HR: 1330h
AN: OS23A-16 [Abstracts]
TI: Abundance and Bulk Composition of DOM in the Lower Mississippi and Pearl Rivers (USA)
AU: * Duan, S
EM: sduan@tulalne.edu
AF: Tulane University, Dept. of EENS, 120 Dinwinddie Hall, New Orleans, LA 70118
AU: Bianchi, T S
EM: tbianch@tulane.edu
AF: Tulane University, Dept. of EENS, 120 Dinwinddie Hall, New Orleans, LA 70118
AU: Shiller, A M
EM: alan.shiller@usm.edu
AF: University of Southern Mississippi, Dept. of Marine Science, Stennis Space Center, MS 39529
AU: Dria, K
EM: kdria@purdue.edu
AF: Ohio State University, Chemistry Dept., Columbus, OH 43210
AU: Hatcher, P G
EM: hatcher@chemistry.ohio-state.edu
AF: Ohio State University, Chemistry Dept., Columbus, OH 43210
AB:
Here we report on temporal changes in the composition of dissolved organic carbon (DOC) and nitrogen (DON) collected in the
tidal freshwater region of the lower Mississippi and Pearl Rivers (MR and PR) (USA). Bulk stable carbon isotopes and 13C
nuclear magnetic resonance (NMR) spectrometry were used to examine the composition of high molecular weight (< 0.2 æm > 1 kDa) dissolved organic matter (HMW DOM). Monthly water samples were collected at one station in each river from August 2001 to July 2003. Surveys of spatial variability (225 km downstream in the MR and from Jackson to Stennis Space Center in the
PR) in total DOC and DON were also conducted in both rivers in June 2003. Higher total DOC (336 to 1156 uM), DON (9.3 to
59.5 uM), % HMW DOM (25 to 47 %), ultraviolet (UV) absorption (0.13 to 0.70 /m), and more depleted delta-15N (0.76 to 2.16 per mil) delta-13C (-25.1 to -28.0 permil) were observed in the PR than in the lower MR (223 to 380 uM, 6.1 to 13.4 uM, 16
to 38 %, 0.08 to 0.17 /m, 0.76 to 2.16 permil, -25.7 to -27.1 permil, respectively). 13C-NMR spectra revealed that alkyl
and carbohydrate carbons were dominant in HMW DOC in both rivers. However, a significantly lower percentage of aromatic C
(13.2 to 16.6 %) and higher carboxyl C (17.1 to 25.8 %) were observed in the lower MR than in the PR (16.9 to 21.3 % and
12.3 to 20.9 %). Total DOC, DON, HMW DOM, and percent aromaticity of HMW DOM were higher in the PR during local flooding
events, and lower during low discharge, indicating a coupling between local carbon inputs (soil and wetlands) and regional
precipitation events in the PR. Conversely, seasonal variability of total DOC, DON, and HMW DOM in the lower MR was
controlled by spatial variability of an integrative signal from watershed inputs and in-situ production from upriver sources, resulting in a more phytoplankton-derived 13C-NMR signature of HMW DOM. Spatially, very little change occurred in total
DOC (259 to 282 uM) and DON (8.85 to 13.3 uM) in the downstream survey of the lower MR, compared to decreases of 24 % and 50 % in DOC and DON, respectively, in the PR. Once again local inputs are more important in the PR compared to the MR and
likely account for higher variability. Recent lab incubation experiments also suggest that photochemical oxidation, coupled
with bacterial degradation of DOM, accounts for significant alteration of DOM in these lower floodplain rivers.
DE: 4805 Biogeochemical cycles (1615)
SC: Ocean Sciences [OS]
MN: 2005 Joint Assembly