Lignin Preservation and Microbial Carbohydrate Metabolism in Permafrost Soils

被引:13
作者
Dao, Thao Thi [1 ]
Mikutta, Robert [2 ]
Sauheitl, Leopold [1 ]
Gentsch, Norman [1 ]
Shibistova, Olga [1 ,3 ]
Wild, Birgit [4 ,5 ,6 ]
Schnecker, Joerg [4 ]
Barta, Jiri [7 ,8 ]
Capek, Petr [7 ]
Gittel, Antje [9 ,10 ]
Lashchinskiy, Nikolay [11 ]
Urich, Tim [12 ]
Santruckova, Hana [7 ]
Richter, Andreas [4 ,13 ]
Guggenberger, Georg [1 ,3 ]
机构
[1] Leibniz Univ Hannover, Inst Soil Sci, Hannover, Germany
[2] Martin Luther Univ Halle Wittenberg, Soil Sci & Soil Protect, Halle, Germany
[3] VN Sukachev Inst Forest, Krasnoyarsk, Russia
[4] Univ Vienna, Dept Microbiol & Ecosyst Sci, Vienna, Austria
[5] Stockholm Univ, Dept Environm Sci & Analyt Chem, Stockholm, Sweden
[6] Stockholm Univ, Bolin Ctr Climate Res, Stockholm, Sweden
[7] Univ South Bohemia, Dept Ecosyst Biol, Ceske Budejovice, Czech Republic
[8] Univ South Bohemia, Fac Sci, Ctr Polar Ecol, Ceske Budejovice, Czech Republic
[9] Univ Bergen, Ctr Geobiol, Dept Biol, Bergen, Norway
[10] Ctr Geomicrobiol, Dept Biosci, Aarhus, Denmark
[11] Russian Acad Sci, Cent Siberian Bot Garden, Siberian Branch, Novosibirsk, Russia
[12] Ernst Moritz Arndt Univ, Inst Microbiol, Greifswald, Germany
[13] Austrian Polar Res Inst, Vienna, Austria
基金
美国国家科学基金会; 奥地利科学基金会; 俄罗斯基础研究基金会;
关键词
lignin; carbohydrate; permafrost soils; density fractionation; soil organic matter decomposition; mineral-associated organic matter; ORGANIC-MATTER FRACTIONS; STATE C-13 NMR; FOREST SOILS; CHEMICAL-COMPOSITION; SUBSOIL HORIZONS; OXIDATION-PRODUCTS; EARLY DIAGENESIS; TEMPERATE SOILS; CARBON STORAGE; NEUTRAL SUGARS;
D O I
10.1029/2020JG006181
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Permafrost-affected soils in the northern circumpolar region store more than 1,000 Pg soil organic carbon (OC), and are strongly vulnerable to climatic warming. However, the extent to which changing soil environmental conditions with permafrost thaw affects different compounds of soil organic matter (OM) is poorly understood. Here, we assessed the fate of lignin and non-cellulosic carbohydrates in density fractionated soils (light fraction, LF vs. heavy fraction, HF) from three permafrost regions with decreasing continentality, expanding from east to west of northern Siberia (Cherskiy, Logata, Tazovskiy, respectively). In soils at the Tazovskiy site with thicker active layers, the LF showed smaller OC-normalized contents of lignin-derived phenols and plant-derived sugars and a decrease of these compounds with soil depth, while a constant or even increasing trend was observed in soils with shallower active layers (Cherskiy and Logata). Also in the HF, soils at the Tazovskiy site had smaller contents of OC-normalized lignin-derived phenols and plant-derived sugars along with more pronounced indicators of oxidative lignin decomposition and production of microbial-derived sugars. Active layer deepening, thus, likely favors the decomposition of lignin and plant-derived sugars, that is, lignocelluloses, by increasing water drainage and aeration. Our study suggests that climate-induced degradation of permafrost soils may promote carbon losses from lignin and associated polysaccharides by abolishing context-specific preservation mechanisms. However, relations of OC-based lignin-derived phenols and sugars in the HF with mineralogical properties suggest that future OM transformation and carbon losses will be modulated in addition by reactive soil minerals.
引用
收藏
页数:22
相关论文
共 125 条
[1]   Determination of neutral and acidic sugars in soil by capillary gas-liquid chromatography after trifluoroacetic acid hydrolysis [J].
Amelung, W ;
Cheshire, MV ;
Guggenberger, G .
SOIL BIOLOGY & BIOCHEMISTRY, 1996, 28 (12) :1631-1639
[2]   Lignin in particle-size fractions of native grassland soils as influenced by climate [J].
Amelung, W ;
Flach, KW ;
Zech, W .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1999, 63 (05) :1222-1228
[3]  
Anderson MJ, 2001, AUSTRAL ECOL, V26, P32, DOI 10.1111/j.1442-9993.2001.01070.pp.x
[4]   Plant- or microbial-derived? A review on the molecular composition of stabilized soil organic matter [J].
Angst, Gerrit ;
Mueller, Kevin E. ;
Nierop, Klaas G. J. ;
Simpson, Myrna J. .
SOIL BIOLOGY & BIOCHEMISTRY, 2021, 156
[5]  
Anisimov O.A., 1999, Earths Cryology, V3, P15
[6]   The lignin content in virgin and cultivated peat soils of Belarussian Poles'e [J].
Bambalov, N. N. .
EURASIAN SOIL SCIENCE, 2007, 40 (11) :1175-1180
[7]   ANAEROBIC BIODEGRADATION OF THE LIGNIN AND POLYSACCHARIDE COMPONENTS OF LIGNOCELLULOSE AND SYNTHETIC LIGNIN BY SEDIMENT MICROFLORA [J].
BENNER, R ;
MACCUBBIN, AE ;
HODSON, RE .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1984, 47 (05) :998-1004
[8]   AN IN-SITU ATR-FTIR STUDY - THE SURFACE COORDINATION OF SALICYLIC-ACID ON ALUMINUM AND IRON(III) OXIDES [J].
BIBER, MV ;
STUMM, W .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1994, 28 (05) :763-768
[9]   Organic matter dynamics along a salinity gradient in Siberian steppe soils [J].
Bischoff, Norbert ;
Mikutta, Robert ;
Shibistova, Olga ;
Dohrmann, Reiner ;
Herdtle, Daniel ;
Gerhard, Lukas ;
Fritzsche, Franziska ;
Puzanov, Alexander ;
Silanteva, Marina ;
Grebennikova, Anna ;
Guggenberger, Georg .
BIOGEOSCIENCES, 2018, 15 (01) :13-29
[10]  
Bluthgen J., 1980, ALLGEMEINE KLIMAGEGR