Life at the Frozen Limit: Microbial Carbon Metabolism Across a Late Pleistocene Permafrost Chronosequence

被引:19
作者
Leewis, Mary-Cathrine [1 ]
Berlemont, Renaud [2 ]
Podgorski, David C. [3 ]
Srinivas, Archana [4 ]
Zito, Phoebe [3 ]
Spencer, Robert G. M. [5 ]
McFarland, Jack [1 ]
Douglas, Thomas A. [6 ]
Conaway, Christopher H. [7 ]
Waldrop, Mark [1 ]
Mackelprang, Rachel [4 ]
机构
[1] US Geol Survey, Geol Minerals Energy & Geophys Sci Ctr, 345 Middlefield Rd, Menlo Pk, CA 94025 USA
[2] Calif State Univ Long Beach, Dept Biol Sci, Long Beach, CA 90840 USA
[3] Univ New Orleans, Dept Chem, Pontchartrain Inst Environm Sci, New Orleans, LA 70148 USA
[4] Calif State Univ Northridge, Dept Biol, Northridge, CA 91330 USA
[5] Florida State Univ, Natl High Magnet Field Lab, Geochem Grp, Dept Earth Ocean & Atmospher Sci, Tallahassee, FL 32306 USA
[6] US Army Cold Reg Res & Engn Lab, Ft Wainwright, AK USA
[7] US Geol Survey, Water Resources Mission Area, 345 Middlefield Rd, Menlo Pk, CA 94025 USA
关键词
permafrost; Pleistocene; carbohydrate active enzymes; CAZyme; carbon; FT-ICR MS; metagenomics; DISSOLVED ORGANIC-MATTER; TROPHIC INTERACTIONS; COMMUNITY; DEGRADATION; TEMPERATURE; VEGETATION; DYNAMICS; REVEALS; ACETATE; SOILS;
D O I
10.3389/fmicb.2020.01753
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Permafrost is an extreme habitat yet it hosts microbial populations that remain active over millennia. Using permafrost collected from a Pleistocene chronosequence (19 to 33 ka), we hypothesized that the functional genetic potential of microbial communities in permafrost would reflect microbial strategies to metabolize permafrost soluble organic matter (OM)in situover geologic time. We also hypothesized that changes in the metagenome across the chronosequence would correlate with shifts in carbon chemistry, permafrost age, and paleoclimate at the time of permafrost formation. We combined high-resolution characterization of water-soluble OM by Fourier-transform ion-cyclotron-resonance mass spectrometry (FT-ICR MS), quantification of organic anions in permafrost water extracts, and metagenomic sequencing to better understand the relationships between the molecular-level composition of potentially bioavailable OM, the microbial community, and permafrost age. Both age and paleoclimate had marked effects on both the molecular composition of dissolved OM and the microbial community. The relative abundance of genes associated with hydrogenotrophic methanogenesis, carbohydrate active enzyme families, nominal oxidation state of carbon (NOSC), and number of identifiable molecular formulae significantly decreased with increasing age. In contrast, genes associated with fermentation of short chain fatty acids (SCFAs), the concentration of SCFAs and ammonium all significantly increased with age. We present a conceptual model of microbial metabolism in permafrost based on fermentation of OM and the buildup of organic acids that helps to explain the unique chemistry of ancient permafrost soils. These findings imply long-termin situmicrobial turnover of ancient permafrost OM and that this pooled biolabile OM could prime ancient permafrost soils for a larger and more rapid microbial response to thaw compared to younger permafrost soils.
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页数:15
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