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MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer

BACKGROUND: Recent studies have suggested that fatty acid oxidation (FAO) is a key metabolic pathway for the growth of triple negative breast cancers (TNBCs), particularly those that have high expression of MYC. However, the underlying mechanism by which MYC promotes FAO remains poorly understood. M...

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Autores principales: Casciano, Jessica C., Perry, Caroline, Cohen-Nowak, Adam J., Miller, Katelyn D., Vande Voorde, Johan, Zhang, Qifeng, Chalmers, Susan, Sandison, Mairi E., Liu, Qin, Hedley, Ann, McBryan, Tony, Tang, Hsin-Yao, Gorman, Nicole, Beer, Thomas, Speicher, David W., Adams, Peter D., Liu, Xuefeng, Schlegel, Richard, McCarron, John G., Wakelam, Michael J. O., Gottlieb, Eyal, Kossenkov, Andrew V., Schug, Zachary T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7078291/
https://www.ncbi.nlm.nih.gov/pubmed/31942031
http://dx.doi.org/10.1038/s41416-019-0711-3
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author Casciano, Jessica C.
Perry, Caroline
Cohen-Nowak, Adam J.
Miller, Katelyn D.
Vande Voorde, Johan
Zhang, Qifeng
Chalmers, Susan
Sandison, Mairi E.
Liu, Qin
Hedley, Ann
McBryan, Tony
Tang, Hsin-Yao
Gorman, Nicole
Beer, Thomas
Speicher, David W.
Adams, Peter D.
Liu, Xuefeng
Schlegel, Richard
McCarron, John G.
Wakelam, Michael J. O.
Gottlieb, Eyal
Kossenkov, Andrew V.
Schug, Zachary T.
author_facet Casciano, Jessica C.
Perry, Caroline
Cohen-Nowak, Adam J.
Miller, Katelyn D.
Vande Voorde, Johan
Zhang, Qifeng
Chalmers, Susan
Sandison, Mairi E.
Liu, Qin
Hedley, Ann
McBryan, Tony
Tang, Hsin-Yao
Gorman, Nicole
Beer, Thomas
Speicher, David W.
Adams, Peter D.
Liu, Xuefeng
Schlegel, Richard
McCarron, John G.
Wakelam, Michael J. O.
Gottlieb, Eyal
Kossenkov, Andrew V.
Schug, Zachary T.
author_sort Casciano, Jessica C.
collection PubMed
description BACKGROUND: Recent studies have suggested that fatty acid oxidation (FAO) is a key metabolic pathway for the growth of triple negative breast cancers (TNBCs), particularly those that have high expression of MYC. However, the underlying mechanism by which MYC promotes FAO remains poorly understood. METHODS: We used a combination of metabolomics, transcriptomics, bioinformatics, and microscopy to elucidate a potential mechanism by which MYC regulates FAO in TNBC. RESULTS: We propose that MYC induces a multigenic program that involves changes in intracellular calcium signalling and fatty acid metabolism. We determined key roles for fatty acid transporters (CD36), lipases (LPL), and kinases (PDGFRB, CAMKK2, and AMPK) that each contribute to promoting FAO in human mammary epithelial cells that express oncogenic levels of MYC. Bioinformatic analysis further showed that this multigenic program is highly expressed and predicts poor survival in the claudin-low molecular subtype of TNBC, but not other subtypes of TNBCs, suggesting that efforts to target FAO in the clinic may best serve claudin-low TNBC patients. CONCLUSION: We identified critical pieces of the FAO machinery that have the potential to be targeted for improved treatment of patients with TNBC, especially the claudin-low molecular subtype.
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spelling pubmed-70782912020-03-18 MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer Casciano, Jessica C. Perry, Caroline Cohen-Nowak, Adam J. Miller, Katelyn D. Vande Voorde, Johan Zhang, Qifeng Chalmers, Susan Sandison, Mairi E. Liu, Qin Hedley, Ann McBryan, Tony Tang, Hsin-Yao Gorman, Nicole Beer, Thomas Speicher, David W. Adams, Peter D. Liu, Xuefeng Schlegel, Richard McCarron, John G. Wakelam, Michael J. O. Gottlieb, Eyal Kossenkov, Andrew V. Schug, Zachary T. Br J Cancer Article BACKGROUND: Recent studies have suggested that fatty acid oxidation (FAO) is a key metabolic pathway for the growth of triple negative breast cancers (TNBCs), particularly those that have high expression of MYC. However, the underlying mechanism by which MYC promotes FAO remains poorly understood. METHODS: We used a combination of metabolomics, transcriptomics, bioinformatics, and microscopy to elucidate a potential mechanism by which MYC regulates FAO in TNBC. RESULTS: We propose that MYC induces a multigenic program that involves changes in intracellular calcium signalling and fatty acid metabolism. We determined key roles for fatty acid transporters (CD36), lipases (LPL), and kinases (PDGFRB, CAMKK2, and AMPK) that each contribute to promoting FAO in human mammary epithelial cells that express oncogenic levels of MYC. Bioinformatic analysis further showed that this multigenic program is highly expressed and predicts poor survival in the claudin-low molecular subtype of TNBC, but not other subtypes of TNBCs, suggesting that efforts to target FAO in the clinic may best serve claudin-low TNBC patients. CONCLUSION: We identified critical pieces of the FAO machinery that have the potential to be targeted for improved treatment of patients with TNBC, especially the claudin-low molecular subtype. Nature Publishing Group UK 2020-01-16 2020-03-17 /pmc/articles/PMC7078291/ /pubmed/31942031 http://dx.doi.org/10.1038/s41416-019-0711-3 Text en © The Author(s) 2020 https://creativecommons.org/licenses/by/4.0/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/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Casciano, Jessica C.
Perry, Caroline
Cohen-Nowak, Adam J.
Miller, Katelyn D.
Vande Voorde, Johan
Zhang, Qifeng
Chalmers, Susan
Sandison, Mairi E.
Liu, Qin
Hedley, Ann
McBryan, Tony
Tang, Hsin-Yao
Gorman, Nicole
Beer, Thomas
Speicher, David W.
Adams, Peter D.
Liu, Xuefeng
Schlegel, Richard
McCarron, John G.
Wakelam, Michael J. O.
Gottlieb, Eyal
Kossenkov, Andrew V.
Schug, Zachary T.
MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer
title MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer
title_full MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer
title_fullStr MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer
title_full_unstemmed MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer
title_short MYC regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer
title_sort myc regulates fatty acid metabolism through a multigenic program in claudin-low triple negative breast cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7078291/
https://www.ncbi.nlm.nih.gov/pubmed/31942031
http://dx.doi.org/10.1038/s41416-019-0711-3
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