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Interaction of alkaline phosphatase with minerals and sediments: Activities, kinetics and hydrolysis of organic phosphorus

  • Yuanrong Zhu
  • , Fengchang Wu*
  • , Weiying Feng
  • , Shasha Liu
  • , John P. Giesy
  • *Corresponding author for this work
  • Chinese Research Academy of Environmental Sciences
  • Beijing Normal University
  • University of Saskatchewan

Research output: Contribution to journalArticlepeer-review

Abstract

Alkaline phosphatase (APase) plays an important role in phosphorus (P) cycling in water and sediments of lakes. Interaction of APase with minerals including goethite and montmorillonite, and sediments from Lake Tai (Ch: Taihu) and Lake Dianchi were investigated. Degradation and bioavailability of organic P (Po) in sediments were further investigated by APase hydrolysis and solution 31P-nuclear magnetic resonance (NMR) spectroscopy. Little APase is adsorbed by sediments, but APase could be strongly adsorbed by goethite and montmorillonite. Some adsorptive sites could be occupied by organic matter or ions in sediments from lakes. Activities of APase immobilized by sediments could be reduced to 1.3% to 5.3% of that of free APase. However, APase immobilized by goethite and montmorillonite could retain 27.3% and 21.6% of the activity of free APase. Thus, the majority of APase is likely dissolved in overlying water or loosely adsorbed by sediments in lakes. Enzymatic hydrolysis and liberation of orthophosphate from suspensions of sediments were 0.26-4.25 mg kg-1 that was readily bioavailable to algae or other organisms. After APase hydrolysis, 31P NMR analysis showed that no detectable changes in Po or condensed P in sediments extracted by NaOH-EDTA. Thus, Po immobilized in sediments couldn't be directly hydrolyzed by APase, but more Po immobilized in the sediments could be hydrolyzed by APase when they were released into the overlying water under appropriate conditions. Treatments, such as additions of Al hydroxides dosing, would not adsorb or immobilized P, but also immobilized phosphatase, thus decreasing activity of phosphatase and bioavailability of Po in a eutrophic lake.

Original languageEnglish
Pages (from-to)46-53
Number of pages8
JournalColloids and Surfaces A: Physicochemical and Engineering Aspects
Volume495
DOIs
StatePublished - 20 Apr 2016
Externally publishedYes

Keywords

  • Enzymatic hydrolysis
  • Eutrophication
  • Goethite
  • Montmorillonite
  • Organic phosphorus
  • P NMR

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