data show that YUC and TAA work in the same pathway and that YUC is downstream of TAA. The yuc mutants accumulate IPA, and the taa mutants are partially IPA-deficient, indicating that TAAs are responsible for converting tryptophan to IPA, whereas YUCs play an important role in converting IPA to indole-3-acetic acid.
机译:生长素是必需的激素,但其在植物中的生物合成途径尚未完全确定。在本文中,我们证明了拟南芥的TRYPTOPHAN氨基转移酶(TAA)家族的氨基转移酶将色氨酸转化为吲哚-3-丙酮酸(IPA),YUCCA(YUC)家族的黄素单加氧酶参与将IPA转化为吲哚-3-丙酮。乙酸,植物中的主要生长素。已显示YUC和TAA在植物生长素生物合成中都起着至关重要的作用,但已表明它们参与了两个独立的途径。在这里,我们显示了所有的taa突变表型,包括避光缺陷,对乙烯和N-1-萘基邻苯二甲酸邻苯二甲酸酯(NPA)的根系抗性,都通过失活YUC基因被表型复制。另一方面,我们表明在几个已知的生长素突变体背景中的taa突变体,包括pid和npy1,都模仿了yuc突变体与生长素突变体结合引起的所有特征良好的发育缺陷。此外,我们表明,YUC1的过表达部分抑制了taa1的避荫缺陷和弱而不是强taa突变体的不育表型。另外,我们发现YUC过表达系的生长素过表达表型依赖于活性TAA基因。我们的遗传数据表明YUC和TAA在相同的途径中起作用,并且YUC在 TAA 的下游。 yuc 突变体积累IPA,而 taa 突变体部分缺乏IPA,表明 TAA 负责将色氨酸转化为IPA,而 YUCs 在将IPA转化为吲哚-3-乙酸中起重要作用。

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