Exudate pulses throughout the entire growth period trigger the increase in maize phosphorus use efficiency by modifying soil keystone microbial taxa

IF 5.6 1区 农林科学 Q1 SOIL SCIENCE Biology and Fertility of Soils Pub Date : 2025-04-04 DOI:10.1007/s00374-025-01912-6
Guiwei Wang, Yuechao Yang, Yuanyuan Yao, Xiaoqi Wang
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Abstract

Exudates are the medium through which plants adapt to complex soil environments, however, the mechanisms of how different types of root exudates increase maize yield and phosphorus (P) use efficiency (PUE) throughout the entire growth period remains unknown. In this study, we designed an experiment to examine the effects of continuous addition of exudate substances on maize growth and P uptake over the entire growth period. The addition of succinic acid, luteolin, and inositol significantly increased maize biomass, particularly root biomass. Specifically, the treatment with added succinic acid increased maize yield by 11.6% and PUE by 8%. Additionally, we found that different exudate substances significantly altered the soil bacterial and fungal communities, thereby increasing soil P bioavailability. The microbial co-occurrence networks revealed that Actinobacteriota and Proteobacteria keystone ASVs, enriched by the addition of succinic acid, luteolin, and inositol, were significantly associated with maize P uptake. Furthermore, at the V12 stage (Twelve leaves unfolded), the addition of exudate substances significantly increased alkaline phosphatase activity, and at the R6 stage (Maturity), soil available P content was significantly elevated, enhancing soil P bioavailability. These findings provide evidence for future exploration of the interaction mechanisms between plants and soil microbes and optimizing nutrient management strategies in farmland.

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整个生育期的分泌物脉冲通过改变土壤关键微生物类群触发玉米磷利用效率的提高
根系分泌物是植物适应复杂土壤环境的媒介,但不同类型根系分泌物在整个生育期提高玉米产量和磷利用效率(PUE)的机制尚不清楚。在本研究中,我们设计了一个试验来研究连续添加渗出物质对玉米生长和全生育期磷吸收的影响。琥珀酸、木犀草素和肌醇的添加显著增加了玉米生物量,尤其是根生物量。其中,添加琥珀酸处理玉米产量提高11.6%,PUE提高8%。此外,我们发现不同的渗出物质显著改变了土壤细菌和真菌群落,从而增加了土壤磷的生物有效性。微生物共生网络显示,添加琥珀酸、木犀草素和肌醇后,放线菌门和变形菌门的keystone asv与玉米P吸收显著相关。此外,在V12期(12叶展开期),添加渗出物显著提高了碱性磷酸酶活性;在R6期(成熟期),土壤有效磷含量显著升高,提高了土壤磷的生物有效性。这些发现为进一步探索植物与土壤微生物的相互作用机制和优化农田养分管理策略提供了依据。
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来源期刊
Biology and Fertility of Soils
Biology and Fertility of Soils 农林科学-土壤科学
CiteScore
11.80
自引率
10.80%
发文量
62
审稿时长
2.2 months
期刊介绍: Biology and Fertility of Soils publishes in English original papers, reviews and short communications on all fundamental and applied aspects of biology – microflora and microfauna - and fertility of soils. It offers a forum for research aimed at broadening the understanding of biological functions, processes and interactions in soils, particularly concerning the increasing demands of agriculture, deforestation and industrialization. The journal includes articles on techniques and methods that evaluate processes, biogeochemical interactions and ecological stresses, and sometimes presents special issues on relevant topics.
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