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Mycorrhizal phosphate uptake pathway in maize: vital for growth and cob development on nutrient poor agricultural and greenhouse soils

机译:玉米中的菌根磷酸盐吸收途径:对于营养不良的农业和温室土壤的生长和穗轴发育至关重要

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摘要

Arbuscular mycorrhizal fungi (AMF) form a mutually beneficial symbiosis with plant roots providing predominantly phosphorus in the form of orthophosphate (Pi) in exchange for plant carbohydrates on low P soils. The goal of this work was to generate molecular-genetic evidence in support of a major impact of the mycorrhizal Pi uptake (MPU) pathway on the productivity of the major crop plant maize under field and controlled conditions. Here we show, that a loss-of-function mutation in the mycorrhiza-specific Pi transporter gene Pht1;6 correlates with a dramatic reduction of above-ground biomass and cob production in agro-ecosystems with low P soils. In parallel mutant pht1;6 plants exhibited an altered fingerprint of chemical elements in shoots dependent on soil P availability. In controlled environments mycorrhiza development was impaired in mutant plants when grown alone. The presence of neighboring mycorrhizal nurse plants enhanced the reduced mycorrhiza formation in pht1;6 roots. Uptake of 33P-labeled orthophosphate via the MPU pathway was strongly impaired in colonized mutant plants. Moreover, repression of the MPU pathway resulted in a redirection of Pi to neighboring plants. In line with previous results, our data highlight the relevance of the MPU pathway in Pi allocation within plant communities and in particular the role of Pht1;6 for the establishment of symbiotic Pi uptake and for maize productivity and nutritional value in low-input agricultural systems. In a first attempt to identify cellular pathways which are affected by Pht1;6 activity, gene expression profiling via RNA-Seq was performed and revealed a set of maize genes involved in cellular signaling which exhibited differential regulation in mycorrhizal pht1;6 and control plants. The RNA data provided support for the hypothesis that fungal supply of Pi and/or Pi transport across Pht1;6 affects cell wall biosynthesis and hormone metabolism in colonized root cells.
机译:丛枝菌根真菌(AMF)与植物根形成一种互惠共生的植物,主要​​以正磷酸盐(Pi)的形式提供磷,以交换低磷土壤上的植物碳水化合物。这项工作的目的是产生分子遗传学证据,以支持菌根Pi吸收(MPU)途径对田间和受控条件下主要农作物玉米的生产力产生重大影响。在这里,我们表明,菌根特有的Pi转运蛋白基因Pht1; 6中的功能丧失突变与低磷土壤农业生态系统中地上生物量和玉米芯产量的显着降低有关。在平行的突变体pht1; 6中,植物的枝条中化学元素的指纹改变,这取决于土壤P的有效性。在受控环境中,单独生长时,突变植物的菌根发育受到损害。邻近的菌根护士植物的存在增强了pht1; 6根中减少的菌根形成。在定植的突变植株中,通过MPU途径摄取 33 P标记的正磷酸盐的能力大大降低。而且,MPU途径的抑制导致Pi重定向到邻近植物。与之前的结果一致,我们的数据强调了MPU途径与植物群落内磷分配的相关性,尤其是Pht1; 6在低投入农业系统中建立共生Pi吸收以及玉米生产力和营养价值方面的作用。在首次尝试确定受Pht1; 6活性影响的细胞途径时,进行了通过RNA-Seq进行基因表达谱分析,并揭示了一组参与细胞信号传导的玉米基因,该基因在菌根pht1; 6和对照植物中表现出不同的调控作用。 RNA数据为以下假设提供了依据:Pi的真菌供应和/或通过Pht1; 6的Pi运输会影响定殖根细胞的细胞壁生物合成和激素代谢。

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