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Organic Acids Regulation of Chemical-Microbial Phosphorus Transformations in Soils.
Menezes-Blackburn, Daniel; Paredes, Cecilia; Zhang, Hao; Giles, Courtney D; Darch, Tegan; Stutter, Marc; George, Timothy S; Shand, Charles; Lumsdon, David; Cooper, Patricia; Wendler, Renate; Brown, Lawrie; Blackwell, Martin; Wearing, Catherine; Haygarth, Philip M.
Afiliação
  • Menezes-Blackburn D; Lancaster University, Lancaster Environment Centre , Lancaster, LA1 4YQ, U.K.
  • Paredes C; Scientific and Technological Bioresource Nucleus (BIOREN), Universidad de La Frontera , Temuco, Chile.
  • Zhang H; Lancaster University, Lancaster Environment Centre , Lancaster, LA1 4YQ, U.K.
  • Giles CD; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Darch T; Rothamsted Research, North Wyke, Okehampton, Devon, EX20 2SB, U.K.
  • Stutter M; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • George TS; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Shand C; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Lumsdon D; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Cooper P; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Wendler R; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Brown L; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Blackwell M; James Hutton Institute, The James Hutton Institute , Aberdeen, AB15 8QH and Dundee, DD2 5DA, Scotland, U.K.
  • Wearing C; Lancaster University, Lancaster Environment Centre , Lancaster, LA1 4YQ, U.K.
  • Haygarth PM; Lancaster University, Lancaster Environment Centre , Lancaster, LA1 4YQ, U.K.
Environ Sci Technol ; 50(21): 11521-11531, 2016 11 01.
Article em En | MEDLINE | ID: mdl-27700099
ABSTRACT
We have used an integrated approach to study the mobility of inorganic phosphorus (P) from soil solid phase as well as the microbial biomass P and respiration at increasing doses of citric and oxalic acid in two different soils with contrasting agronomic P status. Citric or oxalic acids significantly increased soil solution P concentrations for doses over 2 mmol kg-1. However, low organic acid doses (<2 mmol kg-1) were associated with a steep increase in microbial biomass P, which was not seen for higher doses. In both soils, treatment with the tribasic citric acid led to a greater increase in soil solution P than the dibasic oxalic acid, likely due to the rapid degrading of oxalic acids in soils. After equilibration of soils with citric or oxalic acids, the adsorbed-to-solution distribution coefficient (Kd) and desorption rate constants (k-1) decreased whereas an increase in the response time of solution P equilibration (Tc) was observed. The extent of this effect was shown to be both soil and organic acid specific. Our results illustrate the critical thresholds of organic acid concentration necessary to mobilize sorbed and precipitated P, bringing new insight on how the exudation of organic acids regulate chemical-microbial soil phosphorus transformations.
Assuntos
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Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Fósforo / Solo Idioma: En Ano de publicação: 2016 Tipo de documento: Article
Buscar no Google
Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Fósforo / Solo Idioma: En Ano de publicação: 2016 Tipo de documento: Article