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Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown

Trametes villosa is a wood-decaying fungus with great potential to be used in the bioconversion of agro-industrial residues and to obtain high-value-added products, such as biofuels. Nonetheless, the lack of high-quality genomic data hampers studies investigating genetic mechanisms and metabolic pat...

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Autores principales: Tomé, Luiz Marcelo Ribeiro, da Silva, Felipe Ferreira, Fonseca, Paula Luize Camargos, Mendes-Pereira, Thairine, Azevedo, Vasco Ariston de Carvalho, Brenig, Bertram, Badotti, Fernanda, Góes-Neto, Aristóteles
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8876698/
https://www.ncbi.nlm.nih.gov/pubmed/35205897
http://dx.doi.org/10.3390/jof8020142
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author Tomé, Luiz Marcelo Ribeiro
da Silva, Felipe Ferreira
Fonseca, Paula Luize Camargos
Mendes-Pereira, Thairine
Azevedo, Vasco Ariston de Carvalho
Brenig, Bertram
Badotti, Fernanda
Góes-Neto, Aristóteles
author_facet Tomé, Luiz Marcelo Ribeiro
da Silva, Felipe Ferreira
Fonseca, Paula Luize Camargos
Mendes-Pereira, Thairine
Azevedo, Vasco Ariston de Carvalho
Brenig, Bertram
Badotti, Fernanda
Góes-Neto, Aristóteles
author_sort Tomé, Luiz Marcelo Ribeiro
collection PubMed
description Trametes villosa is a wood-decaying fungus with great potential to be used in the bioconversion of agro-industrial residues and to obtain high-value-added products, such as biofuels. Nonetheless, the lack of high-quality genomic data hampers studies investigating genetic mechanisms and metabolic pathways in T. villosa, hindering its application in industry. Herein, applying a hybrid assembly pipeline using short reads (Illumina HiSeq) and long reads (Oxford Nanopore MinION), we obtained a high-quality genome for the T. villosa CCMB561 and investigated its genetic potential for lignocellulose breakdown. The new genome possesses 143 contigs, N50 of 1,009,271 bp, a total length of 46,748,415 bp, 14,540 protein-coding genes, 22 secondary metabolite gene clusters, and 426 genes encoding Carbohydrate-Active enzymes. Our CAZome annotation and comparative genomic analyses of nine Trametes spp. genomes revealed T. villosa CCMB561 as the species with the highest number of genes encoding lignin-modifying enzymes and a wide array of genes encoding proteins for the breakdown of cellulose, hemicellulose, and pectin. These results bring to light the potential of this isolate to be applied in the bioconversion of lignocellulose and will support future studies on the expression, regulation, and evolution of genes, proteins, and metabolic pathways regarding the bioconversion of lignocellulosic residues.
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spelling pubmed-88766982022-02-26 Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown Tomé, Luiz Marcelo Ribeiro da Silva, Felipe Ferreira Fonseca, Paula Luize Camargos Mendes-Pereira, Thairine Azevedo, Vasco Ariston de Carvalho Brenig, Bertram Badotti, Fernanda Góes-Neto, Aristóteles J Fungi (Basel) Article Trametes villosa is a wood-decaying fungus with great potential to be used in the bioconversion of agro-industrial residues and to obtain high-value-added products, such as biofuels. Nonetheless, the lack of high-quality genomic data hampers studies investigating genetic mechanisms and metabolic pathways in T. villosa, hindering its application in industry. Herein, applying a hybrid assembly pipeline using short reads (Illumina HiSeq) and long reads (Oxford Nanopore MinION), we obtained a high-quality genome for the T. villosa CCMB561 and investigated its genetic potential for lignocellulose breakdown. The new genome possesses 143 contigs, N50 of 1,009,271 bp, a total length of 46,748,415 bp, 14,540 protein-coding genes, 22 secondary metabolite gene clusters, and 426 genes encoding Carbohydrate-Active enzymes. Our CAZome annotation and comparative genomic analyses of nine Trametes spp. genomes revealed T. villosa CCMB561 as the species with the highest number of genes encoding lignin-modifying enzymes and a wide array of genes encoding proteins for the breakdown of cellulose, hemicellulose, and pectin. These results bring to light the potential of this isolate to be applied in the bioconversion of lignocellulose and will support future studies on the expression, regulation, and evolution of genes, proteins, and metabolic pathways regarding the bioconversion of lignocellulosic residues. MDPI 2022-01-30 /pmc/articles/PMC8876698/ /pubmed/35205897 http://dx.doi.org/10.3390/jof8020142 Text en © 2022 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
Tomé, Luiz Marcelo Ribeiro
da Silva, Felipe Ferreira
Fonseca, Paula Luize Camargos
Mendes-Pereira, Thairine
Azevedo, Vasco Ariston de Carvalho
Brenig, Bertram
Badotti, Fernanda
Góes-Neto, Aristóteles
Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown
title Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown
title_full Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown
title_fullStr Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown
title_full_unstemmed Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown
title_short Hybrid Assembly Improves Genome Quality and Completeness of Trametes villosa CCMB561 and Reveals a Huge Potential for Lignocellulose Breakdown
title_sort hybrid assembly improves genome quality and completeness of trametes villosa ccmb561 and reveals a huge potential for lignocellulose breakdown
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8876698/
https://www.ncbi.nlm.nih.gov/pubmed/35205897
http://dx.doi.org/10.3390/jof8020142
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