Phosphorus cycling in wetland soils: The importance of phosphate diesters

被引:113
作者
Turner, BL
Newman, S
机构
[1] Smithsonian Trop Res Inst, Balboa 03092, Ancon, Panama
[2] S Florida Water Management Dist, Everglades Div, W Palm Beach, FL 33406 USA
关键词
D O I
10.2134/jeq2005.0060
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Productivity in P limited peatlands is regulated in part by the turnover of organic phosphates, which is influenced by the chemical nature of the compounds involved. We used solution P-31 nuclear magnetic resonance (NMR) spectroscopy to quantify organic and inorganic phosphates in benthic floc (a mixture of plant detritus and algae) and underlying soil from sites along P gradients in hard water and soft water areas of the northern Florida Everglades, USA. Phosphorus-enriched sites were dominated by cattail (Typha spp.), while unenriched sites included sawgrass (Cladium jamaicense Crantz) ridges and open-water sloughs. Phosphorus extracted in a solution containing 0.25 M NaOH and 50 mM EDTA (ethylenediaminetetraaeetate) included phosphate, phosphate monoesters, DNA, and pyrophosphate. Signals from phosphate monoesters were consistent with those from alkaline hydrolysis products of RNA and phospholipids formed during extraction and analysis, whereas phytic acid (myoinositol hexakisphosphate), the most abundant organic phosphate in most soils, was not detected. Phosphorus composition was similar among sites, although neither DNA nor pyrophosphate were detected in extracts of benthic floc from a calcareous slough. DNA was a greater proportion of the P extracted from soil compared to benthic floc, while the opposite was true for pyrophosphate. Research on the cycling of organic phosphates in wetlands focuses conventionally on the turnover of phosphate monoesters, but our results suggest strongly that greater emphasis should be given to understanding the role of phosphate diesters and phosphodiesterase activity.
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页码:1921 / 1929
页数:9
相关论文
共 43 条
[1]  
Anderson G., 1967, SOIL BIOCH, P67
[2]   BASIC EDTA AS AN EXTRACTANT FOR SOIL ORGANIC PHOSPHORUS [J].
BOWMAN, RA ;
MOIR, JO .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1993, 57 (06) :1516-1518
[3]   TRANSFORMATIONS OF ORGANIC PHOSPHORUS SUBSTRATES IN SOILS AS EVALUATED BY NAHCO3 EXTRACTION [J].
BOWMAN, RA ;
COLE, CV .
SOIL SCIENCE, 1978, 125 (01) :49-54
[4]   Phosphorus forms and related soil chemistry of Podzolic soils on northern Vancouver Island. I. A comparison of two forest types [J].
Cade-Menun, BJ ;
Berch, SM ;
Preston, CM ;
Lavkulich, LM .
CANADIAN JOURNAL OF FOREST RESEARCH, 2000, 30 (11) :1714-1725
[5]   A comparison of soil extraction procedures for P-31 NMR spectroscopy [J].
Cade-Menun, BJ ;
Preston, CM .
SOIL SCIENCE, 1996, 161 (11) :770-785
[6]   Phosphorus and aquatic bryophytes in the Swale-Ouse river system, north-east England. 2. Phosphomonoesterase and phosphodiesterase activities of Fontinalis antipyretica [J].
Christmas, M ;
Whitton, BA .
SCIENCE OF THE TOTAL ENVIRONMENT, 1998, 210 (1-6) :401-409
[7]   Recent and long-term organic soil accretion and nutrient accumulation in the everglades [J].
Craft, CB ;
Richardson, CJ .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1998, 62 (03) :834-843
[8]   The role of periphyton in phosphorus retention in shallow freshwater aquatic systems [J].
Dodds, WK .
JOURNAL OF PHYCOLOGY, 2003, 39 (05) :840-849
[9]  
Gleason P, 1984, ENV S FLORIDA PRESEN, pviii
[10]  
GREAVES M. P., 1969, Soil Biology and Biochemistry, V1, P317, DOI 10.1016/0038-0717(69)90014-5