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首页> 外文期刊>Environmental microbiology >Major cereal crops benefit from biological nitrogen fixation when inoculated with the nitrogen-fixing bacterium Pseudomonas protegens Pf-5 X940
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Major cereal crops benefit from biological nitrogen fixation when inoculated with the nitrogen-fixing bacterium Pseudomonas protegens Pf-5 X940

机译:接种固氮细菌Pseudomonas protegens Pf-5 X940后,主要谷物作物将从生物固氮中受益

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A main goal of biological nitrogen fixation research has been to expand the nitrogen-fixing ability to major cereal crops. In this work, we demonstrate the use of the efficient nitrogen-fixing rhizobacterium Pseudomonas protegens Pf-5 X940 as a chassis to engineer the transfer of nitrogen fixed by BNF to maize and wheat under non-gnotobiotic conditions. Inoculation of maize and wheat with Pf-5 X940 largely improved nitrogen content and biomass accumulation in both vegetative and reproductive tissues, and this beneficial effect was positively associated with high nitrogen fixation rates in roots. N-15 isotope dilution analysis showed that maize and wheat plants obtained substantial amounts of fixed nitrogen from the atmosphere. Pf-5 X940-GFP-tagged cells were always reisolated from the maize and wheat root surface but never from the inner root tissues. Confocal laser scanning microscopy confirmed root surface colonization of Pf-5 X940-GFP in wheat plants, and microcolonies were mostly visualized at the junctions between epidermal root cells. Genetic analysis using biofilm formation-related Pseudomonas mutants confirmed the relevance of bacterial root adhesion in the increase in nitrogen content, biomass accumulation and nitrogen fixation rates in wheat roots. To our knowledge, this is the first report of robust BNF in major cereal crops.
机译:生物固氮研究的主要目标是将固氮能力扩展至主要谷物作物。在这项工作中,我们证明了使用非固氮条件下高效固氮根瘤菌假单胞菌Pf-5 X940作为底盘来工程化BNF固定的氮向玉米和小麦的转移。用Pf-5 X940接种玉米和小麦可大大改善营养和生殖组织中的氮含量和生物量积累,而这种有益效果与根部的高固氮率正相关。 N-15同位素稀释分析表明,玉米和小麦植物从大气中获得了大量固定氮。 Pf-5 X940-GFP标记的细胞总是从玉米和小麦的根表面重新分离,而从未从内部的根组织中分离出来。共聚焦激光扫描显微镜证实了小麦植株中Pf-5 X940-GFP的根表面定殖,并且在表皮根细胞之间的交界处大多数可见小菌落。使用与生物膜形成相关的假单胞菌突变体的遗传分析证实了细菌根系粘附与小麦根系中氮含量,生物量积累和固氮率增加的相关性。据我们所知,这是主要谷物作物中强劲的BNF的首次报道。

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