Literature DB >> 29603502

Microbial mechanisms of carbon priming effects revealed during the interaction of crop residue and nutrient inputs in contrasting soils.

Yunying Fang1, Loïc Nazaries2, Brajesh K Singh2,3, Bhupinder Pal Singh1.   

Abstract

Agronomic practices such as crop residue return and additional nutrient supply are recommended to increase soil organic carbon (SOC) in arable farmlands. However, changes in the priming effect (PE) on native SOC mineralization in response to integrated inputs of residue and nutrients are not fully known. This knowledge gap along with a lack of understanding of microbial mechanisms hinders the ability to constrain models and to reduce the uncertainty to predict carbon (C) sequestration potential. Using a 13 C-labeled wheat residue, this 126-day incubation study examined the dominant microbial mechanisms that underpin the PE response to inputs of wheat residue and nutrients (nitrogen, phosphorus and sulfur) in two contrasting soils. The residue input caused positive PE through "co-metabolism," supported by increased microbial biomass, C and nitrogen (N) extracellular enzyme activities (EEAs), and gene abundance of certain microbial taxa (Eubacteria, β-Proteobacteria, Acidobacteria, and Fungi). The residue input could have induced nutrient limitation, causing an increase in the PE via "microbial nutrient mining" of native soil organic matter, as suggested by the low C-to-nutrient stoichiometry of EEAs. At the high residue, exogenous nutrient supply (cf. no-nutrient) initially decreased positive PE by alleviating nutrient mining, which was supported by the low gene abundance of Eubacteria and Fungi. However, after an initial decrease in PE at the high residue with nutrients, the PE increased to the same magnitude as without nutrients over time. This suggests the dominance of "microbial stoichiometry decomposition," supported by higher microbial biomass and EEAs, while Eubacteria and Fungi increased over time, at the high residue with nutrients cf. no-nutrient in both soils. Our study provides novel evidence that different microbial mechanisms operate simultaneously depending on organic C and nutrient availability in a residue-amended soil. Our results have consequences for SOC modeling and integrated nutrient management employed to increase SOC in arable farmlands.
© 2018 John Wiley & Sons Ltd.

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Keywords:  13C isotope; copiotrophs; enzymatic stoichiometry; extracellular enzyme activity; gene abundance; oligotrophs

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Year:  2018        PMID: 29603502     DOI: 10.1111/gcb.14154

Source DB:  PubMed          Journal:  Glob Chang Biol        ISSN: 1354-1013            Impact factor:   10.863


  3 in total

1.  Long-term effect of rice-based cropping systems on pools of soil organic carbon in farmer's field in hilly agroecosystem of Manipur, India.

Authors:  Thounaojam Thomas Meetei; Manik Chandra Kundu; Yumnam Bijilaxmi Devi
Journal:  Environ Monit Assess       Date:  2020-03-04       Impact factor: 2.513

2.  Variation of 13C and 15N enrichments in different plant components of labeled winter wheat (Triticum aestivum L.).

Authors:  Zhaoan Sun; Shuxia Wu; Biao Zhu; Yiwen Zhang; Roland Bol; Qing Chen; Fanqiao Meng
Journal:  PeerJ       Date:  2019-10-02       Impact factor: 2.984

3.  Higher carbon sequestration potential and stability for deep soil compared to surface soil regardless of nitrogen addition in a subtropical forest.

Authors:  Chang Liao; Dong Li; Lin Huang; Pengyun Yue; Feng Liu; Qiuxiang Tian
Journal:  PeerJ       Date:  2020-05-11       Impact factor: 2.984

  3 in total

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