Community metabolism and carbon budget along a gradient of seagrass (Cymodocea nodosa) colonization

被引:88
作者
Barrón, C
Marba, N
Terrados, J
Kennedy, H
Duarte, CM
机构
[1] UIB, CSIC, IMEDEA, Grp Oceanog Interdisciplinar, C Miquel Marques 21, Esporles 07190, Islas Baleares, Spain
[2] Univ Wales Bangor, Sch Ocean Sci, Menai Bridge LL59 5EY, Gwynedd, Wales
[3] UIB, CSIC, IMEDEA, Grp Oceanog Interdisciplinar, Esporles 07190, Islas Baleares, Spain
关键词
D O I
10.4319/lo.2004.49.5.1642
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
We studied the effect of seagrass (Cymodocea nodosa) colonization on community metabolism and sediment conditions. The biomass of C nodosa increased with time after seagrass colonization. The biomass increased steadily during the 6.1 yr of colonization to 9.1 mol C m(-2). Gross primary production increased from 7 to 49.3 mmol C m(-2) d(-1) during the first stages of the colonization and then decreased to 20 mmol C m(-2) d(-1) at a time when the biomass was in excess of 6 Mol C m(-2). Net dissolved organic carbon (DOC) fluxes increased with time after colonization, shifting from a net uptake in patches younger than 2 yr to a net release in older patches. Community respiration (R) increased with the seagrass colonization, leading to a shift from net autotrophy in the unvegetated sediment community to net heterotrophy after C. nodosa colonization. The increase in net heterotrophy with seagrass colonization was reflected in the development of reducing conditions in the sediment. To maintain a net heterotrophic benthic metabolism and net DOC release, the C. nodosa community must receive an input of organic matter (OM) from an allochthonous source. OM inputs from sestonic material trapped by the seagrass canopy exceed 157 mmol C m(-2) d(-1) in developed C. nodosa communities. Thus, the seagrass community acts as an important link between the pelagic and benthic communities by trapping sestonic organic carbon.
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页码:1642 / 1651
页数:10
相关论文
共 40 条
[1]   Evidence of direct particle trapping by a tropical seagrass meadow [J].
Agawin, NSR ;
Duarte, GM .
ESTUARIES, 2002, 25 (6A) :1205-1209
[2]  
[Anonymous], 1992, STAND METH EX WAT WA
[3]  
[Anonymous], 2011, LIGHT PHOTOSYNTHESIS
[4]   Fate of production of the seagrass Cymodocea nodosa in different stages of meadow formation [J].
Cebrián, J ;
Pedersen, MF ;
Kroeger, KD ;
Valiela, I .
MARINE ECOLOGY PROGRESS SERIES, 2000, 204 :119-130
[5]   SPECTROPHOTOMETRIC DETERMINATION OF HYDROGEN SULFIDE IN NATURAL WATERS [J].
CLINE, JD .
LIMNOLOGY AND OCEANOGRAPHY, 1969, 14 (03) :454-&
[8]   The fate of marine autotrophic production [J].
Duarte, CM ;
Cebrian, J .
LIMNOLOGY AND OCEANOGRAPHY, 1996, 41 (08) :1758-1766
[9]   Seagrass biomass and production: a reassessment [J].
Duarte, CM ;
Chiscano, CL .
AQUATIC BOTANY, 1999, 65 (1-4) :159-174
[10]   The future of seagrass meadows [J].
Duarte, CM .
ENVIRONMENTAL CONSERVATION, 2002, 29 (02) :192-206