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TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives

The biomass-degrading thermophilic ascomycete fungus Thielavia terrestris Co3Bag1 produces TtCel7A, a native bifunctional cellulase/xylanase GH7 family. The purified TtCel7A, with an estimated molecular weight of 71 kDa, was biochemically characterized. TtCel7A displayed an optimal pH of 5.5 for bot...

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Autores principales: López-López, Azucena, Santiago-Hernández, Alejandro, Cayetano-Cruz, Maribel, García-Huante, Yolanda, Campos, Jorge E., Bustos-Jaimes, Ismael, Marsch-Moreno, Rodolfo, Cano-Ramírez, Claudia, Benitez-Cardoza, Claudia G., Hidalgo-Lara, María Eugenia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9961574/
https://www.ncbi.nlm.nih.gov/pubmed/36836267
http://dx.doi.org/10.3390/jof9020152
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author López-López, Azucena
Santiago-Hernández, Alejandro
Cayetano-Cruz, Maribel
García-Huante, Yolanda
Campos, Jorge E.
Bustos-Jaimes, Ismael
Marsch-Moreno, Rodolfo
Cano-Ramírez, Claudia
Benitez-Cardoza, Claudia G.
Hidalgo-Lara, María Eugenia
author_facet López-López, Azucena
Santiago-Hernández, Alejandro
Cayetano-Cruz, Maribel
García-Huante, Yolanda
Campos, Jorge E.
Bustos-Jaimes, Ismael
Marsch-Moreno, Rodolfo
Cano-Ramírez, Claudia
Benitez-Cardoza, Claudia G.
Hidalgo-Lara, María Eugenia
author_sort López-López, Azucena
collection PubMed
description The biomass-degrading thermophilic ascomycete fungus Thielavia terrestris Co3Bag1 produces TtCel7A, a native bifunctional cellulase/xylanase GH7 family. The purified TtCel7A, with an estimated molecular weight of 71 kDa, was biochemically characterized. TtCel7A displayed an optimal pH of 5.5 for both activities and an optimal temperature of 60 and 50 °C for cellulolytic and xylanolytic activities, respectively. The half-lives determined for cellulase activity were 140, 106, and 41 min at 50, 60, and 70 °C, respectively, whereas the half-lives observed for xylanase activity were 24, 10, and 1.4 h at 50, 60, and 70 °C, respectively. The K(M) and V(max) values were 3.12 mg/mL and 50 U/mg for cellulase activity and 0.17 mg/mL and 42.75 U/mg for xylanase activity. Circular dichroism analysis suggests changes in the secondary structure of TtCel7A in the presence of CMC as the substrate, whereas no modifications were observed with beechwood xylan. TtCel7A displayed the excellent capability to hydrolyze CMC, beechwood xylan, and complex substrates such as oat bran, wheat bran, and sugarcane bagasse, with glucose and cellobiose being the main products released; also, slightly less endo cellulase and xylanase activities were observed. Thus, suggesting TtCel7A has an exo- and endomode of action. Based on the characteristics of the enzyme, it might be considered a good candidate for industrial applications.
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spelling pubmed-99615742023-02-26 TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives López-López, Azucena Santiago-Hernández, Alejandro Cayetano-Cruz, Maribel García-Huante, Yolanda Campos, Jorge E. Bustos-Jaimes, Ismael Marsch-Moreno, Rodolfo Cano-Ramírez, Claudia Benitez-Cardoza, Claudia G. Hidalgo-Lara, María Eugenia J Fungi (Basel) Article The biomass-degrading thermophilic ascomycete fungus Thielavia terrestris Co3Bag1 produces TtCel7A, a native bifunctional cellulase/xylanase GH7 family. The purified TtCel7A, with an estimated molecular weight of 71 kDa, was biochemically characterized. TtCel7A displayed an optimal pH of 5.5 for both activities and an optimal temperature of 60 and 50 °C for cellulolytic and xylanolytic activities, respectively. The half-lives determined for cellulase activity were 140, 106, and 41 min at 50, 60, and 70 °C, respectively, whereas the half-lives observed for xylanase activity were 24, 10, and 1.4 h at 50, 60, and 70 °C, respectively. The K(M) and V(max) values were 3.12 mg/mL and 50 U/mg for cellulase activity and 0.17 mg/mL and 42.75 U/mg for xylanase activity. Circular dichroism analysis suggests changes in the secondary structure of TtCel7A in the presence of CMC as the substrate, whereas no modifications were observed with beechwood xylan. TtCel7A displayed the excellent capability to hydrolyze CMC, beechwood xylan, and complex substrates such as oat bran, wheat bran, and sugarcane bagasse, with glucose and cellobiose being the main products released; also, slightly less endo cellulase and xylanase activities were observed. Thus, suggesting TtCel7A has an exo- and endomode of action. Based on the characteristics of the enzyme, it might be considered a good candidate for industrial applications. MDPI 2023-01-23 /pmc/articles/PMC9961574/ /pubmed/36836267 http://dx.doi.org/10.3390/jof9020152 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
López-López, Azucena
Santiago-Hernández, Alejandro
Cayetano-Cruz, Maribel
García-Huante, Yolanda
Campos, Jorge E.
Bustos-Jaimes, Ismael
Marsch-Moreno, Rodolfo
Cano-Ramírez, Claudia
Benitez-Cardoza, Claudia G.
Hidalgo-Lara, María Eugenia
TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives
title TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives
title_full TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives
title_fullStr TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives
title_full_unstemmed TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives
title_short TtCel7A: A Native Thermophilic Bifunctional Cellulose/Xylanase Exogluclanase from the Thermophilic Biomass-Degrading Fungus Thielavia terrestris Co3Bag1, and Its Application in Enzymatic Hydrolysis of Agroindustrial Derivatives
title_sort ttcel7a: a native thermophilic bifunctional cellulose/xylanase exogluclanase from the thermophilic biomass-degrading fungus thielavia terrestris co3bag1, and its application in enzymatic hydrolysis of agroindustrial derivatives
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9961574/
https://www.ncbi.nlm.nih.gov/pubmed/36836267
http://dx.doi.org/10.3390/jof9020152
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