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Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials

[Image: see text] In this work, a biological engineering-based biosilica–yeast hybrid material was developed. It was obtained by the aggregation of Yarrowia lipolytica through biosilicification catalyzed using genetically displayed silicatein on its cell surface. With orthosilicate or seawater as th...

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Autores principales: Wang, Hongying, Wang, Zhuangzhuang, Liu, Guanglei, Cheng, Xiaohong, Chi, Zhenming, Madzak, Catherine, Liu, Chenguang, Chi, Zhe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7144138/
https://www.ncbi.nlm.nih.gov/pubmed/32280899
http://dx.doi.org/10.1021/acsomega.0c00393
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author Wang, Hongying
Wang, Zhuangzhuang
Liu, Guanglei
Cheng, Xiaohong
Chi, Zhenming
Madzak, Catherine
Liu, Chenguang
Chi, Zhe
author_facet Wang, Hongying
Wang, Zhuangzhuang
Liu, Guanglei
Cheng, Xiaohong
Chi, Zhenming
Madzak, Catherine
Liu, Chenguang
Chi, Zhe
author_sort Wang, Hongying
collection PubMed
description [Image: see text] In this work, a biological engineering-based biosilica–yeast hybrid material was developed. It was obtained by the aggregation of Yarrowia lipolytica through biosilicification catalyzed using genetically displayed silicatein on its cell surface. With orthosilicate or seawater as the substrate, the silicatein-displayed yeast could aggregate into flocs with a flocculation efficiency of nearly 100%. The resulting floc was found to be a sheetlike biosilica–yeast hybrid material formed by the biosilica-mediated immobilization of yeast cells via cross-linking and embedding, turning the original hydrophilicity of yeast cells into hydrophobicity. In addition, this material was characterized to be porous with an average pore diameter of approximately 10 μm and porosity of over 70%. Because of these properties, this hybrid material could achieve enhanced removal efficiencies for chromium ions and n-hexadecane, which were both above 99%, as compared to the free cells of Y. lipolytica in aqueous environments. Importantly, this hybrid material could be recultivated to generate new batches of yeast cells that maintain parallel properties to the first generation so that the same hybrid material could be reproduced with unchanged highly efficient removal of chromium and n-hexadecane to those of the first generation, demonstrating that this biosilica–yeast hybrid material was living and renewable. This work presented a novel way of harnessing silicatein and Y. lipolytica to achieve biological synthesis of a living inorganic–organic hybrid material that has potential to be applied in water treatment.
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spelling pubmed-71441382020-04-10 Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials Wang, Hongying Wang, Zhuangzhuang Liu, Guanglei Cheng, Xiaohong Chi, Zhenming Madzak, Catherine Liu, Chenguang Chi, Zhe ACS Omega [Image: see text] In this work, a biological engineering-based biosilica–yeast hybrid material was developed. It was obtained by the aggregation of Yarrowia lipolytica through biosilicification catalyzed using genetically displayed silicatein on its cell surface. With orthosilicate or seawater as the substrate, the silicatein-displayed yeast could aggregate into flocs with a flocculation efficiency of nearly 100%. The resulting floc was found to be a sheetlike biosilica–yeast hybrid material formed by the biosilica-mediated immobilization of yeast cells via cross-linking and embedding, turning the original hydrophilicity of yeast cells into hydrophobicity. In addition, this material was characterized to be porous with an average pore diameter of approximately 10 μm and porosity of over 70%. Because of these properties, this hybrid material could achieve enhanced removal efficiencies for chromium ions and n-hexadecane, which were both above 99%, as compared to the free cells of Y. lipolytica in aqueous environments. Importantly, this hybrid material could be recultivated to generate new batches of yeast cells that maintain parallel properties to the first generation so that the same hybrid material could be reproduced with unchanged highly efficient removal of chromium and n-hexadecane to those of the first generation, demonstrating that this biosilica–yeast hybrid material was living and renewable. This work presented a novel way of harnessing silicatein and Y. lipolytica to achieve biological synthesis of a living inorganic–organic hybrid material that has potential to be applied in water treatment. American Chemical Society 2020-03-26 /pmc/articles/PMC7144138/ /pubmed/32280899 http://dx.doi.org/10.1021/acsomega.0c00393 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Wang, Hongying
Wang, Zhuangzhuang
Liu, Guanglei
Cheng, Xiaohong
Chi, Zhenming
Madzak, Catherine
Liu, Chenguang
Chi, Zhe
Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials
title Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials
title_full Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials
title_fullStr Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials
title_full_unstemmed Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials
title_short Genetical Surface Display of Silicatein on Yarrowia lipolytica Confers Living and Renewable Biosilica–Yeast Hybrid Materials
title_sort genetical surface display of silicatein on yarrowia lipolytica confers living and renewable biosilica–yeast hybrid materials
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7144138/
https://www.ncbi.nlm.nih.gov/pubmed/32280899
http://dx.doi.org/10.1021/acsomega.0c00393
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