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A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei

Filamentous fungi are remarkable producers of enzymes dedicated to the degradation of sugar polymers found in the plant cell wall. Here, we integrated transcriptomic data to identify novel transcription factors (TFs) related to the control of gene expression of lignocellulosic hydrolases in Trichode...

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Autores principales: Antonieto, Amanda Cristina Campos, Nogueira, Karoline Maria Vieira, de Paula, Renato Graciano, Nora, Luísa Czamanski, Cassiano, Murilo Henrique Anzolini, Guazzaroni, Maria-Eugenia, Almeida, Fausto, da Silva, Thiago Aparecido, Ries, Laure Nicolas Annick, de Assis, Leandro Jose, Goldman, Gustavo Henrique, Silva, Roberto Nascimento, Silva-Rocha, Rafael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6581689/
https://www.ncbi.nlm.nih.gov/pubmed/31213522
http://dx.doi.org/10.1128/mSystems.00161-19
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author Antonieto, Amanda Cristina Campos
Nogueira, Karoline Maria Vieira
de Paula, Renato Graciano
Nora, Luísa Czamanski
Cassiano, Murilo Henrique Anzolini
Guazzaroni, Maria-Eugenia
Almeida, Fausto
da Silva, Thiago Aparecido
Ries, Laure Nicolas Annick
de Assis, Leandro Jose
Goldman, Gustavo Henrique
Silva, Roberto Nascimento
Silva-Rocha, Rafael
author_facet Antonieto, Amanda Cristina Campos
Nogueira, Karoline Maria Vieira
de Paula, Renato Graciano
Nora, Luísa Czamanski
Cassiano, Murilo Henrique Anzolini
Guazzaroni, Maria-Eugenia
Almeida, Fausto
da Silva, Thiago Aparecido
Ries, Laure Nicolas Annick
de Assis, Leandro Jose
Goldman, Gustavo Henrique
Silva, Roberto Nascimento
Silva-Rocha, Rafael
author_sort Antonieto, Amanda Cristina Campos
collection PubMed
description Filamentous fungi are remarkable producers of enzymes dedicated to the degradation of sugar polymers found in the plant cell wall. Here, we integrated transcriptomic data to identify novel transcription factors (TFs) related to the control of gene expression of lignocellulosic hydrolases in Trichoderma reesei and Aspergillus nidulans. Using various sets of differentially expressed genes, we identified some putative cis-regulatory elements that were related to known binding sites for Saccharomyces cerevisiae TFs. Comparative genomics allowed the identification of six transcriptional factors in filamentous fungi that have corresponding S. cerevisiae homologs. Additionally, a knockout strain of T. reesei lacking one of these TFs (S. cerevisiae AZF1 homolog) displayed strong reductions in the levels of expression of several cellulase-encoding genes in response to both Avicel and sugarcane bagasse, revealing a new player in the complex regulatory network operating in filamentous fungi during plant biomass degradation. Finally, RNA sequencing (RNA-seq) analysis showed the scope of the AZF1 homologue in regulating a number of processes in T. reesei, and chromatin immunoprecipitation-quantitative PCR (ChIP-qPCR) provided evidence for the direct interaction of this TF in the promoter regions of cel7a, cel45a, and swo. Therefore, we identified here a novel TF which plays a positive effect in the expression of cellulase-encoding genes in T. reesei. IMPORTANCE In this work, we used a systems biology approach to map new regulatory interactions in Trichoderma reesei controlling the expression of genes encoding cellulase and hemicellulase. By integrating transcriptomics related to complex biomass degradation, we were able to identify a novel transcriptional regulator which is able to activate the expression of these genes in response to two different cellulose sources. In vivo experimental validation confirmed the role of this new regulator in several other processes related to carbon source utilization and nutrient transport. Therefore, this work revealed novel forms of regulatory interaction in this model system for plant biomass deconstruction and also represented a new approach that could be easy applied to other organisms.
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spelling pubmed-65816892019-06-24 A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei Antonieto, Amanda Cristina Campos Nogueira, Karoline Maria Vieira de Paula, Renato Graciano Nora, Luísa Czamanski Cassiano, Murilo Henrique Anzolini Guazzaroni, Maria-Eugenia Almeida, Fausto da Silva, Thiago Aparecido Ries, Laure Nicolas Annick de Assis, Leandro Jose Goldman, Gustavo Henrique Silva, Roberto Nascimento Silva-Rocha, Rafael mSystems Research Article Filamentous fungi are remarkable producers of enzymes dedicated to the degradation of sugar polymers found in the plant cell wall. Here, we integrated transcriptomic data to identify novel transcription factors (TFs) related to the control of gene expression of lignocellulosic hydrolases in Trichoderma reesei and Aspergillus nidulans. Using various sets of differentially expressed genes, we identified some putative cis-regulatory elements that were related to known binding sites for Saccharomyces cerevisiae TFs. Comparative genomics allowed the identification of six transcriptional factors in filamentous fungi that have corresponding S. cerevisiae homologs. Additionally, a knockout strain of T. reesei lacking one of these TFs (S. cerevisiae AZF1 homolog) displayed strong reductions in the levels of expression of several cellulase-encoding genes in response to both Avicel and sugarcane bagasse, revealing a new player in the complex regulatory network operating in filamentous fungi during plant biomass degradation. Finally, RNA sequencing (RNA-seq) analysis showed the scope of the AZF1 homologue in regulating a number of processes in T. reesei, and chromatin immunoprecipitation-quantitative PCR (ChIP-qPCR) provided evidence for the direct interaction of this TF in the promoter regions of cel7a, cel45a, and swo. Therefore, we identified here a novel TF which plays a positive effect in the expression of cellulase-encoding genes in T. reesei. IMPORTANCE In this work, we used a systems biology approach to map new regulatory interactions in Trichoderma reesei controlling the expression of genes encoding cellulase and hemicellulase. By integrating transcriptomics related to complex biomass degradation, we were able to identify a novel transcriptional regulator which is able to activate the expression of these genes in response to two different cellulose sources. In vivo experimental validation confirmed the role of this new regulator in several other processes related to carbon source utilization and nutrient transport. Therefore, this work revealed novel forms of regulatory interaction in this model system for plant biomass deconstruction and also represented a new approach that could be easy applied to other organisms. American Society for Microbiology 2019-06-18 /pmc/articles/PMC6581689/ /pubmed/31213522 http://dx.doi.org/10.1128/mSystems.00161-19 Text en Copyright © 2019 Antonieto et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Antonieto, Amanda Cristina Campos
Nogueira, Karoline Maria Vieira
de Paula, Renato Graciano
Nora, Luísa Czamanski
Cassiano, Murilo Henrique Anzolini
Guazzaroni, Maria-Eugenia
Almeida, Fausto
da Silva, Thiago Aparecido
Ries, Laure Nicolas Annick
de Assis, Leandro Jose
Goldman, Gustavo Henrique
Silva, Roberto Nascimento
Silva-Rocha, Rafael
A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei
title A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei
title_full A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei
title_fullStr A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei
title_full_unstemmed A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei
title_short A Novel Cys2His2 Zinc Finger Homolog of AZF1 Modulates Holocellulase Expression in Trichoderma reesei
title_sort novel cys2his2 zinc finger homolog of azf1 modulates holocellulase expression in trichoderma reesei
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6581689/
https://www.ncbi.nlm.nih.gov/pubmed/31213522
http://dx.doi.org/10.1128/mSystems.00161-19
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