Long-term nitrogen and phosphorus fertilization improved crop yield by influencing rhizosphere nitrogen transformation processes

IF 5 2区 农林科学 Q1 SOIL SCIENCE Applied Soil Ecology Pub Date : 2025-02-18 DOI:10.1016/j.apsoil.2025.105968
Chunxiao Wu , Furong Wei , Benshuai Yan , Guobin Liu , Guoliang Wang
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Abstract

Soil nitrogen (N) transformation plays a crucial role in enhancing farmland productivity. However, the impacts of long-term N and phosphorus (P) fertilization on soil N transformation and crop yield in farmland remain unclear. This study investigated the mechanisms by which crop root exudates, microbial N function genes, and soil N transformation characteristics influenced crop yield under different N and P fertilization regimes over 26 years. The results revealed that long-term N and P fertilization significantly increased millet root exudates and soil nutrient contents. Specifically, dicarboxylic acid exudates, total N, and ammonium N prominently affected the composition of microbial N function genes. Moreover, N and P fertilization markedly increased the abundance of genes responsible for soil N fixation and nitrification. The abundance of soil nitrification (amoA1, amoA2, and nxrA) and ammonification (ureC) functional genes substantially influenced soil nitrification and N mineralization rates. Enhanced soil N transformation rates facilitated N uptake of millet, and crop yield increased with the increasing of soil N transformation rates and nitrification genes abundance. Essentially, long-term N and P fertilization increased crop yield mainly by enhancing the root organic acid exudates, increasing the abundance of functional genes such as amoA2, nxrA, and ureC, and elevating soil available N content. This study emphasizes the importance of the rhizosphere N transformation process for the sustainable agricultural development of the Loess Plateau region.

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长期施氮磷肥通过影响根际氮素转化过程提高作物产量
土壤氮素转化对提高农田生产力起着至关重要的作用。然而,长期施氮磷肥对农田土壤氮转化和作物产量的影响尚不清楚。研究了26年不同氮磷肥处理下作物根系分泌物、微生物氮功能基因和土壤氮转化特征对作物产量的影响机制。结果表明,长期施氮磷肥显著提高了谷子根系分泌物和土壤养分含量。其中,二羧酸分泌物、全氮和铵态氮显著影响微生物氮功能基因的组成。此外,施氮、施磷显著增加了土壤固氮和硝化基因的丰度。土壤硝化(amoA1、amoA2和nxrA)和氨化(ureC)功能基因的丰度对土壤硝化和氮矿化速率有显著影响。提高土壤氮素转化速率有利于谷子对氮素的吸收,作物产量随土壤氮素转化速率和硝化基因丰度的增加而增加。长期施氮磷肥主要通过增加根系有机酸分泌量、增加amoA2、nxrA、ureC等功能基因丰度和提高土壤速效氮含量来提高作物产量。本研究强调了黄土高原区根际氮转化过程对农业可持续发展的重要性。
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来源期刊
Applied Soil Ecology
Applied Soil Ecology 农林科学-土壤科学
CiteScore
9.70
自引率
4.20%
发文量
363
审稿时长
5.3 months
期刊介绍: Applied Soil Ecology addresses the role of soil organisms and their interactions in relation to: sustainability and productivity, nutrient cycling and other soil processes, the maintenance of soil functions, the impact of human activities on soil ecosystems and bio(techno)logical control of soil-inhabiting pests, diseases and weeds.
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