Genetic modification for enhancing bacterial cellulose production and its applications

Bacterial cellulose (BC) is higher in demand due to its excellent properties which is attributed to its purity and nano size. Komagataeibacter xylinum is a model organism where BC production has been studied in detail because of its higher cellulose production capacity. BC production mechanism shows...

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Main Authors: Reeta Rani Singhania, Anil Kumar Patel, Mei-Ling Tsai, Chiu-Wen Chen, Cheng Di Dong
Format: Article
Language:English
Published: Taylor & Francis Group 2021-01-01
Series:Bioengineered
Subjects:
Online Access:http://dx.doi.org/10.1080/21655979.2021.1968989
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spelling doaj-68169884c26b4e069c62e198e456f78a2021-09-20T13:17:22ZengTaylor & Francis GroupBioengineered2165-59792165-59872021-01-011216793680710.1080/21655979.2021.19689891968989Genetic modification for enhancing bacterial cellulose production and its applicationsReeta Rani Singhania0Anil Kumar Patel1Mei-Ling Tsai2Chiu-Wen Chen3Cheng Di Dong4National Kaohsiung University of Science and TechnologyNational Kaohsiung University of Science and TechnologyNational Kaohsiung University of Science and TechnologyNational Kaohsiung University of Science and TechnologyNational Kaohsiung University of Science and TechnologyBacterial cellulose (BC) is higher in demand due to its excellent properties which is attributed to its purity and nano size. Komagataeibacter xylinum is a model organism where BC production has been studied in detail because of its higher cellulose production capacity. BC production mechanism shows involvement of a series of sequential reactions with enzymes for biosynthesis of cellulose. It is necessary to know the mechanism to understand the involvement of regulatory proteins which could be the probable targets for genetic modification to enhance or regulate yield of BC and to alter BC properties as well. For the industrial production of BC, controlled synthesis is desired so as to save energy, hence genetic manipulation opens up avenues for upregulating or controlling the cellulose synthesis in the bacterium by targeting genes involved in cellulose biosynthesis. In this review article genetic modification has been presented as a tool to introduce desired changes at genetic level resulting in improved yield or properties. There has been a lack of studies on genetic modification for BC production due to limited availability of information on whole genome and genetic toolkits; however, in last few years, the number of studies has been increased on this aspect as whole genome sequencing of several Komagataeibacter strains are being done. In this review article, we have presented the mechanisms and the targets for genetic modifications in order to achieve desired changes in the BC production titer as well as its characteristics.http://dx.doi.org/10.1080/21655979.2021.1968989bacterial cellulosekomagataeibacternanocellulosegenetic engineeringnanocomposite
collection DOAJ
language English
format Article
sources DOAJ
author Reeta Rani Singhania
Anil Kumar Patel
Mei-Ling Tsai
Chiu-Wen Chen
Cheng Di Dong
spellingShingle Reeta Rani Singhania
Anil Kumar Patel
Mei-Ling Tsai
Chiu-Wen Chen
Cheng Di Dong
Genetic modification for enhancing bacterial cellulose production and its applications
Bioengineered
bacterial cellulose
komagataeibacter
nanocellulose
genetic engineering
nanocomposite
author_facet Reeta Rani Singhania
Anil Kumar Patel
Mei-Ling Tsai
Chiu-Wen Chen
Cheng Di Dong
author_sort Reeta Rani Singhania
title Genetic modification for enhancing bacterial cellulose production and its applications
title_short Genetic modification for enhancing bacterial cellulose production and its applications
title_full Genetic modification for enhancing bacterial cellulose production and its applications
title_fullStr Genetic modification for enhancing bacterial cellulose production and its applications
title_full_unstemmed Genetic modification for enhancing bacterial cellulose production and its applications
title_sort genetic modification for enhancing bacterial cellulose production and its applications
publisher Taylor & Francis Group
series Bioengineered
issn 2165-5979
2165-5987
publishDate 2021-01-01
description Bacterial cellulose (BC) is higher in demand due to its excellent properties which is attributed to its purity and nano size. Komagataeibacter xylinum is a model organism where BC production has been studied in detail because of its higher cellulose production capacity. BC production mechanism shows involvement of a series of sequential reactions with enzymes for biosynthesis of cellulose. It is necessary to know the mechanism to understand the involvement of regulatory proteins which could be the probable targets for genetic modification to enhance or regulate yield of BC and to alter BC properties as well. For the industrial production of BC, controlled synthesis is desired so as to save energy, hence genetic manipulation opens up avenues for upregulating or controlling the cellulose synthesis in the bacterium by targeting genes involved in cellulose biosynthesis. In this review article genetic modification has been presented as a tool to introduce desired changes at genetic level resulting in improved yield or properties. There has been a lack of studies on genetic modification for BC production due to limited availability of information on whole genome and genetic toolkits; however, in last few years, the number of studies has been increased on this aspect as whole genome sequencing of several Komagataeibacter strains are being done. In this review article, we have presented the mechanisms and the targets for genetic modifications in order to achieve desired changes in the BC production titer as well as its characteristics.
topic bacterial cellulose
komagataeibacter
nanocellulose
genetic engineering
nanocomposite
url http://dx.doi.org/10.1080/21655979.2021.1968989
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