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首页> 外文期刊>Soil Science and Plant Nutrition >P and N deficiency change the relative abundance and function of rhizosphere microorganisms during cluster root development of white lupin (Lupinus albus L.)
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P and N deficiency change the relative abundance and function of rhizosphere microorganisms during cluster root development of white lupin (Lupinus albus L.)

机译:P和N缺乏症改变了白羽云(Lupinus Albus L.)簇根系发育过程中根际微生物的相对丰富和功能

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We studied microbe-plant interactions of white lupin, a cluster root-forming plant, under low P and N conditions to examine increased nutrient acquisition by plants either by a shift to a more specialized microbial community or changes in microbial enzyme production. White lupin plants were grown in rhizoboxes filled with either P- or N-deficient soil; fertilized soil was used as control. After cultivation of plants in a glasshouse for 41 d, plant growth (shoot and roots) and P and N accumulation in shoots were measured. Microbial functions were analyzed by P- and N-cycling enzymes. The microbial community structure was estimated by fingerprinting (denaturing gradient gel electrophoresis) and sequencing techniques. P deficiency induced the released citrate and acid phosphomonoesterases from cluster roots and stimulated the production of microbe-derived alkaline phosphomonoesterase in the rhizosphere. P deficiency decreased microbial diversity in the cluster root rhizosphere. Increased relative abundance of Burkholderiales in the rhizosphere of P deficient plants might be responsible for the degradation of different organic P fractions such as phytates. N deficiency induced an increase of the number of nodules and P concentration in shoot as well as roots of white lupin. We clarified that high release of citrate from cluster roots might be the preferred mechanisms to meet the P demand of nodulated plants under N deficiency. In addition, the high abundance of Rhizobiales and Rhodospirillales in the rhizosphere of cluster roots showed that the importance of N-fixing microorganisms under N deficiency. The contribution of rhizosphere microorganisms due to similar activities of N-cycling enzymes under the two different N treatments is less important for N nutrition of plants. Further understanding of the regulation of cluster roots under N-deficiency will provide new information on the interactions between P and N nutrition.
机译:我们研究了白色羽扇豆的微生物植物相互作用,在低p和n条件下,通过转移到更专业的微生物群落或微生物酶产生的变化来检查植物的增加的营养获取。白色羽扇豆植物在填充有p-或n缺乏土壤的根茎氧毒;施肥土用作对照。在玻璃盆中培养植物以进行41天,测量植物生长(射击和根)和P和N在芽中的累积。通过P-和N-循环酶分析微生物函数。通过指纹识别(变性梯度凝胶电泳)和测序技术估计微生物群落结构。 P缺乏诱导从簇根中释放的柠檬酸盐和酸磷酸酯酶,并刺激根际在根际产生微生物衍生的碱性磷酸酯酶。 P缺乏症在簇根根际的微生物多样性下降。在P缺陷型植物的根际的Burkhoders中的相对丰度增加可能负责不同有机P部分如植物的降解。 N缺乏诱导拍摄的结节和P浓度的数量增加以及白羽磺丁根。我们澄清了簇根部的高释放柠檬酸盐可能是满足N缺乏下调植物的P需求的优选机制。此外,簇根根际的根际大量的Rhizobiales和罗马峰表现出N型固定微生物在N缺乏下的重要性。根际微生物由于两种不同N处理下的N-循环酶活性的贡献对植物的N营养不太重要。进一步了解N缺乏下对簇根的调节将提供关于P和N营养之间的相互作用的新信息。

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