Relation between methanogenic archaea and methane production potential in selected natural wetland ecosystems across China

被引:82
作者
Liu, D. Y. [1 ]
Ding, W. X. [1 ]
Jia, Z. J. [1 ]
Cai, Z. C. [1 ]
机构
[1] Chinese Acad Sci, Inst Soil Sci, State Key Lab Soil & Sustainable Agr, Nanjing 210008, Peoples R China
关键词
INTERANNUAL VARIATIONS; SPARTINA-ALTERNIFLORA; CH4; PRODUCTION; NEW-YORK; EMISSIONS; COMMUNITIES; TEMPERATURE; PEATLAND; BOG; OXIDATION;
D O I
10.5194/bg-8-329-2011
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Methane (CH4) emissions from natural wetland ecosystems exhibit large spatial variability at regional, national, and global levels related to temperature, water table, plant type and methanogenic archaea etc. To understand the underlying factors that induce spatial differences in CH4 emissions, and the relationship between the population of methanogenic archaea and CH4 production potential in natural wetlands around China, we measured the CH4 production potential and the abundance of methanogenic archaea in vertical soil profiles sampled from the Poyang wetland in the subtropical zone, the Hongze wetland in the warm temperate zone, the Sanjiang marsh in the cold temperate zone, and the Ruoergai peatland in the Qinghai-Tibetan Plateau in the alpine climate zone. The top soil layer had the highest population of methanogens (1.07-8.29 x 10(9) cells g(-1) soil) in all wetlands except the Ruoergai peatland and exhibited the maximum CH4 production potential measured at the mean in situ summer temperature. There is a significant logarithmic correlation between the abundance of methanogenic archaea and the soil organic carbon (R-2 = 0.72, P < 0.001, n = 13) and between the abundance of methanogenic archaea and the total nitrogen concentrations (R-2 = 0.76, P < 0.001, n = 13) in wetland soils. This indicates that the amount of soil organic carbon may affect the population of methanogens in wetland ecosystems. While the CH4 production potential is not significantly related to methanogen population (R-2 = 0.01, P > 0.05, n = 13), it is related to the dissolved organic carbon concentration (R-2 = 0.31, P = 0.05, n = 13). This suggests that the methanogen population might be not an effective index for predicting the CH4 production in wetland ecosystems. The CH4 production rate of the top soil layer increases with increasing latitude, from 273.64 mu g CH4 kg(-1) soil d(-1) in the Poyang wetland to 664.59 mu g CH4 kg(-1) soil d(-1) in the Carex lasiocarpa marsh of the Sanjiang Plain. We conclude that CH4 production potential in the freshwater wetlands of Eastern China is mainly affected by the supply of methanogenic substrates rather than temperature; in contrast, low summer temperatures at high elevations in the Ruoergai peatland of the Qinghai-Tibetan Plateau result in the presence of dominant species of methanogens with low CH4 production potential, which in turn suppresses CH4 production.
引用
收藏
页码:329 / 338
页数:10
相关论文
共 62 条
[1]   Methane flux from created riparian marshes: Relationship to intermittent versus continuous inundation and emergent macrophytes [J].
Altor, Anne E. ;
Mitsch, William J. .
ECOLOGICAL ENGINEERING, 2006, 28 (03) :224-234
[2]   Effect of seasonal changes in the pathways of methanogenesis on the δ13C values of pore water methane in a Michigan peatland [J].
Avery, GB ;
Shannon, RD ;
White, JR ;
Martens, CS ;
Alperin, MJ .
GLOBAL BIOGEOCHEMICAL CYCLES, 1999, 13 (02) :475-484
[3]   Controls on methane production in a tidal freshwater estuary and a peatland: Methane production via acetate fermentation and CO2 reduction [J].
G. Brooks Avery ;
Robert D. Shannon ;
Jeffrey R. White ;
Christopher S. Martens ;
Marc J. Alperin .
Biogeochemistry, 2003, 62 (1) :19-37
[4]   METHANE EMISSIONS FROM TUNDRA ENVIRONMENTS IN THE YUKON-KUSKOKWIM DELTA, ALASKA [J].
BARTLETT, KB ;
CRILL, PM ;
SASS, RL ;
HARRISS, RC ;
DISE, NB .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1992, 97 (D15) :16645-16660
[5]  
Bergman I, 2000, FEMS MICROBIOL ECOL, V33, P181, DOI 10.1111/j.1574-6941.2000.tb00740.x
[6]   Regulation of methane production in a Swedish acid mire by pH, temperature and substrate [J].
Bergman, I ;
Svensson, BH ;
Nilsson, M .
SOIL BIOLOGY & BIOCHEMISTRY, 1998, 30 (06) :729-741
[7]   Large-Scale Controls of Methanogenesis Inferred from Methane and Gravity Spaceborne Data [J].
Bloom, A. Anthony ;
Palmer, Paul I. ;
Fraser, Annemarie ;
Reay, David S. ;
Frankenberg, Christian .
SCIENCE, 2010, 327 (5963) :322-325
[8]   Methanogenesis in McLean Bog, an acidic peat bog in upstate New York:: Stimulation by H2/CO2 in the presence of rifampicin, or by low concentrations of acetate [J].
Bräuer, SL ;
Yavitt, JB ;
Zinder, SH .
GEOMICROBIOLOGY JOURNAL, 2004, 21 (07) :433-443
[9]   METHANE EMISSIONS FROM WETLANDS IN THE MIDBOREAL REGION OF NORTHERN ONTARIO, CANADA [J].
BUBIER, JL ;
MOORE, TR ;
ROULET, NT .
ECOLOGY, 1993, 74 (08) :2240-2254
[10]   Vertical profiles of methanogenesis and methanogens in two contrasting acidic peatlands in central New York State, USA [J].
Cadillo-Quiroz, Hinsby ;
Brauer, Suzanna ;
Yashiro, Erika ;
Sun, Christine ;
Yavitt, Joseph ;
Zinder, Stephen .
ENVIRONMENTAL MICROBIOLOGY, 2006, 8 (08) :1428-1440