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Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models

Microbial biomass has been recognized as an essential biosorbent to remove heavy metal ions, but the biosorption process and mechanism of different components of microbial cells have not been elucidated. In present study, Pichia pastoris X33 and Cu(2+) was used as a biosorption model to reveal the b...

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Autores principales: Chen, Xinggang, Tian, Zhuang, Cheng, Haina, Xu, Gang, Zhou, Hongbo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9033084/
https://www.ncbi.nlm.nih.gov/pubmed/35479686
http://dx.doi.org/10.1039/d0ra09744f
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author Chen, Xinggang
Tian, Zhuang
Cheng, Haina
Xu, Gang
Zhou, Hongbo
author_facet Chen, Xinggang
Tian, Zhuang
Cheng, Haina
Xu, Gang
Zhou, Hongbo
author_sort Chen, Xinggang
collection PubMed
description Microbial biomass has been recognized as an essential biosorbent to remove heavy metal ions, but the biosorption process and mechanism of different components of microbial cells have not been elucidated. In present study, Pichia pastoris X33 and Cu(2+) was used as a biosorption model to reveal the biosorption process and mechanism of different components of microbial cells. For the biosorption of whole cells, the maximum removal efficiency was 41.1%, and the adsorption capacity was 6.2 mg g(−1). TEM-EDX analysis proved the existence of Cu(2+) on the cell surface and cytoplasm. The maximum Cu(2+) removal efficiency of the cell wall, cell membrane and cytoplasm were 21.2%, 20.7% and 18.5%, respectively. The optimum pH of Cu(2+) biosorption of the P. pastoris cell, cell wall, cell membrane and cytoplasm was 6. Moreover, the maximum adsorption capacity of the cell, cell wall, cell membrane and cytoplasm was 16.13, 11.53, 10.97 and 8.87 mg g(−1), respectively. The maximum removal efficiencies of P. pastoris biomass treated with proteinase K and P. pastoris biomass treated with β-mannanase were 18.1% and 28.2%, respectively. The maximum removal efficiencies of mannan and glucan were 34% and 12%, respectively. The FTIR spectra showed that the amino group (N–H), hydroxyl (O–H), carbon oxygen bond (C–O), –CH, C–N and carbonyl group (C[double bond, length as m-dash]O) of a ketone or aldehyde may interact with Cu(2+). Thus, our work provides guidance for further understanding the effect of different cell components on biosorption.
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spelling pubmed-90330842022-04-26 Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models Chen, Xinggang Tian, Zhuang Cheng, Haina Xu, Gang Zhou, Hongbo RSC Adv Chemistry Microbial biomass has been recognized as an essential biosorbent to remove heavy metal ions, but the biosorption process and mechanism of different components of microbial cells have not been elucidated. In present study, Pichia pastoris X33 and Cu(2+) was used as a biosorption model to reveal the biosorption process and mechanism of different components of microbial cells. For the biosorption of whole cells, the maximum removal efficiency was 41.1%, and the adsorption capacity was 6.2 mg g(−1). TEM-EDX analysis proved the existence of Cu(2+) on the cell surface and cytoplasm. The maximum Cu(2+) removal efficiency of the cell wall, cell membrane and cytoplasm were 21.2%, 20.7% and 18.5%, respectively. The optimum pH of Cu(2+) biosorption of the P. pastoris cell, cell wall, cell membrane and cytoplasm was 6. Moreover, the maximum adsorption capacity of the cell, cell wall, cell membrane and cytoplasm was 16.13, 11.53, 10.97 and 8.87 mg g(−1), respectively. The maximum removal efficiencies of P. pastoris biomass treated with proteinase K and P. pastoris biomass treated with β-mannanase were 18.1% and 28.2%, respectively. The maximum removal efficiencies of mannan and glucan were 34% and 12%, respectively. The FTIR spectra showed that the amino group (N–H), hydroxyl (O–H), carbon oxygen bond (C–O), –CH, C–N and carbonyl group (C[double bond, length as m-dash]O) of a ketone or aldehyde may interact with Cu(2+). Thus, our work provides guidance for further understanding the effect of different cell components on biosorption. The Royal Society of Chemistry 2021-05-11 /pmc/articles/PMC9033084/ /pubmed/35479686 http://dx.doi.org/10.1039/d0ra09744f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Chen, Xinggang
Tian, Zhuang
Cheng, Haina
Xu, Gang
Zhou, Hongbo
Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models
title Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models
title_full Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models
title_fullStr Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models
title_full_unstemmed Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models
title_short Adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (Pichia pastoris) and Cu(2+) as biosorption models
title_sort adsorption process and mechanism of heavy metal ions by different components of cells, using yeast (pichia pastoris) and cu(2+) as biosorption models
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9033084/
https://www.ncbi.nlm.nih.gov/pubmed/35479686
http://dx.doi.org/10.1039/d0ra09744f
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