Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis

Whole-cell biocatalysis using Antarctic bacteria is presently hampered by a lack of genetic information, limited gene tools and critically, a poor range of cultivation conditions. In this work, biological engineering strategy was employed for developing Pseudomonas extremaustralis, a metabolically-v...

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Main Authors: Ahmad Bazli Ramzi, Matthlessa Matthew Minggu, Ummul Syafiqah Ruslan, Mohamad Hazwan Fikri Khairi, Peer Mohamed Abdul
Format: Article in Journal/Newspaper
Language:English
Published: Penerbit Universiti Kebangsaan Malaysia 2022
Subjects:
Online Access:http://journalarticle.ukm.my/20862/
http://journalarticle.ukm.my/20862/1/4%20%281%29.pdf
https://www.ukm.my/jsm/malay_journals/jilid51bil10_2022/KandunganJilid51Bil10_2022.html
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spelling ftukmalaysiajart:oai:generic.eprints.org:20862 2023-11-12T04:08:18+01:00 Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis Ahmad Bazli Ramzi, Matthlessa Matthew Minggu, Ummul Syafiqah Ruslan, Mohamad Hazwan Fikri Khairi, Peer Mohamed Abdul 2022-10 application/pdf http://journalarticle.ukm.my/20862/ http://journalarticle.ukm.my/20862/1/4%20%281%29.pdf https://www.ukm.my/jsm/malay_journals/jilid51bil10_2022/KandunganJilid51Bil10_2022.html en eng Penerbit Universiti Kebangsaan Malaysia http://journalarticle.ukm.my/20862/1/4%20%281%29.pdf Ahmad Bazli Ramzi, and Matthlessa Matthew Minggu, and Ummul Syafiqah Ruslan, and Mohamad Hazwan Fikri Khairi, and Peer Mohamed Abdul, (2022) Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis. Sains Malaysiana, 51 (10). pp. 3163-3170. ISSN 0126-6039 Article PeerReviewed 2022 ftukmalaysiajart 2023-10-17T09:52:04Z Whole-cell biocatalysis using Antarctic bacteria is presently hampered by a lack of genetic information, limited gene tools and critically, a poor range of cultivation conditions. In this work, biological engineering strategy was employed for developing Pseudomonas extremaustralis, a metabolically-versatile and biopolymer-producing Antarctic bacterium, as a new whole-cell biocatalytic host. For this purpose, gene cloning and plasmid construction were carried out for overexpression of furfural reductase (FucO), an industrially-important enzyme for degradation of toxic furfural compound commonly found in lignocellulosic biorefinery. FucO gene from Escherichia coli BL21 was cloned in pJM105 plasmid and transformed into competent cells of P. extremaustralis to generate a biologically-engineered pFucO strain. For functional characterization of the enzyme, furfural reductase activity was assayed, where the P. extremaustralis pFucO strain exhibited increased furfural reductase activity of about 15.6 U/mg, an 18.8-fold higher than empty plasmid-carrying control pJM105 strain (0.83 U/mg). Furfural detoxification activity using whole cells was also determined by which the overexpression of FucO led to increased tolerance and cell growth with an OD600 value of 5.3 as compared to the control pJM105 strain that was inhibited with 10 mM furfural during 48-hour cultivation. Therefore, the findings obtained in this study successfully demonstrated the development of P. extremaustralis as biocatalytic host for the production of recombinant furfural reductase. The bioengineering would serve as a modular biotechnological platform for polar strain and bioproduct development tailored towards industrial biotechnology applications. Article in Journal/Newspaper Antarc* Antarctic National University of Malaysia: UKM Journal Article Repository Antarctic
institution Open Polar
collection National University of Malaysia: UKM Journal Article Repository
op_collection_id ftukmalaysiajart
language English
description Whole-cell biocatalysis using Antarctic bacteria is presently hampered by a lack of genetic information, limited gene tools and critically, a poor range of cultivation conditions. In this work, biological engineering strategy was employed for developing Pseudomonas extremaustralis, a metabolically-versatile and biopolymer-producing Antarctic bacterium, as a new whole-cell biocatalytic host. For this purpose, gene cloning and plasmid construction were carried out for overexpression of furfural reductase (FucO), an industrially-important enzyme for degradation of toxic furfural compound commonly found in lignocellulosic biorefinery. FucO gene from Escherichia coli BL21 was cloned in pJM105 plasmid and transformed into competent cells of P. extremaustralis to generate a biologically-engineered pFucO strain. For functional characterization of the enzyme, furfural reductase activity was assayed, where the P. extremaustralis pFucO strain exhibited increased furfural reductase activity of about 15.6 U/mg, an 18.8-fold higher than empty plasmid-carrying control pJM105 strain (0.83 U/mg). Furfural detoxification activity using whole cells was also determined by which the overexpression of FucO led to increased tolerance and cell growth with an OD600 value of 5.3 as compared to the control pJM105 strain that was inhibited with 10 mM furfural during 48-hour cultivation. Therefore, the findings obtained in this study successfully demonstrated the development of P. extremaustralis as biocatalytic host for the production of recombinant furfural reductase. The bioengineering would serve as a modular biotechnological platform for polar strain and bioproduct development tailored towards industrial biotechnology applications.
format Article in Journal/Newspaper
author Ahmad Bazli Ramzi,
Matthlessa Matthew Minggu,
Ummul Syafiqah Ruslan,
Mohamad Hazwan Fikri Khairi,
Peer Mohamed Abdul
spellingShingle Ahmad Bazli Ramzi,
Matthlessa Matthew Minggu,
Ummul Syafiqah Ruslan,
Mohamad Hazwan Fikri Khairi,
Peer Mohamed Abdul
Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis
author_facet Ahmad Bazli Ramzi,
Matthlessa Matthew Minggu,
Ummul Syafiqah Ruslan,
Mohamad Hazwan Fikri Khairi,
Peer Mohamed Abdul
author_sort Ahmad Bazli Ramzi,
title Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis
title_short Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis
title_full Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis
title_fullStr Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis
title_full_unstemmed Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis
title_sort expression of furfural reductase improved furfural tolerance in antarctic bacterium pseudomonas extremaustralis
publisher Penerbit Universiti Kebangsaan Malaysia
publishDate 2022
url http://journalarticle.ukm.my/20862/
http://journalarticle.ukm.my/20862/1/4%20%281%29.pdf
https://www.ukm.my/jsm/malay_journals/jilid51bil10_2022/KandunganJilid51Bil10_2022.html
geographic Antarctic
geographic_facet Antarctic
genre Antarc*
Antarctic
genre_facet Antarc*
Antarctic
op_relation http://journalarticle.ukm.my/20862/1/4%20%281%29.pdf
Ahmad Bazli Ramzi, and Matthlessa Matthew Minggu, and Ummul Syafiqah Ruslan, and Mohamad Hazwan Fikri Khairi, and Peer Mohamed Abdul, (2022) Expression of furfural reductase improved furfural tolerance in Antarctic bacterium pseudomonas extremaustralis. Sains Malaysiana, 51 (10). pp. 3163-3170. ISSN 0126-6039
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