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Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase

Harmful Microcystis blooms (HMBs) and microcystins (MCs) that are produced by Microcystis seriously threaten water ecosystems and human health. This study demonstrates an eco-friendly strategy for simultaneous removal of MCs and HMBs by adopting unique hyperoxic graphene oxides (HGOs) as carrier and...

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Autores principales: Liu, Hong-Lin, Cheng, Cai, Zuo, Ling-Zi, Yan, Ming-Yue, He, Yan-Lin, Huang, Shi, Ke, Ming-Jing, Guo, Xiao-Liang, Feng, Yu, Qian, Hai-Feng, Feng, Ling-Ling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9250033/
https://www.ncbi.nlm.nih.gov/pubmed/35789835
http://dx.doi.org/10.1016/j.isci.2022.104611
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author Liu, Hong-Lin
Cheng, Cai
Zuo, Ling-Zi
Yan, Ming-Yue
He, Yan-Lin
Huang, Shi
Ke, Ming-Jing
Guo, Xiao-Liang
Feng, Yu
Qian, Hai-Feng
Feng, Ling-Ling
author_facet Liu, Hong-Lin
Cheng, Cai
Zuo, Ling-Zi
Yan, Ming-Yue
He, Yan-Lin
Huang, Shi
Ke, Ming-Jing
Guo, Xiao-Liang
Feng, Yu
Qian, Hai-Feng
Feng, Ling-Ling
author_sort Liu, Hong-Lin
collection PubMed
description Harmful Microcystis blooms (HMBs) and microcystins (MCs) that are produced by Microcystis seriously threaten water ecosystems and human health. This study demonstrates an eco-friendly strategy for simultaneous removal of MCs and HMBs by adopting unique hyperoxic graphene oxides (HGOs) as carrier and pure microcystinase A (PMlrA) as connecting bridge to form stable HGOs@MlrA composite. After oxidation, HGOs yield inherent structural strain effects for boosting the immobilization of MlrA by material characterization and density functional theory calculations. HGO(5) exhibits higher loading capacities for crude MlrA (1,559 mg·g(−1)) and pure MlrA (1,659 mg·g(−1)). Moreover, the performances of HGO(5)@MlrA composite, including the capability of removing MCs and HMBs, the ecological and human safety compared to MlrA or HGO(5) treatment alone, have been studied. These results indicate that HGO(5) can be used as a promising candidate material to effectively improve the application potential of MlrA in the simultaneous removal of MCs and HMBs.
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spelling pubmed-92500332022-07-03 Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase Liu, Hong-Lin Cheng, Cai Zuo, Ling-Zi Yan, Ming-Yue He, Yan-Lin Huang, Shi Ke, Ming-Jing Guo, Xiao-Liang Feng, Yu Qian, Hai-Feng Feng, Ling-Ling iScience Article Harmful Microcystis blooms (HMBs) and microcystins (MCs) that are produced by Microcystis seriously threaten water ecosystems and human health. This study demonstrates an eco-friendly strategy for simultaneous removal of MCs and HMBs by adopting unique hyperoxic graphene oxides (HGOs) as carrier and pure microcystinase A (PMlrA) as connecting bridge to form stable HGOs@MlrA composite. After oxidation, HGOs yield inherent structural strain effects for boosting the immobilization of MlrA by material characterization and density functional theory calculations. HGO(5) exhibits higher loading capacities for crude MlrA (1,559 mg·g(−1)) and pure MlrA (1,659 mg·g(−1)). Moreover, the performances of HGO(5)@MlrA composite, including the capability of removing MCs and HMBs, the ecological and human safety compared to MlrA or HGO(5) treatment alone, have been studied. These results indicate that HGO(5) can be used as a promising candidate material to effectively improve the application potential of MlrA in the simultaneous removal of MCs and HMBs. Elsevier 2022-06-16 /pmc/articles/PMC9250033/ /pubmed/35789835 http://dx.doi.org/10.1016/j.isci.2022.104611 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Liu, Hong-Lin
Cheng, Cai
Zuo, Ling-Zi
Yan, Ming-Yue
He, Yan-Lin
Huang, Shi
Ke, Ming-Jing
Guo, Xiao-Liang
Feng, Yu
Qian, Hai-Feng
Feng, Ling-Ling
Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase
title Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase
title_full Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase
title_fullStr Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase
title_full_unstemmed Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase
title_short Strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase
title_sort strain-boosted hyperoxic graphene oxide efficiently loading and improving performances of microcystinase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9250033/
https://www.ncbi.nlm.nih.gov/pubmed/35789835
http://dx.doi.org/10.1016/j.isci.2022.104611
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