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A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis

Using small molecule probes to understand gene function is an attractive approach that allows functional characterization of genes that are dispensable in standard laboratory conditions and provides insight into the mode of action of these compounds. Using chemogenomic assays we previously identifie...

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Autores principales: Lissina, Elena, Young, Brian, Urbanus, Malene L., Guan, Xue Li, Lowenson, Jonathan, Hoon, Shawn, Baryshnikova, Anastasia, Riezman, Isabelle, Michaut, Magali, Riezman, Howard, Cowen, Leah E., Wenk, Markus R., Clarke, Steven G., Giaever, Guri, Nislow, Corey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3197675/
https://www.ncbi.nlm.nih.gov/pubmed/22028670
http://dx.doi.org/10.1371/journal.pgen.1002332
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author Lissina, Elena
Young, Brian
Urbanus, Malene L.
Guan, Xue Li
Lowenson, Jonathan
Hoon, Shawn
Baryshnikova, Anastasia
Riezman, Isabelle
Michaut, Magali
Riezman, Howard
Cowen, Leah E.
Wenk, Markus R.
Clarke, Steven G.
Giaever, Guri
Nislow, Corey
author_facet Lissina, Elena
Young, Brian
Urbanus, Malene L.
Guan, Xue Li
Lowenson, Jonathan
Hoon, Shawn
Baryshnikova, Anastasia
Riezman, Isabelle
Michaut, Magali
Riezman, Howard
Cowen, Leah E.
Wenk, Markus R.
Clarke, Steven G.
Giaever, Guri
Nislow, Corey
author_sort Lissina, Elena
collection PubMed
description Using small molecule probes to understand gene function is an attractive approach that allows functional characterization of genes that are dispensable in standard laboratory conditions and provides insight into the mode of action of these compounds. Using chemogenomic assays we previously identified yeast Crg1, an uncharacterized SAM-dependent methyltransferase, as a novel interactor of the protein phosphatase inhibitor cantharidin. In this study we used a combinatorial approach that exploits contemporary high-throughput techniques available in Saccharomyces cerevisiae combined with rigorous biological follow-up to characterize the interaction of Crg1 with cantharidin. Biochemical analysis of this enzyme followed by a systematic analysis of the interactome and lipidome of CRG1 mutants revealed that Crg1, a stress-responsive SAM-dependent methyltransferase, methylates cantharidin in vitro. Chemogenomic assays uncovered that lipid-related processes are essential for cantharidin resistance in cells sensitized by deletion of the CRG1 gene. Lipidome-wide analysis of mutants further showed that cantharidin induces alterations in glycerophospholipid and sphingolipid abundance in a Crg1-dependent manner. We propose that Crg1 is a small molecule methyltransferase important for maintaining lipid homeostasis in response to drug perturbation. This approach demonstrates the value of combining chemical genomics with other systems-based methods for characterizing proteins and elucidating previously unknown mechanisms of action of small molecule inhibitors.
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spelling pubmed-31976752011-10-25 A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis Lissina, Elena Young, Brian Urbanus, Malene L. Guan, Xue Li Lowenson, Jonathan Hoon, Shawn Baryshnikova, Anastasia Riezman, Isabelle Michaut, Magali Riezman, Howard Cowen, Leah E. Wenk, Markus R. Clarke, Steven G. Giaever, Guri Nislow, Corey PLoS Genet Research Article Using small molecule probes to understand gene function is an attractive approach that allows functional characterization of genes that are dispensable in standard laboratory conditions and provides insight into the mode of action of these compounds. Using chemogenomic assays we previously identified yeast Crg1, an uncharacterized SAM-dependent methyltransferase, as a novel interactor of the protein phosphatase inhibitor cantharidin. In this study we used a combinatorial approach that exploits contemporary high-throughput techniques available in Saccharomyces cerevisiae combined with rigorous biological follow-up to characterize the interaction of Crg1 with cantharidin. Biochemical analysis of this enzyme followed by a systematic analysis of the interactome and lipidome of CRG1 mutants revealed that Crg1, a stress-responsive SAM-dependent methyltransferase, methylates cantharidin in vitro. Chemogenomic assays uncovered that lipid-related processes are essential for cantharidin resistance in cells sensitized by deletion of the CRG1 gene. Lipidome-wide analysis of mutants further showed that cantharidin induces alterations in glycerophospholipid and sphingolipid abundance in a Crg1-dependent manner. We propose that Crg1 is a small molecule methyltransferase important for maintaining lipid homeostasis in response to drug perturbation. This approach demonstrates the value of combining chemical genomics with other systems-based methods for characterizing proteins and elucidating previously unknown mechanisms of action of small molecule inhibitors. Public Library of Science 2011-10-20 /pmc/articles/PMC3197675/ /pubmed/22028670 http://dx.doi.org/10.1371/journal.pgen.1002332 Text en Lissina 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lissina, Elena
Young, Brian
Urbanus, Malene L.
Guan, Xue Li
Lowenson, Jonathan
Hoon, Shawn
Baryshnikova, Anastasia
Riezman, Isabelle
Michaut, Magali
Riezman, Howard
Cowen, Leah E.
Wenk, Markus R.
Clarke, Steven G.
Giaever, Guri
Nislow, Corey
A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis
title A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis
title_full A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis
title_fullStr A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis
title_full_unstemmed A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis
title_short A Systems Biology Approach Reveals the Role of a Novel Methyltransferase in Response to Chemical Stress and Lipid Homeostasis
title_sort systems biology approach reveals the role of a novel methyltransferase in response to chemical stress and lipid homeostasis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3197675/
https://www.ncbi.nlm.nih.gov/pubmed/22028670
http://dx.doi.org/10.1371/journal.pgen.1002332
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