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The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China

Nitrogen (N) cycling microorganisms mediate soil nitrogen transformation processes, thereby affecting agricultural production and environment quality. However, it is not fully understood how active N-cycling microbial community in soil respond to long-term fertilization, as well as which microorgani...

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Autores principales: Wang, Feng, Liang, Xiaolong, Ding, Fan, Ren, Lingling, Liang, Minjie, An, Tingting, Li, Shuangyi, Wang, Jingkuan, Liu, Lingzhi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9576102/
https://www.ncbi.nlm.nih.gov/pubmed/36262325
http://dx.doi.org/10.3389/fmicb.2022.1021080
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author Wang, Feng
Liang, Xiaolong
Ding, Fan
Ren, Lingling
Liang, Minjie
An, Tingting
Li, Shuangyi
Wang, Jingkuan
Liu, Lingzhi
author_facet Wang, Feng
Liang, Xiaolong
Ding, Fan
Ren, Lingling
Liang, Minjie
An, Tingting
Li, Shuangyi
Wang, Jingkuan
Liu, Lingzhi
author_sort Wang, Feng
collection PubMed
description Nitrogen (N) cycling microorganisms mediate soil nitrogen transformation processes, thereby affecting agricultural production and environment quality. However, it is not fully understood how active N-cycling microbial community in soil respond to long-term fertilization, as well as which microorganisms regulate soil nitrogen cycling in agricultural ecosystem. Here, we collected the soils from different depths and seasons at a 29-year fertilization experimental field (organic/chemical fertilizer), and investigated the transcriptions of N-cycling functional genes and their contribution to potential nitrification and denitrification. We found that long-term fertilization exerted significant impacts on the transcript abundances of nitrifiers (AOA amoA, AOB amoA and hao) and denitrifiers (narG and nosZ), which was also notably influenced by season variation. The transcriptions of AOA amoA, hao, and narG genes were lowest in autumn, and AOB amoA and nosZ transcript abundances were highest in autumn. Compared to no fertilization, soil potential nitrification rate (PNR) was reduced in fertilization treatments, while soil potential denitrification rate (PDR) was significantly enhanced in organic combined chemical fertilizer treatment. Both PNR and PDR were highest in 0–20 cm among the tested soil depths. Path model indicated active nitrifiers and denitrifiers had significant impact on soil PNR and PDR, respectively. The transcriptions of AOA amoA and nxr genes were significantly correlated with soil PNR (Pearson correlation, r > 0.174, p < 0.05). Significant correlation of napA and nosZ transcriptions with soil PDR (Pearson correlation, r > 0.234, p < 0.05) was also revealed. Random forest analysis showed that SOC content and soil pH were the important factors explaining the total variance of active nitrifers and denitrifiers, respectively. Taken together, long-term fertilization regimes reduced soil PNR and enhanced PDR, which could be attributed to the different responses of active N-cycling microorganisms to soil environment variations. This work provides new insight into the nitrogen cycle, particularly microbial indicators in nitrification and denitrification of long-term fertilized agricultural ecosystems.
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spelling pubmed-95761022022-10-18 The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China Wang, Feng Liang, Xiaolong Ding, Fan Ren, Lingling Liang, Minjie An, Tingting Li, Shuangyi Wang, Jingkuan Liu, Lingzhi Front Microbiol Microbiology Nitrogen (N) cycling microorganisms mediate soil nitrogen transformation processes, thereby affecting agricultural production and environment quality. However, it is not fully understood how active N-cycling microbial community in soil respond to long-term fertilization, as well as which microorganisms regulate soil nitrogen cycling in agricultural ecosystem. Here, we collected the soils from different depths and seasons at a 29-year fertilization experimental field (organic/chemical fertilizer), and investigated the transcriptions of N-cycling functional genes and their contribution to potential nitrification and denitrification. We found that long-term fertilization exerted significant impacts on the transcript abundances of nitrifiers (AOA amoA, AOB amoA and hao) and denitrifiers (narG and nosZ), which was also notably influenced by season variation. The transcriptions of AOA amoA, hao, and narG genes were lowest in autumn, and AOB amoA and nosZ transcript abundances were highest in autumn. Compared to no fertilization, soil potential nitrification rate (PNR) was reduced in fertilization treatments, while soil potential denitrification rate (PDR) was significantly enhanced in organic combined chemical fertilizer treatment. Both PNR and PDR were highest in 0–20 cm among the tested soil depths. Path model indicated active nitrifiers and denitrifiers had significant impact on soil PNR and PDR, respectively. The transcriptions of AOA amoA and nxr genes were significantly correlated with soil PNR (Pearson correlation, r > 0.174, p < 0.05). Significant correlation of napA and nosZ transcriptions with soil PDR (Pearson correlation, r > 0.234, p < 0.05) was also revealed. Random forest analysis showed that SOC content and soil pH were the important factors explaining the total variance of active nitrifers and denitrifiers, respectively. Taken together, long-term fertilization regimes reduced soil PNR and enhanced PDR, which could be attributed to the different responses of active N-cycling microorganisms to soil environment variations. This work provides new insight into the nitrogen cycle, particularly microbial indicators in nitrification and denitrification of long-term fertilized agricultural ecosystems. Frontiers Media S.A. 2022-10-03 /pmc/articles/PMC9576102/ /pubmed/36262325 http://dx.doi.org/10.3389/fmicb.2022.1021080 Text en Copyright © 2022 Wang, Liang, Ding, Ren, Liang, An, Li, Wang and Liu. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Wang, Feng
Liang, Xiaolong
Ding, Fan
Ren, Lingling
Liang, Minjie
An, Tingting
Li, Shuangyi
Wang, Jingkuan
Liu, Lingzhi
The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China
title The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China
title_full The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China
title_fullStr The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China
title_full_unstemmed The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China
title_short The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in North-East China
title_sort active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in north-east china
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9576102/
https://www.ncbi.nlm.nih.gov/pubmed/36262325
http://dx.doi.org/10.3389/fmicb.2022.1021080
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