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Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering

Cellulases are a set of lignocellulolytic enzymes, capable of producing eco-friendly low-cost renewable bioethanol. However, low stability and hydrolytic activity limit their wide-scale applicability at the industrial scale. In this work, we report the domain engineering of endoglucanase (cel6A) of...

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Autores principales: Ali, Imran, Rehman, Hafiz Muzzammel, Mirza, Muhammad Usman, Akhtar, Muhammad Waheed, Asghar, Rehana, Tariq, Muhammad, Ahmed, Rashid, Tanveer, Fatima, Khalid, Hina, Alghamdi, Huda Ahmed, Froeyen, Matheus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464639/
https://www.ncbi.nlm.nih.gov/pubmed/32784797
http://dx.doi.org/10.3390/biology9080214
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author Ali, Imran
Rehman, Hafiz Muzzammel
Mirza, Muhammad Usman
Akhtar, Muhammad Waheed
Asghar, Rehana
Tariq, Muhammad
Ahmed, Rashid
Tanveer, Fatima
Khalid, Hina
Alghamdi, Huda Ahmed
Froeyen, Matheus
author_facet Ali, Imran
Rehman, Hafiz Muzzammel
Mirza, Muhammad Usman
Akhtar, Muhammad Waheed
Asghar, Rehana
Tariq, Muhammad
Ahmed, Rashid
Tanveer, Fatima
Khalid, Hina
Alghamdi, Huda Ahmed
Froeyen, Matheus
author_sort Ali, Imran
collection PubMed
description Cellulases are a set of lignocellulolytic enzymes, capable of producing eco-friendly low-cost renewable bioethanol. However, low stability and hydrolytic activity limit their wide-scale applicability at the industrial scale. In this work, we report the domain engineering of endoglucanase (cel6A) of Thermobifida fusca to improve their catalytic activity and thermal stability. Later, enzymatic activity and thermostability of the most efficient variant named as cel6A.CBC was analyzed by molecular dynamics simulations. This variant demonstrated profound activity against soluble and insoluble cellulosic substrates like filter paper, alkali-treated bagasse, regenerated amorphous cellulose (RAC), and bacterial microcrystalline cellulose. The variant cel6A.CBC showed the highest catalysis of carboxymethyl cellulose (CMC) and other related insoluble substrates at a pH of 6.0 and a temperature of 60 °C. Furthermore, a sound rationale was observed between experimental findings and molecular modeling of cel6A.CBC which revealed thermostability of cel6A.CBC at 26.85, 60.85, and 74.85 °C as well as structural flexibility at 126.85 °C. Therefore, a thermostable derivative of cel6A engineered in the present work has enhanced biological performance and can be a useful construct for the mass production of bioethanol from plant biomass.
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spelling pubmed-74646392020-09-04 Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering Ali, Imran Rehman, Hafiz Muzzammel Mirza, Muhammad Usman Akhtar, Muhammad Waheed Asghar, Rehana Tariq, Muhammad Ahmed, Rashid Tanveer, Fatima Khalid, Hina Alghamdi, Huda Ahmed Froeyen, Matheus Biology (Basel) Article Cellulases are a set of lignocellulolytic enzymes, capable of producing eco-friendly low-cost renewable bioethanol. However, low stability and hydrolytic activity limit their wide-scale applicability at the industrial scale. In this work, we report the domain engineering of endoglucanase (cel6A) of Thermobifida fusca to improve their catalytic activity and thermal stability. Later, enzymatic activity and thermostability of the most efficient variant named as cel6A.CBC was analyzed by molecular dynamics simulations. This variant demonstrated profound activity against soluble and insoluble cellulosic substrates like filter paper, alkali-treated bagasse, regenerated amorphous cellulose (RAC), and bacterial microcrystalline cellulose. The variant cel6A.CBC showed the highest catalysis of carboxymethyl cellulose (CMC) and other related insoluble substrates at a pH of 6.0 and a temperature of 60 °C. Furthermore, a sound rationale was observed between experimental findings and molecular modeling of cel6A.CBC which revealed thermostability of cel6A.CBC at 26.85, 60.85, and 74.85 °C as well as structural flexibility at 126.85 °C. Therefore, a thermostable derivative of cel6A engineered in the present work has enhanced biological performance and can be a useful construct for the mass production of bioethanol from plant biomass. MDPI 2020-08-07 /pmc/articles/PMC7464639/ /pubmed/32784797 http://dx.doi.org/10.3390/biology9080214 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ali, Imran
Rehman, Hafiz Muzzammel
Mirza, Muhammad Usman
Akhtar, Muhammad Waheed
Asghar, Rehana
Tariq, Muhammad
Ahmed, Rashid
Tanveer, Fatima
Khalid, Hina
Alghamdi, Huda Ahmed
Froeyen, Matheus
Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering
title Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering
title_full Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering
title_fullStr Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering
title_full_unstemmed Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering
title_short Enhanced Thermostability and Enzymatic Activity of cel6A Variants from Thermobifida fusca by Empirical Domain Engineering
title_sort enhanced thermostability and enzymatic activity of cel6a variants from thermobifida fusca by empirical domain engineering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464639/
https://www.ncbi.nlm.nih.gov/pubmed/32784797
http://dx.doi.org/10.3390/biology9080214
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