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丛枝菌根真菌在田间条件下刺激与细菌群落结构变化相关的有机磷酸盐的移动。

Arbuscular mycorrhizal fungi stimulate organic phosphate mobilization associated with changing bacterial community structure under field conditions.

机构信息

College of Resources and Environmental Sciences, China Agricultural University, Beijing, 100193, China.

Institute of Agricultural Resources and Environment, Shandong Academy of Agricultural Sciences, Jinan, 250100, China.

出版信息

Environ Microbiol. 2018 Jul;20(7):2639-2651. doi: 10.1111/1462-2920.14289. Epub 2018 Aug 8.

Abstract

The extraradical hyphae of arbuscular mycorrhizal fungi (AMF) harbour and interact with a microbial community performing multiple functions. However, how the AMF-microbiome interaction influences the phosphorus (P) acquisition efficiency of the mycorrhizal pathway is unclear. Here we investigated whether AMF and their hyphal microbiome play a role in promoting organic phosphorus (P) mineralizing under field conditions. We developed an AMF hyphae in-growth core system for the field using PVC tubes sealed with membrane with different size of pores (30 or 0.45 μm) to allow or deny AMF hyphae access to a patch of organic P in root-free soil. AMF and their hyphae associated microbiome played a role in enhancing soil organic P mineralization in situ in the field, which was shown to be a function of the change in bacteria community on the hyphae surface. The bacterial communities attached to the AMF hyphae surface were significantly different from those in the bulk soil. Importantly, AMF hyphae recruited bacteria that produced alkaline phosphatase and provided a function that was absent from the hyphae. These results demonstrate the importance of understanding trophic interactions to be able to gain insight into the functional controls of nutrient cycles in the rhizosphere.

摘要

丛枝菌根真菌(AMF)的外生菌根菌丝栖息并与执行多种功能的微生物群落相互作用。然而,AMF-微生物群相互作用如何影响菌根途径的磷(P)获取效率尚不清楚。在这里,我们研究了 AMF 及其菌丝微生物组是否在促进野外条件下有机磷(P)矿化方面发挥作用。我们使用带有不同孔径(30 或 0.45μm)的膜密封的 PVC 管为野外开发了一种 AMF 菌丝内生长核心系统,以允许或阻止 AMF 菌丝进入无根土壤中有机 P 的斑块。AMF 及其菌丝相关微生物组在原位增强了土壤有机 P 矿化,这是菌丝表面细菌群落变化的功能。附着在 AMF 菌丝表面的细菌群落与土壤中的细菌群落有显著差异。重要的是,AMF 菌丝招募了产生碱性磷酸酶的细菌,并提供了菌丝所没有的功能。这些结果表明,了解营养相互作用对于深入了解根际养分循环的功能控制至关重要。

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