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Ethylene induced plant stress tolerance by Enterobacter sp. SA187 is mediated by 2‐keto‐4‐methylthiobutyric acid production

机译:乙烯通过肠杆菌对植物的胁迫耐受性。 SA187由2-酮基-4-甲基硫代丁酸生产介导

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摘要

Several plant species require microbial associations for survival under different biotic and abiotic stresses. In this study, we show that Enterobacter sp. SA187, a desert plant endophytic bacterium, enhances yield of the crop plant alfalfa under field conditions as well as growth of the model plant Arabidopsis thaliana in vitro, revealing a high potential of SA187 as a biological solution for improving crop production. Studying the SA187 interaction with Arabidopsis, we uncovered a number of mechanisms related to the beneficial association of SA187 with plants. SA187 colonizes both the surface and inner tissues of Arabidopsis roots and shoots. SA187 induces salt stress tolerance by production of bacterial 2-keto-4-methylthiobutyric acid (KMBA), known to be converted into ethylene. By transcriptomic, genetic and pharmacological analyses, we show that the ethylene signaling pathway, but not plant ethylene production, is required for KMBA-induced plant salt stress tolerance. These results reveal a novel molecular communication process during the beneficial microbe-induced plant stress tolerance.
机译:几种植物需要微生物缔合才能在不同的生物和非生物胁迫下生存。在这项研究中,我们表明肠杆菌。 SA187是一种沙漠植物内生细菌,可在田间条件下提高农作物紫花苜蓿的产量以及模型植物拟南芥的体外生长,显示出SA187作为提高作物产量的生物学解决方案的巨大潜力。通过研究SA187与拟南芥的相互作用,我们发现了许多与SA187与植物有益结合的机制。 SA187定居在拟南芥根和芽的表面和内部组织中。 SA187通过产生已知会转化为乙烯的细菌2-酮-4-甲基硫代丁酸(KMBA)来诱导盐胁迫耐受性。通过转录,遗传和药理学分析,我们表明,KMBA诱导的植物盐胁迫耐受性需要乙烯信号传导途径而非植物乙烯生产。这些结果揭示了有益的微生物诱导的植物胁迫耐受性期间的新型分子通信过程。

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