Experimental strategies to measure the microbial uptake and mineralization kinetics of dissolved organic carbon in soil

被引:0
作者
Baozhen Li
Tida Ge
Paul W. Hill
Davey L. Jones
Zhenke Zhu
Mostafa Zhran
Jinshui Wu
机构
[1] Chinese Academy of Sciences,Key Laboratory of Agro
[2] Bangor University,ecological Processes in Subtropical Region & Changsha Research Station for Agricultural and Environmental Monitoring, Institute of Subtropical Agriculture
[3] Atomic Energy Authority,School of Natural Sciences
[4] University of Chinese Academy of Sciences,Soil and Water Research Department, Nuclear Research Center
来源
Soil Ecology Letters | 2020年 / 2卷
关键词
C tracer; Microbial uptake; Carbon mineralization; Turnover;
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学科分类号
摘要
Soil organic matter turnover rates are typically estimated from mass loss of the material over time or from on rates of carbon dioxide production. In the study, we investigated a new way to characterize the concentration-dependent kinetics of amino acids used by measuring microbial uptake and mineralization of 14C-alanine. We measured the depletion from soil solution after additions 14C-alanine. The microbial uptake of 14C-alanine from soil solution was concentration-dependent and kinetic analysis indicated the operation of at least three distinct alanine transport systems of differing affinities. Most of the 14C-alanine depletion from the soil solution occurred rapidly within the first 10–30 min of the incubation after 10 µM to 1 mM substrate additions. At alanine concentrations less than 250 mM, the kinetic parameters for Km and Vmax of the higher-affinity transporter were 60.0 µM and 1.32 µmol g−1 DW soil h−1, respectively. The mineralization of alanine was determined and the half-time values for the rapid mineralization process were 45 min to 1.5 h after the addition at alanine concentrations below 1 mM. The time delay after its uptake into microbial biomass suggested that alanine uptake and subsequent respiration were uncoupled pattern. The microbial N uptake rate was calculated by microbial mineralization, and an estimated Km value of 1731.7±274.6 µM and Vmax value of 486.0±38.5 µmol kg−1 DW soil h−1. This study provides an alternative approach for measuring the rate of turnover of compounds that turnover very rapidly in soil.
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页码:180 / 187
页数:7
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共 172 条
[1]  
Balland-Bolou-Bi C(2019)Impact of microbial activity on the mobility of metallic elements (Fe, Al and Hg) in tropical soils Geoderma 334 146-154
[2]  
Bolou-Bi EB(2007)Fast turnover of low molecular weight components of the dissolved organic carbon pool of temperate grassland field soils Soil Biology & Biochemistry 39 827-835
[3]  
Alphonse V(2008)Turnover of low molecular weight dissolved organic C (DOC) and microbial C exhibit different temperature sensitivities in Arctic tundra soils Soil Biology & Biochemistry 40 1557-1566
[4]  
Giusti-Miller S(2019)Microbial uptake kinetics of dissolved organic carbon (DOC) compound groups from river water and sediments Scientific Reports 9 11229-315
[5]  
Jusselme MD(2001)Population growth kinetics of the nematode, Biotechnology Letters 23 311-230
[6]  
Livet A(2001), in submerged monoxenic culture Mycorrhiza 11 225-192
[7]  
Grimaldi M(2014)Modelling the sporulation dynamics of arbuscular mycorrhizal fungi in monoxenic culture Soil Biology & Biochemistry 72 180-145
[8]  
Bousserhine N(2013)Sorption affects amino acid pathways in soil: implications from position-specific labeling of alanine Ecosystems (New York, N.Y.) 16 133-182
[9]  
Boddy E(2014)Oligopeptides represent a preferred source of organic N uptake: a global phenomenon? Soil Biology & Biochemistry 76 179-267
[10]  
Hill PW(2014)Amino acid dynamics across a grassland altitudinal gradient Soil Biology & Biochemistry 77 261-513