Impact of vegetation on the methane budget of a temperate forest

被引:35
作者
Plain, Caroline [1 ]
Ndiaye, Fatou-Kine [1 ]
Bonnaud, Pascal [2 ]
Ranger, Jacques [2 ]
Epron, Daniel [1 ]
机构
[1] Univ Lorraine, AgroParisTech, INRA, UMR Silva, F-54000 Nancy, France
[2] INRA, UR BEF, F-54000 Nancy, France
关键词
forest soil; Glyceria striata; greenhouse gas; Juncus effusus; methane; methanotrophy; Quercus petraea; WATER-TABLE; PINUS-SYLVESTRIS; CARBON TURNOVER; VASCULAR PLANTS; EMISSIONS; SOIL; OXIDATION; METHANOGENESIS; CONSUMPTION; NITROGEN;
D O I
10.1111/nph.15452
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Upland forest soils are known to be the main biological sink for methane, but studies have shown that net methane uptake of a forest ecosystem can be reduced when methane emissions by vegetation are considered. We estimated the methane budget of a young oak plantation by considering tree stems but also the understorey vegetation. Automated chambers connected to a laser-based gas analyser, on tree stems, bare soil and soil covered with understorey vegetation, recorded CH4 fluxes for 7 months at 3 h intervals. Tree stem emissions were low and equated to only 0.1% of the soil sink. Conversely, the presence of understorey vegetation increased soil methane uptake. This plant-driven enhancement of CH4 uptake occurred when the soil was consuming methane. At the stand level, the methane budget shifted from -1.40.4 kg C ha(-1) when we upscaled data obtained only on bare soil, to -2.9 +/- 0.6 kg C ha(-1) when we considered soil area that was covered with understorey vegetation. These results indicate that aerenchymatous plant species, which are known to reduce the methane sink in wetlands, actually increase soil methane uptake two-fold in an upland forest by enhancing methane and oxygen transport and/or by promoting growth of methanotrophic populations.
引用
收藏
页码:1447 / 1456
页数:10
相关论文
共 59 条
[1]   Methane flux in non-wetland soils in response to nitrogen addition: a meta-analysis [J].
Aronson, E. L. ;
Helliker, B. R. .
ECOLOGY, 2010, 91 (11) :3242-3251
[2]   Methane transport and emissions from soil as affected by water table and vascular plants [J].
Bhullar, Gurbir S. ;
Iravani, Majid ;
Edwards, Peter J. ;
Venterink, Harry Olde .
BMC ECOLOGY, 2013, 13
[3]   Variation in the plant-mediated methane transport and its importance for methane emission from intact wetland peat mesocosms [J].
Bhullar, Gurbir S. ;
Edwards, Peter J. ;
Venterink, Harry Olde .
JOURNAL OF PLANT ECOLOGY, 2013, 6 (04) :298-304
[4]   Global methane emission estimates from ultraviolet irradiation of terrestrial plant foliage [J].
Bloom, A. Anthony ;
Lee-Taylor, Julia ;
Madronich, Sasha ;
Messenger, David J. ;
Palmer, Paul I. ;
Reay, David S. ;
McLeod, Andy R. .
NEW PHYTOLOGIST, 2010, 187 (02) :417-425
[5]   Interactions between methane and the nitrogen cycle in light of climate change [J].
Bodelier, Paul L. E. ;
Steenbergh, Anne K. .
CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY, 2014, 9-10 :26-36
[6]   Nitrogen as a regulatory factor of methane oxidation in soils and sediments [J].
Bodelier, PLE ;
Laanbroek, HJ .
FEMS MICROBIOLOGY ECOLOGY, 2004, 47 (03) :265-277
[7]   Impact of heavy traffic on soil macroporosity of two silty forest soils: Initial effect and short-term recovery [J].
Bottinelli, N. ;
Hallaire, V. ;
Goutal, N. ;
Bonnaud, P. ;
Ranger, J. .
GEODERMA, 2014, 217 :10-17
[8]   Terrestrial plant methane production and emission [J].
Bruhn, Dan ;
Moller, Ian M. ;
Mikkelsen, Teis N. ;
Ambus, Per .
PHYSIOLOGIA PLANTARUM, 2012, 144 (03) :201-209
[9]   FACTORS CONTROLLING ATMOSPHERIC METHANE CONSUMPTION BY TEMPERATE FOREST SOILS [J].
CASTRO, MS ;
STEUDLER, PA ;
MELILLO, JM ;
ABER, JD ;
BOWDEN, RD .
GLOBAL BIOGEOCHEMICAL CYCLES, 1995, 9 (01) :1-10
[10]   RADIOCARBON EVIDENCE FOR THE SUBSTRATES SUPPORTING METHANE FORMATION WITHIN NORTHERN MINNESOTA PEATLANDS [J].
CHANTON, JP ;
BAUER, JE ;
GLASER, PA ;
SIEGEL, DI ;
KELLEY, CA ;
TYLER, SC ;
ROMANOWICZ, EH ;
LAZRUS, A .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1995, 59 (17) :3663-3668