Strengthening the soil organic carbon pool by increasing contributions from recalcitrant aliphatic bio(macro)molecules

被引:304
作者
Lorenz, Klaus [1 ]
Lal, Rattan
Preston, Caroline M.
Nierop, Klaas G. J.
机构
[1] Ohio State Univ, Sch Environm & Nat Resources, Carbon Management & Sequestrat Ctr, Columbus, OH 43210 USA
[2] Nat Resources Canada, Pacific Forestry Ctr, Victoria, BC V8Z 1M5, Canada
[3] Univ Amsterdam, Inst Biodivers & Ecosyst Dynam, NL-1018 WV Amsterdam, Netherlands
关键词
recalcitrant bio(macro)molecules; alkyl carbon; aliphatic compounds; plant lipids; microbial lipids; animal lipids; soil carbon sequestration;
D O I
10.1016/j.geoderma.2007.07.013
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Photosynthetically fixed CO2 is converted into terrestrial bio(macro)molecules and sequestered as soil organic matter (SOM) by (bio)chemical and physical stabilization processes. SOM is generally divided in arbitrary pools for modeling SOM dynamics. Biochemically recalcitrant SOM fractions are enriched with alkyl carbon (C) structures and resist decomposition due to intrinsic molecular properties. The proportion of alkyl C and the mean age of SOM increase with increase in soil depth. Precursors of these recalcitrant bio(macro)molecules such as glycerides, waxes, and terpenoids occur in plants, microorganisms and animals. The intrinsic biochemical stability of naturally occurring recalcitrant aliphatic biomacromolecules may enhance the terrestrial storage of atmospheric CO2. Also, aliphatic macromolecules may be formed in soils upon nonenzymatic polymerization of low-molecular-weight lipids. In this review we propose that increasing the soil organic carbon (SOC) pool by land-use and management practices should also include strategies to increase the proportion of aliphatic compounds in the belowground biomass. Thus, collaborative research is needed to study the fate of plant-, microbial- and animal-derived aliphatic C as precursors for stabilized aliphatic SOC fractions, in particular in deeper soil horizons. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:1 / 10
页数:10
相关论文
共 118 条
[1]   Incorporation of plant carbon into the soil animal food web of an arable system [J].
Albers, D ;
Schaefer, M ;
Scheu, S .
ECOLOGY, 2006, 87 (01) :235-245
[2]  
[Anonymous], HUMIC SUBSTANCES TER
[3]   Bomb 14C enrichment indicates decadal C pool in deep soil? [J].
Baisden, W. Troy ;
Parfitt, Roger L. .
BIOGEOCHEMISTRY, 2007, 85 (01) :59-68
[4]   Assessing the extent of decomposition of natural organic materials using solid-state C-13 NMR spectroscopy [J].
Baldock, JA ;
Oades, JM ;
Nelson, PN ;
Skene, TM ;
Golchin, A ;
Clarke, P .
AUSTRALIAN JOURNAL OF SOIL RESEARCH, 1997, 35 (05) :1061-1083
[5]   Cycling and composition of organic matter in terrestrial and marine ecosystems [J].
Baldock, JA ;
Masiello, CA ;
Gélinas, Y ;
Hedges, JI .
MARINE CHEMISTRY, 2004, 92 (1-4) :39-64
[6]  
Bernards MA, 2002, CAN J BOT, V80, P227, DOI [10.1139/B02-017, 10.1139/b02-017]
[7]   PROPERTIES AND COMPOSITION OF SOIL ORGANIC-MATTER IN FOREST AND ARABLE SOILS OF SCHLESWIG-HOLSTEIN .1. COMPARISON OF MORPHOLOGY AND RESULTS OF WET CHEMISTRY, CPMAS-C-13-NMR SPECTROSCOPY AND PYROLYSIS-FIELD IONIZATION MASS-SPECTROMETRY [J].
BEYER, L ;
SCHULTEN, HR ;
FRUND, R .
ZEITSCHRIFT FUR PFLANZENERNAHRUNG UND BODENKUNDE, 1992, 155 (04) :345-354
[8]   Cutan, a common aliphatic biopolymer in cuticles of drought-adapted plants [J].
Boom, A ;
Damsté, JSS ;
de Leeuw, JW .
ORGANIC GEOCHEMISTRY, 2005, 36 (04) :595-601
[9]  
BOOM A, 2004, THESIS U AMSTERDAM
[10]  
BRIGGS DEG, 1998, ANCIENT BIOMOLECULES, V2, P135