Nitrogen dynamics at the sediment-water interface in shallow, sub-tropical Florida Bay: why denitrification efficiency may decrease with increased eutrophication

被引:139
作者
Gardner, Wayne S. [1 ]
McCarthy, Mark J. [1 ]
机构
[1] Univ Texas Austin, Inst Marine Sci, Port Aransas, TX 78373 USA
关键词
Florida Bay; Nitrogen transformations; DNRA; Denitrification; Subtropical/tropical ecosystems; DISSIMILATORY NITRATE REDUCTION; LONG-TERM TRENDS; SEAGRASS THALASSIA-TESTUDINUM; ANAEROBIC AMMONIUM OXIDATION; INNER-SHELF LAGOON; FRESH-WATER; CYANOBACTERIAL BLOOM; TURTLE GRASS; DIE-OFF; LIMITATION;
D O I
10.1007/s10533-009-9329-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Nitrogen (N) dynamics at the sediment-water interface were examined in four regions of Florida Bay to provide mechanistic information on the fate and effects of increased N inputs to shallow, subtropical, coastal environments. Dissimilatory nitrate (NO3 (-)) reduction to ammonium (DNRA) was hypothesized to be a significant mechanism retaining bioreactive N in this warm, saline coastal ecosystem. Nitrogen dynamics, phosphorus (P) fluxes, and sediment oxygen demand (SOD) were measured in north-central (Rankin Key; eutrophic), north-eastern (Duck Key; high N to P seston ratios), north-western (Murray Key; low N to P ratios), and central (Rabbit Key; typical central site) Florida Bay in August 2004, January 2005, and November 2006. Site water was passed over intact sediment cores, and changes in oxygen (O-2), phosphate (o-PO4 (3-)), ammonium (NH4 (+)), NO3 (-), nitrite (NO2 (-)), and N-2 concentrations were measured, without and with addition of excess (NO3)-N-15 (-) or (NH4)-N-15 (+) to inflow water. These incubations provided estimates of SOD, nutrient fluxes, N-2 production, and potential DNRA rates. Denitrification rates were lowest in summer, when SOD was highest. DNRA rates and NH4 (+) fluxes were high in summer at the eutrophic Rankin site, when denitrification rates were low and almost no N-2 came from added (NO3)-N-15 (-). Highest (NH4)-N-15 (+) accumulation, resulting from DNRA, occurred at Rabbit Key during a picocyanobacteria bloom in November. (NH4)-N-15 (+) accumulation rates among the stations correlated with SOD in August and January, but not in November during the algal bloom. These mechanistic results help explain why bioreactive N supply rates are sometimes high in Florida Bay and why denitrification efficiency may decrease with increased NO3 (-) inputs in sub-tropical coastal environments.
引用
收藏
页码:185 / 198
页数:14
相关论文
共 48 条
[1]   Dissimilatory nitrate reduction to ammonium (DNRA) as a nitrogen link, versus denitrification as a sink in a shallow estuary (Laguna Madre/Baffin Bay, Texas) [J].
An, SM ;
Gardner, WS .
MARINE ECOLOGY PROGRESS SERIES, 2002, 237 :41-50
[2]   Simultaneous measurement of denitrification and nitrogen fixation using isotope pairing with membrane inlet mass spectrometry analysis [J].
An, SM ;
Gardner, WS ;
Kana, T .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2001, 67 (03) :1171-1178
[3]  
Bianchi T.S., 1999, BIOGEOCHEMISTRY GULF
[4]   Seasonal and long-term trends in the water quality of Florida Bay (1989-1997) [J].
Boyer, JN ;
Fourqurean, JW ;
Jones, RD .
ESTUARIES, 1999, 22 (2B) :417-430
[5]   Spatial characterization of water quality in Florida Bay and Whitewater Bay by multivariate analyses: Zones of similar influence [J].
Boyer, JN ;
Fourqurean, JW ;
Jones, RD .
ESTUARIES, 1997, 20 (04) :743-758
[6]   Sulfide-induced dissimilatory nitrate reduction to ammonia in anaerobic freshwater sediments [J].
Brunet, RC ;
GarciaGil, LJ .
FEMS MICROBIOLOGY ECOLOGY, 1996, 21 (02) :131-138
[7]  
Burgin AJ, 2007, FRONT ECOL ENVIRON, V5, P89, DOI 10.1890/1540-9295(2007)5[89:HWOTRO]2.0.CO
[8]  
2
[9]   Sediment mineralization, nutrient fluxes, denitrification and dissimilatory nitrate reduction to ammonium in an estuarine fjord with sea cage trout farms [J].
Christensen, PB ;
Rysgaard, S ;
Sloth, NP ;
Dalsgaard, T ;
Schwærter, S .
AQUATIC MICROBIAL ECOLOGY, 2000, 21 (01) :73-84
[10]   Denitrification in coastal ecosystems: methods, environmental controls, and ecosystem level controls, a review [J].
Jeffrey C. Cornwell ;
W. Michael Kemp ;
Todd M. Kana .
Aquatic Ecology, 1999, 33 (1) :41-54