Department of Biotechnology and Environmental Protection, Estación Experimental del Zaidín, Consejo Superior de Investigaciones Científicas, Granada, Spain.
Microb Biotechnol. 2023 Aug;16(8):1671-1689. doi: 10.1111/1751-7915.14296. Epub 2023 Jun 22.
Indole-3-acetic acid (IAA) is emerging as a key intra- and inter-kingdom signal molecule that modulates a wide range of processes of importance during plant-microorganism interaction. However, the mechanisms by which IAA carries out its functions in bacteria as well as the regulatory processes by which bacteria modulate auxin production are largely unknown. Here, we found that IAA synthesis deficiency results in important global transcriptional changes in the broad-range antibiotic-producing rhizobacterium Serratia plymuthica A153. Most pronounced transcriptional changes were observed in various gene clusters for aromatic acid metabolism, including auxin catabolism. To delve into the corresponding molecular mechanisms, different regulatory proteins were biochemically characterized. Among them, a TyrR orthologue was essential for IAA production through the activation of the ipdc gene encoding a key enzyme for IAA biosynthesis. We showed that TyrR specifically recognizes different aromatic amino acids which, in turn, alters the interactions of TyrR with the ipdc promoter. Screening of mutants defective in various transcriptional and post-transcriptional regulators allowed the identification of additional regulators of IAA production, including PigP and quorum sensing-related genes. Advancing our knowledge on the mechanisms that control the IAA biosynthesis in beneficial phytobacteria is of biotechnological interest for improving agricultural productivity and sustainable agricultural development.
吲哚-3-乙酸(IAA)作为一种关键的细胞内和细胞间信号分子,在植物-微生物相互作用过程中调节着广泛的重要过程。然而,IAA 在细菌中发挥其功能的机制以及细菌调节生长素产生的调节过程在很大程度上是未知的。在这里,我们发现,广谱抗生素产生菌粘质沙雷氏菌 A153 的 IAA 合成缺陷导致了重要的全局转录变化。在各种芳香酸代谢基因簇中,包括生长素分解代谢,观察到最明显的转录变化。为了深入研究相应的分子机制,我们对不同的调节蛋白进行了生化表征。其中,TyrR 同源物通过激活编码 IAA 生物合成关键酶的 ipdc 基因对于 IAA 产生是必需的。我们表明,TyrR 特异性识别不同的芳香族氨基酸,这反过来又改变了 TyrR 与 ipdc 启动子的相互作用。对各种转录和转录后调节因子突变体的筛选,鉴定了生长素产生的其他调节因子,包括 PigP 和群体感应相关基因。深入了解控制有益植物细菌中 IAA 生物合成的机制对于提高农业生产力和可持续农业发展具有生物技术意义。