Land use effects on soil microbiome composition and traits with consequences for soil carbon cycling

被引:1
作者
Cole, Lisa [1 ]
Goodall, Tim [2 ]
Jehmlich, Nico [3 ]
Griffiths, Robert, I [2 ,4 ]
Gleixner, Gerd [5 ]
Gubry-Rangin, Cecile [1 ]
Malik, Ashish A. [1 ,2 ,6 ]
机构
[1] Univ Aberdeen, Sch Biol Sci, St Machar Dr, Aberdeen AB24 3UU, Scotland
[2] UK Ctr Ecol & Hydrol, Benson Lane, Wallingford OX10 8BB, England
[3] UFZ Helmholtz Ctr Environm Res, Dept Mol Syst Biol, Permoserstr 15, D-04318 Leipzig, Germany
[4] Bangor Univ, Sch Nat Sci, Deiniol Rd, Bangor LL57 2UR, Wales
[5] Max Planck Inst Biogeochem, Hans Knoell Str 10, D-07745 Jena, Germany
[6] Univ Edinburgh, Sch Geosci, Off 204,Crew Bldg,Kings Bldg,Alexander Crum Brown, Edinburgh EH9 3FF, Scotland
来源
ISME COMMUNICATIONS | 2024年 / 4卷 / 01期
基金
英国自然环境研究理事会;
关键词
soil microbiome; carbon cycling; land use intensity; soil pH; metaproteomics; metabarcoding; soil organic carbon; 13C labeling; carbon use efficiency; soil health; USE EFFICIENCY; COMMUNITIES; BACTERIAL; DIVERSITY; SEQUESTRATION; SEQUENCES; PIPELINE; IMPACT;
D O I
10.1093/ismeco/ycae116
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
The soil microbiome determines the fate of plant-fixed carbon. The shifts in soil properties caused by land use change leads to modifications in microbiome function, resulting in either loss or gain of soil organic carbon (SOC). Soil pH is the primary factor regulating microbiome characteristics leading to distinct pathways of microbial carbon cycling, but the underlying mechanisms remain understudied. Here, the taxa-trait relationships behind the variable fate of SOC were investigated using metaproteomics, metabarcoding, and a C-13-labeled litter decomposition experiment across two temperate sites with differing soil pH each with a paired land use intensity contrast. C-13 incorporation into microbial biomass increased with land use intensification in low-pH soil but decreased in high-pH soil, with potential impact on carbon use efficiency in opposing directions. Reduction in biosynthesis traits was due to increased abundance of proteins linked to resource acquisition and stress tolerance. These trait trade-offs were underpinned by land use intensification-induced changes in dominant taxa with distinct traits. We observed divergent pH-controlled pathways of SOC cycling. In low-pH soil, land use intensification alleviates microbial abiotic stress resulting in increased biomass production but promotes decomposition and SOC loss. In contrast, in high-pH soil, land use intensification increases microbial physiological constraints and decreases biomass production, leading to reduced necromass build-up and SOC stabilization. We demonstrate how microbial biomass production and respiration dynamics and therefore carbon use efficiency can be decoupled from SOC highlighting the need for its careful consideration in managing SOC storage for soil health and climate change mitigation.
引用
收藏
页数:11
相关论文
共 66 条
[1]  
Allison SD, 2014, FRONT MICROBIOL, V5, DOI [10.3389/fmicb.2014.00571, 10.3389/fmicb.2014.00169]
[2]  
[Anonymous], 2016, R LANG ENV STAT COMP
[3]   Impact of long-term agricultural management practices on soil prokaryotic communities [J].
Babin, Doreen ;
Deubel, Annette ;
Jacquiod, Samuel ;
Sorensen, Soren J. ;
Geistlinger, Joerg ;
Grosch, Rita ;
Smalla, Kornelia .
SOIL BIOLOGY & BIOCHEMISTRY, 2019, 129 :17-28
[4]   Microbial diversity in a Pacific Ocean transect from the Arctic to Antarctic circles [J].
Baldwin, AJ ;
Moss, JA ;
Pakulski, JD ;
Catala, P ;
Joux, F ;
Jeffrey, WH .
AQUATIC MICROBIAL ECOLOGY, 2005, 41 (01) :91-102
[5]   Soil Organic Matter Research and Climate Change: Merely Re-storing Carbon Versus Restoring Soil Functions [J].
Baveye, Philippe C. ;
Schnee, Laura Sophie ;
Boivin, Pascal ;
Laba, Magdeline ;
Radulovich, Ricardo .
FRONTIERS IN ENVIRONMENTAL SCIENCE, 2020, 8
[6]   Soil depth and tillage can characterize the soil microbial responses to drying-rewetting [J].
Brangari, Albert C. ;
Lyonnard, Blandine ;
Rousk, Johannes .
SOIL BIOLOGY & BIOCHEMISTRY, 2022, 173
[7]   Microbial necromass carbon and nitrogen persistence are decoupled in agricultural grassland soils [J].
Buckeridge, Kate M. ;
Mason, Kelly E. ;
Ostle, Nick ;
McNamara, Niall P. ;
Grant, Helen K. ;
Whitaker, Jeanette .
COMMUNICATIONS EARTH & ENVIRONMENT, 2022, 3 (01)
[8]   Environmental and microbial controls on microbial necromass recycling, an important precursor for soil carbon stabilization [J].
Buckeridge, Kate M. ;
Mason, Kelly E. ;
McNamara, Niall P. ;
Ostle, Nick ;
Puissant, Jeremy ;
Goodall, Tim ;
Griffiths, Robert, I ;
Stott, Andrew W. ;
Whitaker, Jeanette .
COMMUNICATIONS EARTH & ENVIRONMENT, 2020, 1 (01)
[9]   Relic DNA is abundant in soil and obscures estimates of soil microbial diversity [J].
Carini, Paul ;
Marsden, Patrick J. ;
Leff, JonathanW. ;
Morgan, Emily E. ;
Strickland, Michael S. ;
Fierer, Noah .
NATURE MICROBIOLOGY, 2017, 2 (03)
[10]   Greengenes, a chimera-checked 16S rRNA gene database and workbench compatible with ARB [J].
DeSantis, T. Z. ;
Hugenholtz, P. ;
Larsen, N. ;
Rojas, M. ;
Brodie, E. L. ;
Keller, K. ;
Huber, T. ;
Dalevi, D. ;
Hu, P. ;
Andersen, G. L. .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2006, 72 (07) :5069-5072