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Chemosphere ; 117: 715-21, 2014 Dec.
Article in English | MEDLINE | ID: mdl-25461939

ABSTRACT

In this study, the metabolism of phosphorus and changes in population dynamics were investigated via simultaneous chemical stripping in sidestream in an acetate-fed sequencing batch reactor. The synthesized intracellular polyphosphate (poly-P) by polyphosphate-accumulating organisms (PAOs) gradually decreased when the biomass was subjected to 83 d of P stripping. Initially, the P removal efficiency of the system improved from 94.3% to 96.9%. Thereafter, a relatively high level of P in effluent was observed, during which time the stoichiometric ratios of Prelease/HAcuptake decreased, Glycogendegraded/HAcuptake and poly-ß-hydroxyvalerate/PHA increased. The results revealed that a metabolic shift from polyphosphate-accumulating metabolism to glycogen-accumulating metabolism. Correspondingly, PAOs declined to less than 1% of the population, glycogen-accumulating organisms proliferated to almost 20% instead. The results of PCR­DGGE also indicated that the microbial community structure considerably changed in response to the gradually decreasing poly-P content. These findings imply that intracellular poly-P level is important for the stable of P removal system. Furthermore, it suggests that it is not a stable and effective way for P recycling from anaerobic stage of the biological P removal system in sidestream.


Subject(s)
Bacteria/metabolism , Bioreactors , Phosphorus/metabolism , Polyphosphates/metabolism , Waste Disposal, Fluid/methods , Aerobiosis , Anaerobiosis , Biomass , Denaturing Gradient Gel Electrophoresis , In Situ Hybridization, Fluorescence , Polymerase Chain Reaction , Population Dynamics
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