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Engineering transkingdom signalling in plants to control gene expression in rhizosphere bacteria

机译:工程化植物中的变态信号以控制根际细菌中的基因表达

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摘要

The root microbiota is critical for agricultural yield, with growth-promoting bacteria able to solubilise phosphate, produce plant growth hormones, antagonise pathogens and fix N2. Plants control the microorganisms in their immediate environment and this is at least in part through direct selection, the immune system, and interactions with other microorganisms. Considering the importance of the root microbiota for crop yields it is attractive to artificially regulate this environment to optimise agricultural productivity. Towards this aim we express a synthetic pathway for the production of the rhizopine scyllo-inosamine in plants. We demonstrate the production of this bacterial derived signal in both Medicago truncatula and barley and show its perception by rhizosphere bacteria, containing bioluminescent and fluorescent biosensors. This study lays the groundwork for synthetic signalling networks between plants and bacteria, allowing the targeted regulation of bacterial gene expression in the rhizosphere for delivery of useful functions to plants.
机译:根微生物群对于农业产量至关重要,其生长促进细菌能够溶解磷酸盐,产生植物生长激素,拮抗病原体并固定N2。植物在其直接环境中控制微生物,这至少部分是通过直接选择,免疫系统以及与其他微生物的相互作用来实现的。考虑到根微生物群对作物产量的重要性,人为地调节这种环境以优化农业生产力是很有吸引力的。为了实现这一目标,我们表达了一种在植物中生产Rhyzopine scyllo-inosamine的合成途径。我们展示了苜蓿和大麦中这种细菌衍生信号的产生,并显示了根际细菌对其的感知,其中包含生物发光和荧光生物传感器。这项研究为植物与细菌之间的合成信号网络奠定了基础,从而可以有针对性地调节根际中细菌基因的表达,从而将有用的功能传递给植物。

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