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β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing

Soluble coffee offers the combined benefits of high added value and practicality for its consumers. The hydrolysis of coffee polysaccharides by the biochemical route, using enzymes, is an eco-friendly and sustainable way to improve the quality of this product, while contributing to the implementatio...

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Autores principales: Favaro, Camila P., Baraldi, Ilton J., Casciatori, Fernanda P., Farinas, Cristiane S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7072339/
https://www.ncbi.nlm.nih.gov/pubmed/32033042
http://dx.doi.org/10.3390/biom10020227
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author Favaro, Camila P.
Baraldi, Ilton J.
Casciatori, Fernanda P.
Farinas, Cristiane S.
author_facet Favaro, Camila P.
Baraldi, Ilton J.
Casciatori, Fernanda P.
Farinas, Cristiane S.
author_sort Favaro, Camila P.
collection PubMed
description Soluble coffee offers the combined benefits of high added value and practicality for its consumers. The hydrolysis of coffee polysaccharides by the biochemical route, using enzymes, is an eco-friendly and sustainable way to improve the quality of this product, while contributing to the implementation of industrial processes that have lower energy requirements and can reduce environmental impacts. This work describes the production of hydrolytic enzymes by solid-state fermentation (SSF), cultivating filamentous fungi on waste from the coffee industry, followed by their application in the hydrolysis of waste coffee polysaccharides from soluble coffee processing. Different substrate compositions were studied, an ideal microorganism was selected, and the fermentation conditions were optimized. Cultivations for enzymes production were carried out in flasks and in a packed-bed bioreactor. Higher enzyme yield was achieved in the bioreactor, due to better aeration of the substrate. The best β-mannanase production results were found for a substrate composed of a mixture of coffee waste and wheat bran (1:1 w/w), using Aspergillus niger F12. The enzymatic extract proved to be very stable for 24 h, at 50 °C, and was able to hydrolyze a considerable amount of the carbohydrates in the coffee. The addition of a commercial cellulase cocktail to the crude extract increased the hydrolysis yield by 56%. The production of β-mannanase by SSF and its application in the hydrolysis of coffee polysaccharides showed promise for improving soluble coffee processing, offering an attractive way to assist in closing the loops in the coffee industry and creating a circular economy.
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spelling pubmed-70723392020-03-19 β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing Favaro, Camila P. Baraldi, Ilton J. Casciatori, Fernanda P. Farinas, Cristiane S. Biomolecules Article Soluble coffee offers the combined benefits of high added value and practicality for its consumers. The hydrolysis of coffee polysaccharides by the biochemical route, using enzymes, is an eco-friendly and sustainable way to improve the quality of this product, while contributing to the implementation of industrial processes that have lower energy requirements and can reduce environmental impacts. This work describes the production of hydrolytic enzymes by solid-state fermentation (SSF), cultivating filamentous fungi on waste from the coffee industry, followed by their application in the hydrolysis of waste coffee polysaccharides from soluble coffee processing. Different substrate compositions were studied, an ideal microorganism was selected, and the fermentation conditions were optimized. Cultivations for enzymes production were carried out in flasks and in a packed-bed bioreactor. Higher enzyme yield was achieved in the bioreactor, due to better aeration of the substrate. The best β-mannanase production results were found for a substrate composed of a mixture of coffee waste and wheat bran (1:1 w/w), using Aspergillus niger F12. The enzymatic extract proved to be very stable for 24 h, at 50 °C, and was able to hydrolyze a considerable amount of the carbohydrates in the coffee. The addition of a commercial cellulase cocktail to the crude extract increased the hydrolysis yield by 56%. The production of β-mannanase by SSF and its application in the hydrolysis of coffee polysaccharides showed promise for improving soluble coffee processing, offering an attractive way to assist in closing the loops in the coffee industry and creating a circular economy. MDPI 2020-02-04 /pmc/articles/PMC7072339/ /pubmed/32033042 http://dx.doi.org/10.3390/biom10020227 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
Favaro, Camila P.
Baraldi, Ilton J.
Casciatori, Fernanda P.
Farinas, Cristiane S.
β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing
title β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing
title_full β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing
title_fullStr β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing
title_full_unstemmed β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing
title_short β-Mannanase Production Using Coffee Industry Waste for Application in Soluble Coffee Processing
title_sort β-mannanase production using coffee industry waste for application in soluble coffee processing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7072339/
https://www.ncbi.nlm.nih.gov/pubmed/32033042
http://dx.doi.org/10.3390/biom10020227
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