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Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1

Biofilm formation on implanted medical devices is a major source of lethal invasive infection by Candida albicans. Filamentous growth of this fungus is tied to biofilm formation because many filamentation-associated genes are required for surface adherence. Cell cycle or cell growth defects can indu...

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Autores principales: Woolford, Carol A., Lagree, Katherine, Xu, Wenjie, Aleynikov, Tatyana, Adhikari, Hema, Sanchez, Hiram, Cullen, Paul J., Lanni, Frederick, Andes, David R., Mitchell, Aaron P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5147786/
https://www.ncbi.nlm.nih.gov/pubmed/27935965
http://dx.doi.org/10.1371/journal.pgen.1006487
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author Woolford, Carol A.
Lagree, Katherine
Xu, Wenjie
Aleynikov, Tatyana
Adhikari, Hema
Sanchez, Hiram
Cullen, Paul J.
Lanni, Frederick
Andes, David R.
Mitchell, Aaron P.
author_facet Woolford, Carol A.
Lagree, Katherine
Xu, Wenjie
Aleynikov, Tatyana
Adhikari, Hema
Sanchez, Hiram
Cullen, Paul J.
Lanni, Frederick
Andes, David R.
Mitchell, Aaron P.
author_sort Woolford, Carol A.
collection PubMed
description Biofilm formation on implanted medical devices is a major source of lethal invasive infection by Candida albicans. Filamentous growth of this fungus is tied to biofilm formation because many filamentation-associated genes are required for surface adherence. Cell cycle or cell growth defects can induce filamentation, but we have limited information about the coupling between filamentation and filamentation-associated gene expression after cell cycle/cell growth inhibition. Here we identified the CDK activating protein kinase Cak1 as a determinant of filamentation and filamentation-associated gene expression through a screen of mutations that diminish expression of protein kinase-related genes implicated in cell cycle/cell growth control. A cak1 diminished expression (DX) strain displays filamentous growth and expresses filamentation-associated genes in the absence of typical inducing signals. In a wild-type background, expression of filamentation-associated genes depends upon the transcription factors Bcr1, Brg1, Efg1, Tec1, and Ume6. In the cak1 DX background, the dependence of filamentation-associated gene expression on each transcription factor is substantially relieved. The unexpected bypass of filamentation-associated gene expression activators has the functional consequence of enabling biofilm formation in the absence of Bcr1, Brg1, Tec1, Ume6, or in the absence of both Brg1 and Ume6. It also enables filamentous cell morphogenesis, though not biofilm formation, in the absence of Efg1. Because these transcription factors are known to have shared target genes, we suggest that cell cycle/cell growth limitation leads to activation of several transcription factors, thus relieving dependence on any one.
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spelling pubmed-51477862016-12-28 Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1 Woolford, Carol A. Lagree, Katherine Xu, Wenjie Aleynikov, Tatyana Adhikari, Hema Sanchez, Hiram Cullen, Paul J. Lanni, Frederick Andes, David R. Mitchell, Aaron P. PLoS Genet Research Article Biofilm formation on implanted medical devices is a major source of lethal invasive infection by Candida albicans. Filamentous growth of this fungus is tied to biofilm formation because many filamentation-associated genes are required for surface adherence. Cell cycle or cell growth defects can induce filamentation, but we have limited information about the coupling between filamentation and filamentation-associated gene expression after cell cycle/cell growth inhibition. Here we identified the CDK activating protein kinase Cak1 as a determinant of filamentation and filamentation-associated gene expression through a screen of mutations that diminish expression of protein kinase-related genes implicated in cell cycle/cell growth control. A cak1 diminished expression (DX) strain displays filamentous growth and expresses filamentation-associated genes in the absence of typical inducing signals. In a wild-type background, expression of filamentation-associated genes depends upon the transcription factors Bcr1, Brg1, Efg1, Tec1, and Ume6. In the cak1 DX background, the dependence of filamentation-associated gene expression on each transcription factor is substantially relieved. The unexpected bypass of filamentation-associated gene expression activators has the functional consequence of enabling biofilm formation in the absence of Bcr1, Brg1, Tec1, Ume6, or in the absence of both Brg1 and Ume6. It also enables filamentous cell morphogenesis, though not biofilm formation, in the absence of Efg1. Because these transcription factors are known to have shared target genes, we suggest that cell cycle/cell growth limitation leads to activation of several transcription factors, thus relieving dependence on any one. Public Library of Science 2016-12-09 /pmc/articles/PMC5147786/ /pubmed/27935965 http://dx.doi.org/10.1371/journal.pgen.1006487 Text en © 2016 Woolford et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Woolford, Carol A.
Lagree, Katherine
Xu, Wenjie
Aleynikov, Tatyana
Adhikari, Hema
Sanchez, Hiram
Cullen, Paul J.
Lanni, Frederick
Andes, David R.
Mitchell, Aaron P.
Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1
title Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1
title_full Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1
title_fullStr Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1
title_full_unstemmed Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1
title_short Bypass of Candida albicans Filamentation/Biofilm Regulators through Diminished Expression of Protein Kinase Cak1
title_sort bypass of candida albicans filamentation/biofilm regulators through diminished expression of protein kinase cak1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5147786/
https://www.ncbi.nlm.nih.gov/pubmed/27935965
http://dx.doi.org/10.1371/journal.pgen.1006487
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