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From the CoverPNAS Plus: Root-associated fungal microbiota of nonmycorrhizal Arabis alpina and its contribution to plant phosphorus nutrition

机译:来自CoverPNAS Plus:非菌根拟南芥的根相关真菌菌群及其对植物磷营养的贡献

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摘要

Most land plants live in association with arbuscular mycorrhizal (AM) fungi and rely on this symbiosis to scavenge phosphorus (P) from soil. The ability to establish this partnership has been lost in some plant lineages like the Brassicaceae, which raises the question of what alternative nutrition strategies such plants have to grow in P-impoverished soils. To understand the contribution of plant–microbiota interactions, we studied the root-associated fungal microbiome of Arabis alpina (Brassicaceae) with the hypothesis that some of its components can promote plant P acquisition. Using amplicon sequencing of the fungal internal transcribed spacer 2, we studied the root and rhizosphere fungal communities of A. alpina growing under natural and controlled conditions including low-P soils and identified a set of 15 fungal taxa consistently detected in its roots. This cohort included a Helotiales taxon exhibiting high abundance in roots of wild A. alpina growing in an extremely P-limited soil. Consequently, we isolated and subsequently reintroduced a specimen from this taxon into its native P-poor soil in which it improved plant growth and P uptake. The fungus exhibited mycorrhiza-like traits including colonization of the root endosphere and P transfer to the plant. Genome analysis revealed a link between its endophytic lifestyle and the expansion of its repertoire of carbohydrate-active enzymes. We report the discovery of a plant–fungus interaction facilitating the growth of a nonmycorrhizal plant under native P-limited conditions, thus uncovering a previously underestimated role of root fungal microbiota in P cycling.
机译:大多数陆地植物与丛枝菌根(AM)真菌生活在一起,并依靠这种共生作用从土壤中清除磷(P)。建立这种伙伴关系的能力已经在诸如十字花科的某些植物谱系中丧失了,这引发了这样的问题,即这种植物必须在贫瘠的土壤中生长哪些替代营养策略。为了了解植物与微生物群相互作用的作用,我们研究了拟南芥(Brassicaceae)与根相关的真菌微生物组,并假设其某些成分可以促进植物磷的吸收。使用真菌内部转录间隔区2的扩增子测序,我们研究了在自然和受控条件下(包括低磷土壤)生长的拟南芥的根和根际真菌群落,并确定了在其根部一致检测到的15个真菌类群。该队列包括一个Helotiales类群,该类群在极度P限制的土壤中生长的野生A. alpina的根中表现出很高的丰度。因此,我们从该分类单元中分离了一个标本,然后将其重新引入到其原生的P贫瘠土壤中,从而改善了植物的生长和P的吸收。真菌表现出菌根样特征,包括根内球体定植和磷向植物的转移。基因组分析揭示了其内生生活方式与其碳水化合物活性酶库的扩展之间的联系。我们报道了一种植物-真菌相互作用的发现,该相互作用促进了非菌根植物在天然磷限制条件下的生长,从而揭示了根瘤菌在磷循环中被低估的作用。

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