Assessing sources and ages of organic matter supporting river and estuarine bacterial production:: A multiple-isotope (Δ14C, δ13C, and δ15N) approach

被引:131
作者
McCallister, SL
Bauer, JE
Cherrier, JE
Ducklow, HW
机构
[1] Coll William & Mary, Sch Marine Sci, Gloucester Point, VA 23062 USA
[2] Florida A&M Univ, Inst Environm Sci, Tallahassee, FL 32307 USA
关键词
D O I
10.4319/lo.2004.49.5.1687
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
We used radiocarbon (Delta(14)C) and stable isotopic (delta(13)C, delta(15)N) signatures of bacterial nucleic acids to estimate the sources and ages of organic matter (OM) assimilated by bacteria in the Hudson River and York River estuary. Dual-isotope plots Of Delta(14)C and delta(13)C coupled with a three-source mixing model resolved the major OM sources supporting bacterial biomass production (BBP). However, overlap in the stable isotopic (delta(13)C and delta(15)N) values of potential source end members (i.e., terrestrial, freshwater phytoplankton, and marsh-derived) prohibited unequivocal source assignments for certain samples. In freshwater regions of the York, terrigenous material of relatively recent origin (i.e., decadal in age) accounted for the majority of OM assimilated by bacteria (49-83%). Marsh and freshwater planktonic material made up the other major source of OM, with 5-33% and 6-25% assimilated, respectively. In the mesohaline York, BBP was supported primarily by estuarine phytoplankton-derived OM during spring and summer (53-87%) and by marsh-derived OM during fall (as much as 83%). Isotopic signatures from higher salinity regions of the York suggested that BBP there was fueled predominantly by either estuarine phytoplankton-derived OM (July and November) or by material advected in from the Chesapeake Bay proper (October). In contrast to the York, BBP in the Hudson River estuary was subsidized by a greater portion (up to similar to25%) of old (similar to24,000 yr BP) allochthonous OM, which was presumably derived from soils. These findings collectively suggest that bacterial metabolism and degradation in rivers and estuaries may profoundly alter the mean composition and age of OM during transport within these systems and before its export to the coastal ocean.
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页码:1687 / 1702
页数:16
相关论文
共 66 条
[31]   A simple, efficient method for the separation of humic substances and DNA from environmental samples [J].
Jackson, CR ;
Harper, JP ;
Willoughby, D ;
Roden, EE ;
Churchill, PF .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1997, 63 (12) :4993-4995
[32]   SORPTIVE PRESERVATION OF LABILE ORGANIC-MATTER IN MARINE-SEDIMENTS [J].
KEIL, RG ;
MONTLUCON, DB ;
PRAHL, FG ;
HEDGES, JI .
NATURE, 1994, 370 (6490) :549-552
[33]   THE UPTAKE OF INORGANIC NUTRIENTS BY HETEROTROPHIC BACTERIA [J].
KIRCHMAN, DL .
MICROBIAL ECOLOGY, 1994, 28 (02) :255-271
[34]   Resuspension-induced partitioning of organic carbon between solid and solution phases from a river-ocean transition [J].
Komada, T ;
Reimers, CE .
MARINE CHEMISTRY, 2001, 76 (03) :155-174
[35]  
LAJTHA K, 1994, STABLE ISOTAPES ECOL
[36]   Twenty years of atmospheric 14CO2 observations at Schauinsland station, Germany [J].
Levin, I ;
Kromer, B .
RADIOCARBON, 1997, 39 (02) :205-218
[37]   Terrigenous dissolved organic matter along an estuarine gradient and its flux to the coastal ocean [J].
Mannino, A ;
Harvey, HR .
ORGANIC GEOCHEMISTRY, 2000, 31 (12) :1611-1625
[38]  
MANTOURA RFC, 1983, GEOCHIM COSMOCHIM AC, V47, P1293, DOI 10.1016/0016-7037(83)90069-8
[39]  
MCCALLISTER SL, 2002, THESIS SCH MARINE SC
[40]  
MICHENER RH, 1994, METHODS ECOLOGY STAB, P138