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首页> 外文期刊>Plant and Soil >Combining ecophysiological and microbial ecological approaches to study the relationship between Medicago truncatula genotypes and their associated rhizosphere bacterial communities
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Combining ecophysiological and microbial ecological approaches to study the relationship between Medicago truncatula genotypes and their associated rhizosphere bacterial communities

机译:结合生态生理学和微生物生态学方法研究Medi藜基因型与相关根际细菌群落之间的关系

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摘要

To assess how plant genotype and rhizosphere bacterial communities may interact, the genetic structure and diversity of bacterial communities in the rhizosphere soil of different Medicago truncatula genotypes were studied in relation to the plant carbon and nitrogen nutrition at the whole plant level. The genetic structure and diversity of plant-associated rhizosphere bacterial communities was analysed by Automated Ribosomal Intergenic Spacer Analysis and 454-pyrosequencing. In parallel, the carbon and nitrogen nutrition of the plants was estimated by a phenotypic description at both structural level (growth) and functional level (using carbon and nitrogen isotope labeling and an ecophysiological framework). An early effect of the plant genotype was observed on the rhizosphere bacterial communities, while few significant differences were detected at the plant structural phenotypic level. However, at a functional level, the different Medicago truncatula genotypes could be distinguished by their different nutritional strategies. Moreover, a comparison analysis showed that ecophysiological profiles of the different Medicago truncatula genotypes were correlated to the genetic structure and the diversity of the rhizosphere bacterial communities. The exploration of the genetic structure and diversity of rhizosphere bacterial communities combined with an ecophysiological approach is an innovative way to progress in our knowledge of plant-microbe interactions in the rhizosphere.
机译:为了评估植物基因型和根际细菌群落之间如何相互作用,研究了不同苜蓿Medi藜基因型根际土壤中细菌群落的遗传结构和多样性,并研究了整个植物水平上的植物碳和氮营养状况。通过自动核糖体间基因间隔分析和454-焦磷酸测序分析了植物相关根际细菌群落的遗传结构和多样性。同时,通过表型描述在结构水平(生长)和功能水平(使用碳和氮同位素标记以及生态生理学框架)上估计植物的碳和氮营养。观察到植物基因型对根际细菌群落的早期影响,而在植物结构表型水平上几乎没有发现显着差异。然而,在功能水平上,截短的苜蓿基因型可以通过不同的营养策略来区分。此外,比较分析表明,不同的苜蓿苜蓿基因型的生态生理特征与根际细菌群落的遗传结构和多样性有关。结合生态生理方法探索根际细菌群落的遗传结构和多样性,是一种创新的方法,可帮助我们了解根际植物-微生物相互作用。

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