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生物有机肥通过塑造根际微生物群落组成和功能促进梨树的产量。

Bio-Organic Fertilizer Promotes Pear Yield by Shaping the Rhizosphere Microbiome Composition and Functions.

机构信息

Jiangsu Provincial Key Laboratory for Organic Solid Waste Utilization, Key Laboratory of Plant immunity, Jiangsu Collaborative Innovation Center for Solid Organic Waste Resource Utilization, National Engineering Research Center for Organic-based Fertilizers, Nanjing Agricultural University, Nanjing, China.

Institute of Pomology, Jiangsu Academy of Agricultural Sciences, Jiangsu Key Laboratory for Horticultural Crop Genetic Improvement, Nanjing, China.

出版信息

Microbiol Spectr. 2022 Dec 21;10(6):e0357222. doi: 10.1128/spectrum.03572-22. Epub 2022 Dec 1.

Abstract

Bio-organic fertilizers (BOF) containing both organic amendments and beneficial microorganisms have been consistently shown to improve soils fertility and yield. However, the exact mechanisms which link amendments and yields remain disputed, and the complexity of bio-organic fertilizers may work in parallel in several ways. BOF may directly improve yield by replenishing soil nutrients or introducing beneficial microbial genes or indirectly by altering the soil microbiome to enrich native beneficial microorganisms. In this work, we aim to disentangle the relative contributions of direct and indirect effects on pear yield. We treated pear trees with either chemical fertilizer or organic fertilizer with/without the plant-beneficial bacterium Bacillus velezensis SQR9. We then assessed, in detail, soil physicochemical and biological properties (metagenome sequencing) as well as pear yield. We then evaluated the relative importance of direct and indirect effects of soil amendments on pear yield. Both organic treatments increased plant yield by up to 20%, with the addition of bacteria tripling the increase driven by organic fertilizer alone. This increase could be linked to alterations in soil physicochemical properties, bacterial community function, and metabolism. Supplementation of organic fertilizer SQR9 increased rhizosphere microbiome richness and functional diversity. Fertilizer-sensitive microbes and functions responded as whole guilds. Pear yield was most positively associated with the - and -dominated ecological clusters and with gene clusters involved in ion transport and secondary metabolite biosynthesis. Together, these results suggested that bio-organic fertilizers mainly act indirectly on plant yield by creating soil chemical properties which promote a plant-beneficial microbiome. Bio-organic fertilization is a widely used, eco-friendly, sustainable approach to increasing plant productivity in the agriculture and fruit industries. However, it remains unclear whether the promotion of fruit productivity is related to specific changes in microbial inoculants, the resident microbiome, and/or the physicochemical properties of rhizosphere soils. We found that bio-organic fertilizers alter soil chemical properties, thus manipulating specific microbial taxa and functions within the rhizosphere microbiome of pear plants to promote yield. Our work unveils the ecological mechanisms which underlie the beneficial impacts of bio-organic fertilizers on yield promotion in fruit orchards, which may help in the design of more efficient biofertilizers to promote sustainable fruit production.

摘要

生物有机肥料(BOF)既含有有机改良剂又含有有益微生物,一直被证明可以提高土壤肥力和产量。然而,将改良剂与产量联系起来的具体机制仍存在争议,生物有机肥料的复杂性可能以多种方式同时起作用。BOF 可以通过补充土壤养分或引入有益微生物基因直接提高产量,也可以通过改变土壤微生物组来丰富本地有益微生物间接提高产量。在这项工作中,我们旨在阐明直接和间接效应对梨产量的相对贡献。我们用化肥或有机肥处理梨树,其中有机肥添加/不添加植物有益菌枯草芽孢杆菌 SQR9。然后,我们详细评估了土壤理化和生物学特性(宏基因组测序)以及梨的产量。然后,我们评估了土壤改良剂对梨产量的直接和间接效应的相对重要性。两种有机处理都将植物的产量提高了 20%,而单独使用有机肥时,添加细菌将产量提高了两倍。这种增加可能与土壤理化性质、细菌群落功能和代谢的改变有关。补充有机肥 SQR9 增加了根际微生物群落的丰富度和功能多样性。对肥料敏感的微生物和功能作为整个菌群做出响应。肥料产量与-和-主导的生态群集以及与离子运输和次生代谢物生物合成相关的基因群集呈最正相关。总的来说,这些结果表明,生物有机肥料主要通过创造促进植物有益微生物的土壤化学性质对植物产量产生间接影响。生物有机肥料是一种广泛使用的环保、可持续的方法,可提高农业和水果产业中植物的生产力。然而,目前尚不清楚促进水果产量是否与微生物接种剂、常驻微生物组和/或根际土壤的理化性质的具体变化有关。我们发现,生物有机肥料会改变土壤化学性质,从而改变梨树根际微生物组中的特定微生物类群和功能,以促进产量。我们的工作揭示了生物有机肥料对果园产量促进产生有益影响的生态机制,这可能有助于设计更有效的生物肥料来促进可持续的水果生产。

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