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Adsorption of recalcitrant phosphorus compounds using the phosphate-selective binding-protein PstS.
Mallick, Synthia P; Hussein, Faten B; Husted, Shayla; Mayer, Brooke K.
Afiliação
  • Mallick SP; Department of Civil, Construction and Environmental Engineering, Marquette University, 1637 West Wisconsin Avenue, Milwaukee, WI, 53233, USA. Electronic address: Synthiaparveen.Mallick@Marquette.edu.
  • Hussein FB; Department of Civil, Construction and Environmental Engineering, Marquette University, 1637 West Wisconsin Avenue, Milwaukee, WI, 53233, USA. Electronic address: Faten.Hussein@Marquette.edu.
  • Husted S; Department of Biological Sciences, Marquette University, 1428 W. Clybourn St., Milwaukee, WI, 53233, USA. Electronic address: Shayla.Husted@Marquette.edu.
  • Mayer BK; Department of Civil, Construction and Environmental Engineering, Marquette University, 1637 West Wisconsin Avenue, Milwaukee, WI, 53233, USA. Electronic address: Brooke.Mayer@Marquette.edu.
Chemosphere ; 304: 135311, 2022 Oct.
Article em En | MEDLINE | ID: mdl-35709849
ABSTRACT
Currently available wastewater phosphorus (P) treatment technologies target removal of reactive forms of P. Selective adsorption of more recalcitrant soluble non-reactive phosphorus (sNRP) can improve P removal and recovery. A phosphate-selective phosphate-binding protein (PBP), PstS, was immobilized onto NHS-activated beads to assess the ability of this novel bioadsorbent to remove (adsorb) and subsequently recover (desorb) a range of sNRP compounds. Four sNRP compounds representative of wastewater sNRP were selected for use in this study phytic acid (PA), sodium triphosphate (TrP), beta-glycerol phosphate (BGP), and sodium hexametaphosphate (HMP). Using PBP, adsorption of all sNRP compounds was thermodynamically favorable. The PBP had nearly equivalent binding affinity for PA compared to PBP's typical target, orthophosphate, although it had less affinity for the other sNRP compounds. Adsorption followed pseudo-second order reaction kinetics, with 95% of maximum adsorption occurring within 4 min. This was substantially faster sNRP adsorption compared to other adsorbents in the literature. Adsorption was modeled using the Langmuir isotherm, reflecting that one phosphate molecule attached to one PBP binding site. Notably, this selective 11 attachment resulted in higher total P removal for sNRP molecules with high P content. The binding site lost activity with increasing pH, and as such, highest desorption was achieved at pH 12, making the system amenable to sNRP removal as well as controlled recovery.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Poluentes Químicos da Água / Águas Residuárias Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Poluentes Químicos da Água / Águas Residuárias Idioma: En Ano de publicação: 2022 Tipo de documento: Article