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丛枝菌根真菌根际的核心微生物组在有机磷矿化中具有功能意义。

A core microbiome in the hyphosphere of arbuscular mycorrhizal fungi has functional significance in organic phosphorus mineralization.

机构信息

College of Resources and Environmental Sciences, National Academy of Agriculture Green Development, China Agricultural University, Beijing, 100193, China.

The James Hutton Institute, Invergowrie, Dundee, DD2 5DA, UK.

出版信息

New Phytol. 2023 Apr;238(2):859-873. doi: 10.1111/nph.18642. Epub 2022 Dec 15.

Abstract

The mycorrhizal pathway is an important phosphorus (P) uptake pathway for more than two-thirds of land plants. The arbuscular mycorrhizal (AM) fungi-associated hyphosphere microbiome has been considered as the second genome of mycorrhizal P uptake pathway and functionality in mobilizing soil organic P (Po). However, whether there is a core microbiome in the hyphosphere and how this is implicated in mining soil Po are less understood. We established on-site field trials located in humid, semiarid, and arid zones and a microcosm experiment in a glasshouse with specific AM fungi and varying soil types to answer the above questions. The hyphosphere microbiome of AM fungi enhanced soil phosphatase activity and promoted Po mineralization in all sites. Although the assemblage of hyphosphere microbiomes identified in three climate zones was mediated by environmental factors, we detected a core set in three sites and the subsequent microcosm experiment. The core members were co-enriched in the hyphosphere and dominated by Alphaproteobacteria, Actinobacteria, and Gammaproteobacteria. Moreover, these core bacterial members aggregate into stable guilds that contributed to phosphatase activity. The core hyphosphere microbiome is taxonomically conserved and provides functions, with respect to the mineralization of Po, that AM fungi lack.

摘要

菌根途径是超过三分之二陆地植物吸收磷(P)的重要途径。丛枝菌根(AM)真菌相关的菌丝体微生物区系被认为是 AM 真菌吸收 P 途径和功能的第二基因组,能够动员土壤有机磷(Po)。然而,在菌丝体中是否存在核心微生物组,以及它如何参与挖掘土壤 Po,这些问题还不太清楚。我们在潮湿、半干旱和干旱地区建立了现场试验,并在温室中进行了微宇宙实验,使用特定的 AM 真菌和不同的土壤类型来回答上述问题。AM 真菌的菌丝体微生物组增强了土壤磷酸酶活性,并促进了所有地点的 Po 矿化。尽管在三个气候带中鉴定出的菌丝体微生物组的组合受到环境因素的影响,但我们在三个地点和随后的微宇宙实验中检测到了一个核心集合。核心成员在菌丝体中共同富集,并以α变形菌门、放线菌门和γ变形菌门为主。此外,这些核心细菌成员聚集形成稳定的类群,有助于磷酸酶活性。核心菌丝体微生物组在分类上是保守的,并提供了 AM 真菌缺乏的功能,与 Po 的矿化有关。

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