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Arabidopsis thaliana auxotrophs reveal a tryptophan-independent biosynthetic pathway for indole-3-acetic acid.

机译:拟南芥营养缺陷型揭示了吲哚-3-乙酸的色氨酸非依赖性生物合成途径。

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摘要

We used tryptophan auxotrophs of the dicot Arabidopsis thaliana (wall cress) to determine whether tryptophan has the capacity to serve as a precursor to the auxin, indole-3-acetic acid (IAA). Quantitative gas chromatography-selected ion monitoring-mass spectrometry (GC-SIM-MS) revealed that the trp2-1 mutant, which is defective in the conversion of indole to tryptophan, accumulated amide- and ester-linked IAA at levels 38-fold and 19-fold, respectively, above those of the wild type. Tryptophan and free IAA were isolated from the trp2-1 mutant grown in the presence of [15N]anthranilate and [2H5]tryptophan, and the relative 15N and 2H5 enrichments of tryptophan and IAA were determined via GC-SIM-MS. The 15N enrichment of tryptophan, 13% +/- 4%, was less than the 15N enrichment of the IAA pool, 39% +/- 4%; therefore, IAA biosynthesis occurs via a tryptophan-independent pathway. The amount of 2H5 incorporated by the plant into IAA from tryptophan (9% +/- 4%) was low and only slightly above the level of spontaneous, nonenzymatic conversion of [2H5]tryptophan to [2H5]IAA. These results show that the dicot Arabidopsis is similar to the monocot Zea mays in that the major route of IAA biosynthesis does not occur through tryptophan.
机译:我们使用了双子叶植物拟南芥的色氨酸营养缺陷型(墙水芹)来确定色氨酸是否具有作为生长素前体吲哚-3-乙酸(IAA)的能力。气相色谱选择离子监测质谱(GC-SIM-MS)定量分析显示,trp2-1突变体在吲哚向色氨酸的转化中有缺陷,其酰胺和酯连接的IAA积累了38倍,分别比野生型高19倍。从在[15N]邻氨基苯甲酸和[2H5]色氨酸存在下生长的trp2-1突变体中分离出色氨酸和游离IAA,并通过GC-SIM-MS测定了色氨酸和IAA的相对15N和2H5富集度。色氨酸的15N富集13%+/- 4%,小于IAA库的15N富集39%+/- 4%;因此,IAA生物合成通过色氨酸非依赖性途径发生。植物从色氨酸掺入IAA的2H5的量很低(9%+/- 4%),仅略高于[2H5]色氨酸向[2H5] IAA的自然,非酶促转化的水平。这些结果表明,双子叶植物拟南芥与玉米单子叶植物相似,因为IAA生物合成的主要途径不会通过色氨酸发生。

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