Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product Levels

Engineering biological processes has become a standard approach to produce various commercially valuable chemicals, therapeutics, and biomaterials. Among these products, bacterial cellulose represents major advances to biomedical and healthcare applications. In comparison to properties of plant cell...

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Main Authors: Gizem Buldum, Athanasios Mantalaris
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:International Journal of Molecular Sciences
Subjects:
Online Access:https://www.mdpi.com/1422-0067/22/13/7192
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spelling doaj-908b8edac92b4f5ebe834f6dac1ceb482021-07-15T15:38:27ZengMDPI AGInternational Journal of Molecular Sciences1661-65961422-00672021-07-01227192719210.3390/ijms22137192Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product LevelsGizem Buldum0Athanasios Mantalaris1Department of Life Sciences, Imperial College London, London SW7 2AZ, UKWallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USAEngineering biological processes has become a standard approach to produce various commercially valuable chemicals, therapeutics, and biomaterials. Among these products, bacterial cellulose represents major advances to biomedical and healthcare applications. In comparison to properties of plant cellulose, bacterial cellulose (BC) shows distinctive characteristics such as a high purity, high water retention, and biocompatibility. However, low product yield and extensive cultivation times have been the main challenges in the large-scale production of BC. For decades, studies focused on optimization of cellulose production through modification of culturing strategies and conditions. With an increasing demand for BC, researchers are now exploring to improve BC production and functionality at different categories: genetic, bioprocess, and product levels as well as model driven approaches targeting each of these categories. This comprehensive review discusses the progress in BC platforms categorizing the most recent advancements under different research focuses and provides systematic understanding of the progress in BC biosynthesis. The aim of this review is to present the potential of ‘modern genetic engineering tools’ and ‘model-driven approaches’ on improving the yield of BC, altering the properties, and adding new functionality. We also provide insights for the future perspectives and potential approaches to promote BC use in biomedical applications.https://www.mdpi.com/1422-0067/22/13/7192bacterial cellulosesynthetic biologybioprocessingsynthetic circuit modeling
collection DOAJ
language English
format Article
sources DOAJ
author Gizem Buldum
Athanasios Mantalaris
spellingShingle Gizem Buldum
Athanasios Mantalaris
Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product Levels
International Journal of Molecular Sciences
bacterial cellulose
synthetic biology
bioprocessing
synthetic circuit modeling
author_facet Gizem Buldum
Athanasios Mantalaris
author_sort Gizem Buldum
title Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product Levels
title_short Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product Levels
title_full Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product Levels
title_fullStr Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product Levels
title_full_unstemmed Systematic Understanding of Recent Developments in Bacterial Cellulose Biosynthesis at Genetic, Bioprocess and Product Levels
title_sort systematic understanding of recent developments in bacterial cellulose biosynthesis at genetic, bioprocess and product levels
publisher MDPI AG
series International Journal of Molecular Sciences
issn 1661-6596
1422-0067
publishDate 2021-07-01
description Engineering biological processes has become a standard approach to produce various commercially valuable chemicals, therapeutics, and biomaterials. Among these products, bacterial cellulose represents major advances to biomedical and healthcare applications. In comparison to properties of plant cellulose, bacterial cellulose (BC) shows distinctive characteristics such as a high purity, high water retention, and biocompatibility. However, low product yield and extensive cultivation times have been the main challenges in the large-scale production of BC. For decades, studies focused on optimization of cellulose production through modification of culturing strategies and conditions. With an increasing demand for BC, researchers are now exploring to improve BC production and functionality at different categories: genetic, bioprocess, and product levels as well as model driven approaches targeting each of these categories. This comprehensive review discusses the progress in BC platforms categorizing the most recent advancements under different research focuses and provides systematic understanding of the progress in BC biosynthesis. The aim of this review is to present the potential of ‘modern genetic engineering tools’ and ‘model-driven approaches’ on improving the yield of BC, altering the properties, and adding new functionality. We also provide insights for the future perspectives and potential approaches to promote BC use in biomedical applications.
topic bacterial cellulose
synthetic biology
bioprocessing
synthetic circuit modeling
url https://www.mdpi.com/1422-0067/22/13/7192
work_keys_str_mv AT gizembuldum systematicunderstandingofrecentdevelopmentsinbacterialcellulosebiosynthesisatgeneticbioprocessandproductlevels
AT athanasiosmantalaris systematicunderstandingofrecentdevelopmentsinbacterialcellulosebiosynthesisatgeneticbioprocessandproductlevels
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