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Comparative kinetic analysis of two fungal β-glucosidases

BACKGROUND: The enzymatic hydrolysis of cellulose is still considered as one of the main limiting steps of the biological production of biofuels from lignocellulosic biomass. It is a complex multistep process, and various kinetic models have been proposed. The cellulase enzymatic cocktail secreted b...

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Detalles Bibliográficos
Autores principales: Chauve, Marie, Mathis, Hugues, Huc, Delphine, Casanave, Dominique, Monot, Frédéric, Lopes Ferreira, Nicolas
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2847552/
https://www.ncbi.nlm.nih.gov/pubmed/20181208
http://dx.doi.org/10.1186/1754-6834-3-3
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author Chauve, Marie
Mathis, Hugues
Huc, Delphine
Casanave, Dominique
Monot, Frédéric
Lopes Ferreira, Nicolas
author_facet Chauve, Marie
Mathis, Hugues
Huc, Delphine
Casanave, Dominique
Monot, Frédéric
Lopes Ferreira, Nicolas
author_sort Chauve, Marie
collection PubMed
description BACKGROUND: The enzymatic hydrolysis of cellulose is still considered as one of the main limiting steps of the biological production of biofuels from lignocellulosic biomass. It is a complex multistep process, and various kinetic models have been proposed. The cellulase enzymatic cocktail secreted by Trichoderma reesei has been intensively investigated. β-glucosidases are one of a number of cellulolytic enzymes, and catalyze the last step releasing glucose from the inhibitory cellobiose. β-glucosidase (BGL1) is very poorly secreted by Trichoderma reesei strains, and complete hydrolysis of cellulose often requires supplementation with a commercial β-glucosidase preparation such as that from Aspergillus niger (Novozymes SP188). Surprisingly, kinetic modeling of β-glucosidases lacks reliable data, and the possible differences between native T. reesei and supplemented β-glucosidases are not taken into consideration, possibly because of the difficulty of purifying BGL1. RESULTS: A comparative kinetic analysis of β-glucosidase from Aspergillus niger and BGL1 from Trichoderma reesei, purified using a new and efficient fast protein liquid chromatography protocol, was performed. This purification is characterized by two major steps, including the adsorption of the major cellulases onto crystalline cellulose, and a final purification factor of 53. Quantitative analysis of the resulting β-glucosidase fraction from T. reesei showed it to be 95% pure. Kinetic parameters were determined using cellobiose and a chromogenic artificial substrate. A new method allowing easy and rapid determination of the kinetic parameters was also developed. β-Glucosidase SP188 (K(m )= 0.57 mM; K(p )= 2.70 mM) has a lower specific activity than BGL1 (K(m )= 0.38 mM; K(p )= 3.25 mM) and is also more sensitive to glucose inhibition. A Michaelis-Menten model integrating competitive inhibition by the product (glucose) has been validated and is able to predict the β-glucosidase activity of both enzymes. CONCLUSIONS: This article provides a useful comparison between the activity of β-glucosidases from two different fungi, and shows the importance of fully characterizing both enzymes. A Michaelis-Menten model was developed, including glucose inhibition and kinetic parameters, which were accurately determined and compared. This model can be further integrated into a cellulose hydrolysis model dissociating β-glucosidase activity from that of other cellulases. It can also help to define the optimal enzymatic cocktails for new β-glucosidase activities.
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spelling pubmed-28475522010-03-31 Comparative kinetic analysis of two fungal β-glucosidases Chauve, Marie Mathis, Hugues Huc, Delphine Casanave, Dominique Monot, Frédéric Lopes Ferreira, Nicolas Biotechnol Biofuels Research BACKGROUND: The enzymatic hydrolysis of cellulose is still considered as one of the main limiting steps of the biological production of biofuels from lignocellulosic biomass. It is a complex multistep process, and various kinetic models have been proposed. The cellulase enzymatic cocktail secreted by Trichoderma reesei has been intensively investigated. β-glucosidases are one of a number of cellulolytic enzymes, and catalyze the last step releasing glucose from the inhibitory cellobiose. β-glucosidase (BGL1) is very poorly secreted by Trichoderma reesei strains, and complete hydrolysis of cellulose often requires supplementation with a commercial β-glucosidase preparation such as that from Aspergillus niger (Novozymes SP188). Surprisingly, kinetic modeling of β-glucosidases lacks reliable data, and the possible differences between native T. reesei and supplemented β-glucosidases are not taken into consideration, possibly because of the difficulty of purifying BGL1. RESULTS: A comparative kinetic analysis of β-glucosidase from Aspergillus niger and BGL1 from Trichoderma reesei, purified using a new and efficient fast protein liquid chromatography protocol, was performed. This purification is characterized by two major steps, including the adsorption of the major cellulases onto crystalline cellulose, and a final purification factor of 53. Quantitative analysis of the resulting β-glucosidase fraction from T. reesei showed it to be 95% pure. Kinetic parameters were determined using cellobiose and a chromogenic artificial substrate. A new method allowing easy and rapid determination of the kinetic parameters was also developed. β-Glucosidase SP188 (K(m )= 0.57 mM; K(p )= 2.70 mM) has a lower specific activity than BGL1 (K(m )= 0.38 mM; K(p )= 3.25 mM) and is also more sensitive to glucose inhibition. A Michaelis-Menten model integrating competitive inhibition by the product (glucose) has been validated and is able to predict the β-glucosidase activity of both enzymes. CONCLUSIONS: This article provides a useful comparison between the activity of β-glucosidases from two different fungi, and shows the importance of fully characterizing both enzymes. A Michaelis-Menten model was developed, including glucose inhibition and kinetic parameters, which were accurately determined and compared. This model can be further integrated into a cellulose hydrolysis model dissociating β-glucosidase activity from that of other cellulases. It can also help to define the optimal enzymatic cocktails for new β-glucosidase activities. BioMed Central 2010-02-11 /pmc/articles/PMC2847552/ /pubmed/20181208 http://dx.doi.org/10.1186/1754-6834-3-3 Text en Copyright ©2010 Chauve et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Chauve, Marie
Mathis, Hugues
Huc, Delphine
Casanave, Dominique
Monot, Frédéric
Lopes Ferreira, Nicolas
Comparative kinetic analysis of two fungal β-glucosidases
title Comparative kinetic analysis of two fungal β-glucosidases
title_full Comparative kinetic analysis of two fungal β-glucosidases
title_fullStr Comparative kinetic analysis of two fungal β-glucosidases
title_full_unstemmed Comparative kinetic analysis of two fungal β-glucosidases
title_short Comparative kinetic analysis of two fungal β-glucosidases
title_sort comparative kinetic analysis of two fungal β-glucosidases
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2847552/
https://www.ncbi.nlm.nih.gov/pubmed/20181208
http://dx.doi.org/10.1186/1754-6834-3-3
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