Rice roots and methanogenesis in a paddy soil: ferric iron as an alternative electron acceptor in the rooted soil

被引:134
作者
Frenzel, P [1 ]
Bosse, U [1 ]
Janssen, PH [1 ]
机构
[1] Max Planck Inst Terr Mikrobiol, D-35043 Marburg, Germany
关键词
D O I
10.1016/S0038-0717(98)00144-8
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Irrigated rice fields are among the major sources of the greenhouse gas CH4. To get a better understanding of the controls of CH4 production we used microcosms planted with rice and studied emission, porewater chemistry and the potential role of ferric iron as a competitive electron acceptor. CH4 emission from rice microcosms peaked after 60 d when porewater CH4 concentrations in the unrooted soil also reached their highest values. A rested soil layer with low CH4 concentrations and high E-h developed on top of the lower unrooted soil. When measured in vitro. methanogenesis in the rooted upper soil layer started at a very low rate, but increased dramatically after 25-40 d when ferric iron reduction had stopped. If mixtures of the upper soil layer and of lower unrooted soil layer were incubated, the length of the lag phase depended linearly on the proportion of soil from the upper layer. In the lower soil layer, methanogenesis started immediately at high rates. The gross mineralization rate in both soil layers was identical. There was no difference or change in the numbers of culturable methanogens between the two layers, either at the beginning or at the end of the experiment. Hence, the lag phase in methane production by the upper soil layer may have been caused either by competition for substrates or by direct inhibition, but not by population growth. O-2 release from rice roots controls methanogenesis in the rooted upper soil layer either directly or by the oxidation of ferrous iron. Our data suggest that the presence of ferric iron, resulting from the input of oxygen via the roots, results in a shift of electron flow from methanogenesis to ferric iron reduction. This interaction can be assumed to be of major importance for the biogeochemistry of CH4 in wetland ricefields. (C) 1999 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:421 / 430
页数:10
相关论文
共 55 条
[41]   Organic carbon oxidation and suppression of methane production by microbial Fe(III) oxide reduction in vegetated and unvegetated freshwater wetland sediments [J].
Roden, EE ;
Wetzel, RG .
LIMNOLOGY AND OCEANOGRAPHY, 1996, 41 (08) :1733-1748
[42]  
ROTHFUSS F, 1994, FEMS MICROBIOL ECOL, V14, P307, DOI 10.1016/0168-6496(94)90114-7
[43]   Combination of photoacoustic detector with gas diffusion probes for the measurement of methane concentration gradients in submerged paddy soil [J].
Rothfuss, F ;
Bijnen, FGC ;
Conrad, R ;
Harren, FJM ;
Reuss, J .
CHEMOSPHERE, 1996, 33 (12) :2487-2504
[44]  
ROTHFUSS F, 1994, NATO ASI SERIES G, V35, P167
[45]   METHANE PRODUCTION AND EMISSION IN A TEXAS RICE FIELD [J].
Sass, R. ;
Fisher, F. ;
Harcombe, P. ;
Turner, F. .
GLOBAL BIOGEOCHEMICAL CYCLES, 1990, 4 (01) :47-68
[46]  
SCHULZ S, 1995, FEMS MICROBIOL ECOL, V16, P251, DOI 10.1016/0168-6496(94)00088-E
[47]   A 3-YEAR CONTINUOUS RECORD ON THE INFLUENCE OF DAYTIME, SEASON, AND FERTILIZER TREATMENT ON METHANE EMISSION RATES FROM AN ITALIAN RICE PADDY [J].
SCHUTZ, H ;
HOLZAPFELPSCHORN, A ;
CONRAD, R ;
RENNENBERG, H ;
SEILER, W .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1989, 94 (D13) :16405-16416
[48]  
SCHUTZ H, 1989, BIOGEOCHEMISTRY, V7, P33, DOI 10.1007/BF00000896
[49]   GROWTH-YIELD INCREASE LINKED TO CAFFEATE REDUCTION IN ACETOBACTERIUM-WOODII [J].
TSCHECH, A ;
PFENNIG, N .
ARCHIVES OF MICROBIOLOGY, 1984, 137 (02) :163-167
[50]   DECREASE OF METHANE CONCENTRATION AND INCREASE OF NITROGEN GAS CONCENTRATION IN THE RHIZOSPHERE BY HYGROPHYTES [J].
WAGATSUMA, T ;
JUJO, K ;
TAWARAYA, K ;
SATO, T ;
UEKI, A .
SOIL SCIENCE AND PLANT NUTRITION, 1992, 38 (03) :467-476