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Indole-3-acetic acid production via the indole-3-pyruvate pathway by plant growth promoter Rhizobium tropici CIAT 899 is strongly inhibited by ammonium

机译:通过植物生长促进剂Rocizium Ciar 899通过吲哚-3-丙酮酸途径产生的吲哚-3-乙酸产生899强烈抑制铵

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Like many rhizobia, Rhizobium tropici produces indole-3-acetic acid (IAA), an important signal molecule required for root hair infection in rhizobia-legume symbioses. However, the IAA biosynthesis pathway and its regulation by R. tropici are still poorly understood. In this study, IAA synthesis and the effects of mineral N in IAA production by R. tropici CIAT 899 were verified by ultraperformance liquid chromatography-mass spectrometry (UPLC-MS). Furthermore, expression of genes related to IAA biosynthesis and metabolism were evaluated by RT-qPCR. Results indicated that IAA production by CIAT 899 was 12 times lower in the presence of NH4+. Moreover, it was found that indole-3-pyruvate (IPyA) is the major IAA biosynthesis intermediate. Genes y4wE, lao and iorA were identified by analysis of R. tropici genome in silico and were upregulated by tryptophan, indicating a possible role of these genes in IAA biosynthesis by CIAT 899. In conclusion, we show that IPyA is the major pathway for IAA biosynthesis in CIAT 899 and that its production is strongly inhibited by NH4+. Although present results arose from in vitro experiments, they provide new insight into the role of nitrogen in early events related to legume nodulation. (C) 2016 Institut Pasteur. Published by Elsevier Masson SAS. All rights reserved.
机译:与许多根瘤菌一样,Rhizobium Tropici生产吲哚-3-乙酸(IAA),是根茎豆科植物中的根发感染所需的重要信号分子。然而,IAA生物合成途径及其由R.Tropici的调节仍然很差。在本研究中,通过超细液相色谱 - 质谱(UPLC-MS)验证了R.Tropici Ciar 899的IAA合成和矿物质的影响。此外,通过RT-QPCR评估与IAA生物合成和代谢相关的基因的表达。结果表明,在NH 4 +的情况下,CIAT 899的IAA产生的产量为12倍。此外,发现吲哚-3-丙酮酸(IPya)是IAA的主要IAA生物合成中间体。通过分析硅的R.ropici基因组来鉴定基因Y4We,老挝和Iora,并通过色氨酸上调,表明这些基因在CIAT 899中的可能在IAA生物合成中的作用。总之,我们表明IPYA是IAA的主要途径CIAR 899中的生物合成,其生产受到NH4 +的强烈抑制。虽然目前的结果来自体外实验,但它们对氮在与豆科纺织瘤相关的早期事件中的作用提供了新的洞察力。 (c)2016 Institut Pasteur。由Elsevier Masson SA出版。版权所有。

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