Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.

Soil microorganisms play a pivotal role in carbon mineralization and their diversity is crucial to the function of soil ecosystems. However, the effects of long-term fertilization on microbial-mediated carbon mineralization are poorly understood. To identify the relative roles of microbes in carbon...

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Main Authors: Zhen Guo, Jichang Han, Juan Li, Yan Xu, Xiaoli Wang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0211163
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author Zhen Guo
Jichang Han
Juan Li
Yan Xu
Xiaoli Wang
author_facet Zhen Guo
Jichang Han
Juan Li
Yan Xu
Xiaoli Wang
author_sort Zhen Guo
collection DOAJ
description Soil microorganisms play a pivotal role in carbon mineralization and their diversity is crucial to the function of soil ecosystems. However, the effects of long-term fertilization on microbial-mediated carbon mineralization are poorly understood. To identify the relative roles of microbes in carbon mineralization of yellow paddies, we investigated the long-term fertilization effects on soil properties and microbial communities and their relationships with carbon mineralization. The treatments included: no fertilization (CK), chemical fertilizer (NPK), organic fertilizer (M), and constant organic-inorganic fertilizer (MNPK). NPK treatment significantly increased soil water content (WC), while M and MNPK treatments significantly increased the content of soil organic carbon (SOC), total nitrogen (TN), soil microbial biomass carbon (SMBC), soil microbial biomass nitrogen (SMBN), and WC. Strong increases in CO2 emissions, potential mineralized carbon, and turnover rate constant were observed in both organic-fertilizer treatments (M and MNPK), relative to the CK treatment. These changes in soil properties can be attributed to the variation in microbial communities. NPK treatment had no significant effect. Different fertilization treatments changed soil microbial community; SOC and SMBN were the most important contributors to the variance in microbial community composition. The variations in community composition did not significant influence carbon mineralization; however, carbon mineralization was significantly influenced by the abundance of several non-dominant bacteria. The results suggest that SOC, SMBN, and non-dominant bacteria (Gemmatimonadetes and Latescibacteria), have a close relationship to carbon mineralization, and should be preferentially considered in predicting carbon mineralization under long-term fertilization.
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spelling doaj.art-772bf8aade934aea8db3a1d6fc677fc72022-12-21T22:51:11ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-01141e021116310.1371/journal.pone.0211163Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.Zhen GuoJichang HanJuan LiYan XuXiaoli WangSoil microorganisms play a pivotal role in carbon mineralization and their diversity is crucial to the function of soil ecosystems. However, the effects of long-term fertilization on microbial-mediated carbon mineralization are poorly understood. To identify the relative roles of microbes in carbon mineralization of yellow paddies, we investigated the long-term fertilization effects on soil properties and microbial communities and their relationships with carbon mineralization. The treatments included: no fertilization (CK), chemical fertilizer (NPK), organic fertilizer (M), and constant organic-inorganic fertilizer (MNPK). NPK treatment significantly increased soil water content (WC), while M and MNPK treatments significantly increased the content of soil organic carbon (SOC), total nitrogen (TN), soil microbial biomass carbon (SMBC), soil microbial biomass nitrogen (SMBN), and WC. Strong increases in CO2 emissions, potential mineralized carbon, and turnover rate constant were observed in both organic-fertilizer treatments (M and MNPK), relative to the CK treatment. These changes in soil properties can be attributed to the variation in microbial communities. NPK treatment had no significant effect. Different fertilization treatments changed soil microbial community; SOC and SMBN were the most important contributors to the variance in microbial community composition. The variations in community composition did not significant influence carbon mineralization; however, carbon mineralization was significantly influenced by the abundance of several non-dominant bacteria. The results suggest that SOC, SMBN, and non-dominant bacteria (Gemmatimonadetes and Latescibacteria), have a close relationship to carbon mineralization, and should be preferentially considered in predicting carbon mineralization under long-term fertilization.https://doi.org/10.1371/journal.pone.0211163
spellingShingle Zhen Guo
Jichang Han
Juan Li
Yan Xu
Xiaoli Wang
Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.
PLoS ONE
title Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.
title_full Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.
title_fullStr Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.
title_full_unstemmed Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.
title_short Effects of long-term fertilization on soil organic carbon mineralization and microbial community structure.
title_sort effects of long term fertilization on soil organic carbon mineralization and microbial community structure
url https://doi.org/10.1371/journal.pone.0211163
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AT juanli effectsoflongtermfertilizationonsoilorganiccarbonmineralizationandmicrobialcommunitystructure
AT yanxu effectsoflongtermfertilizationonsoilorganiccarbonmineralizationandmicrobialcommunitystructure
AT xiaoliwang effectsoflongtermfertilizationonsoilorganiccarbonmineralizationandmicrobialcommunitystructure