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The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases

Cryptococcosis is a fungal disease caused by C. neoformans. To adapt and survive in diverse ecological niches, including the animal host, this opportunistic pathogen relies on its ability to uptake nutrients, such as carbon, nitrogen, iron, phosphate, sulfur, and amino acids. Genetic circuits play a...

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Autores principales: de Melo, Amanda Teixeira, Martho, Kevin Felipe, Roberto, Thiago Nunes, Nishiduka, Erika S., Machado, Joel, Brustolini, Otávio J. B., Tashima, Alexandre K., Vasconcelos, Ana Tereza, Vallim, Marcelo A., Pascon, Renata C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6695392/
https://www.ncbi.nlm.nih.gov/pubmed/31417135
http://dx.doi.org/10.1038/s41598-019-48433-5
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author de Melo, Amanda Teixeira
Martho, Kevin Felipe
Roberto, Thiago Nunes
Nishiduka, Erika S.
Machado, Joel
Brustolini, Otávio J. B.
Tashima, Alexandre K.
Vasconcelos, Ana Tereza
Vallim, Marcelo A.
Pascon, Renata C.
author_facet de Melo, Amanda Teixeira
Martho, Kevin Felipe
Roberto, Thiago Nunes
Nishiduka, Erika S.
Machado, Joel
Brustolini, Otávio J. B.
Tashima, Alexandre K.
Vasconcelos, Ana Tereza
Vallim, Marcelo A.
Pascon, Renata C.
author_sort de Melo, Amanda Teixeira
collection PubMed
description Cryptococcosis is a fungal disease caused by C. neoformans. To adapt and survive in diverse ecological niches, including the animal host, this opportunistic pathogen relies on its ability to uptake nutrients, such as carbon, nitrogen, iron, phosphate, sulfur, and amino acids. Genetic circuits play a role in the response to environmental changes, modulating gene expression and adjusting the microbial metabolism to the nutrients available for the best energy usage and survival. We studied the sulfur amino acid biosynthesis and its implications on C. neoformans biology and virulence. CNAG_04798 encodes a BZip protein and was annotated as CYS3, which has been considered an essential gene. However, we demonstrated that CYS3 is not essential, in fact, its knockout led to sulfur amino acids auxotroph. Western blots and fluorescence microscopy indicated that GFP-Cys3, which is expressed from a constitutive promoter, localizes to the nucleus in rich medium (YEPD); the addition of methionine and cysteine as sole nitrogen source (SD–N + Met/Cys) led to reduced nuclear localization and protein degradation. By proteomics, we identified and confirmed physical interaction among Gpp2, Cna1, Cnb1 and GFP-Cys3. Deletion of the calcineurin and GPP2 genes in a GFP-Cys3 background demonstrated that calcineurin is required to maintain Cys3 high protein levels in YEPD and that deletion of GPP2 causes GFP-Cys3 to persist in the presence of sulfur amino acids. Global transcriptional profile of mutant and wild type by RNAseq revealed that Cys3 controls all branches of the sulfur amino acid biosynthesis, and sulfur starvation leads to induction of several amino acid biosynthetic routes. In addition, we found that Cys3 is required for virulence in Galleria mellonella animal model.
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spelling pubmed-66953922019-08-19 The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases de Melo, Amanda Teixeira Martho, Kevin Felipe Roberto, Thiago Nunes Nishiduka, Erika S. Machado, Joel Brustolini, Otávio J. B. Tashima, Alexandre K. Vasconcelos, Ana Tereza Vallim, Marcelo A. Pascon, Renata C. Sci Rep Article Cryptococcosis is a fungal disease caused by C. neoformans. To adapt and survive in diverse ecological niches, including the animal host, this opportunistic pathogen relies on its ability to uptake nutrients, such as carbon, nitrogen, iron, phosphate, sulfur, and amino acids. Genetic circuits play a role in the response to environmental changes, modulating gene expression and adjusting the microbial metabolism to the nutrients available for the best energy usage and survival. We studied the sulfur amino acid biosynthesis and its implications on C. neoformans biology and virulence. CNAG_04798 encodes a BZip protein and was annotated as CYS3, which has been considered an essential gene. However, we demonstrated that CYS3 is not essential, in fact, its knockout led to sulfur amino acids auxotroph. Western blots and fluorescence microscopy indicated that GFP-Cys3, which is expressed from a constitutive promoter, localizes to the nucleus in rich medium (YEPD); the addition of methionine and cysteine as sole nitrogen source (SD–N + Met/Cys) led to reduced nuclear localization and protein degradation. By proteomics, we identified and confirmed physical interaction among Gpp2, Cna1, Cnb1 and GFP-Cys3. Deletion of the calcineurin and GPP2 genes in a GFP-Cys3 background demonstrated that calcineurin is required to maintain Cys3 high protein levels in YEPD and that deletion of GPP2 causes GFP-Cys3 to persist in the presence of sulfur amino acids. Global transcriptional profile of mutant and wild type by RNAseq revealed that Cys3 controls all branches of the sulfur amino acid biosynthesis, and sulfur starvation leads to induction of several amino acid biosynthetic routes. In addition, we found that Cys3 is required for virulence in Galleria mellonella animal model. Nature Publishing Group UK 2019-08-15 /pmc/articles/PMC6695392/ /pubmed/31417135 http://dx.doi.org/10.1038/s41598-019-48433-5 Text en © The Author(s) 2019 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
de Melo, Amanda Teixeira
Martho, Kevin Felipe
Roberto, Thiago Nunes
Nishiduka, Erika S.
Machado, Joel
Brustolini, Otávio J. B.
Tashima, Alexandre K.
Vasconcelos, Ana Tereza
Vallim, Marcelo A.
Pascon, Renata C.
The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases
title The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases
title_full The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases
title_fullStr The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases
title_full_unstemmed The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases
title_short The regulation of the sulfur amino acid biosynthetic pathway in Cryptococcus neoformans: the relationship of Cys3, Calcineurin, and Gpp2 phosphatases
title_sort regulation of the sulfur amino acid biosynthetic pathway in cryptococcus neoformans: the relationship of cys3, calcineurin, and gpp2 phosphatases
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6695392/
https://www.ncbi.nlm.nih.gov/pubmed/31417135
http://dx.doi.org/10.1038/s41598-019-48433-5
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