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Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli

BACKGROUND: Amongst the methods that remove heavy metals from environment, biosorption approaches have received increased attention because of their environmentally friendly and cost-effective feature, as well as their superior performances. METHODS: In the present study, we investigated the ability...

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Detalles Bibliográficos
Autores principales: Tafakori, Vida, Zadmard, Reza, Tabandeh, Fatemeh, Amoozegar, Mohammad Ali, Ahmadian, Gholamreza
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Pasteur Institute 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5572434/
https://www.ncbi.nlm.nih.gov/pubmed/28555492
http://dx.doi.org/10.18869/acadpub.ibj.21.6.380
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author Tafakori, Vida
Zadmard, Reza
Tabandeh, Fatemeh
Amoozegar, Mohammad Ali
Ahmadian, Gholamreza
author_facet Tafakori, Vida
Zadmard, Reza
Tabandeh, Fatemeh
Amoozegar, Mohammad Ali
Ahmadian, Gholamreza
author_sort Tafakori, Vida
collection PubMed
description BACKGROUND: Amongst the methods that remove heavy metals from environment, biosorption approaches have received increased attention because of their environmentally friendly and cost-effective feature, as well as their superior performances. METHODS: In the present study, we investigated the ability of a surface-engineered Escherichia coli, carrying the cyanobacterial metallothionein on the cell surface, in the removal of Ca (II) from solution under different experimental conditions. The biosorption process was optimized using central composite design. In parallel, the kinetics of metal biosorption was studied, and the rate constants of different kinetic models were calculated. RESULTS: Cadmium biosorption is followed by the second-order kinetics. Freundlich and Langmuir equations were used to analyze sorption data; characteristic parameters were determined for each adsorption isotherm. The biosorption process was optimized using the central composite design. The optimal cadmium sorption capacity (284.69 nmol/mg biomass) was obtained at 40°C (pH 8) and a biomass dosage of 10 mg. The influence of two elutants, EDTA and CaCl(2), was also assessed on metal recovery. Approximately, 68.58% and 56.54% of the adsorbed cadmium were removed by EDTA and CaCl(2) during desorption, respectively. The Fourier transform infrared spectrophotometer (FTIR) analysis indicated that carboxyl, amino, phosphoryl, thiol, and hydroxyl are the main chemical groups involved in the cadmium bioadsorption process. CONCLUSION: Results from this study implied that chemical adsorption on the heterogeneous surface of E. coli E and optimization of adsorption parameters provides a highly efficient bioadsorbent.
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spelling pubmed-55724342017-11-01 Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli Tafakori, Vida Zadmard, Reza Tabandeh, Fatemeh Amoozegar, Mohammad Ali Ahmadian, Gholamreza Iran Biomed J Full Length BACKGROUND: Amongst the methods that remove heavy metals from environment, biosorption approaches have received increased attention because of their environmentally friendly and cost-effective feature, as well as their superior performances. METHODS: In the present study, we investigated the ability of a surface-engineered Escherichia coli, carrying the cyanobacterial metallothionein on the cell surface, in the removal of Ca (II) from solution under different experimental conditions. The biosorption process was optimized using central composite design. In parallel, the kinetics of metal biosorption was studied, and the rate constants of different kinetic models were calculated. RESULTS: Cadmium biosorption is followed by the second-order kinetics. Freundlich and Langmuir equations were used to analyze sorption data; characteristic parameters were determined for each adsorption isotherm. The biosorption process was optimized using the central composite design. The optimal cadmium sorption capacity (284.69 nmol/mg biomass) was obtained at 40°C (pH 8) and a biomass dosage of 10 mg. The influence of two elutants, EDTA and CaCl(2), was also assessed on metal recovery. Approximately, 68.58% and 56.54% of the adsorbed cadmium were removed by EDTA and CaCl(2) during desorption, respectively. The Fourier transform infrared spectrophotometer (FTIR) analysis indicated that carboxyl, amino, phosphoryl, thiol, and hydroxyl are the main chemical groups involved in the cadmium bioadsorption process. CONCLUSION: Results from this study implied that chemical adsorption on the heterogeneous surface of E. coli E and optimization of adsorption parameters provides a highly efficient bioadsorbent. Pasteur Institute 2017-11 /pmc/articles/PMC5572434/ /pubmed/28555492 http://dx.doi.org/10.18869/acadpub.ibj.21.6.380 Text en Copyright: © Iranian Biomedical Journal http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License, (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Length
Tafakori, Vida
Zadmard, Reza
Tabandeh, Fatemeh
Amoozegar, Mohammad Ali
Ahmadian, Gholamreza
Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli
title Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli
title_full Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli
title_fullStr Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli
title_full_unstemmed Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli
title_short Equilibrium Isotherm, Kinetic Modeling, Optimization, and Characterization Studies of Cadmium Adsorption by Surface-Engineered Escherichia coli
title_sort equilibrium isotherm, kinetic modeling, optimization, and characterization studies of cadmium adsorption by surface-engineered escherichia coli
topic Full Length
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5572434/
https://www.ncbi.nlm.nih.gov/pubmed/28555492
http://dx.doi.org/10.18869/acadpub.ibj.21.6.380
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