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Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer

Altered lipid metabolism is a potential target for therapeutic intervention in cancer. Overexpression of Fatty Acid Synthase (FASN) correlates with poor prognosis in colorectal cancer (CRC). While multiple studies show that upregulation of lipogenesis is critically important for CRC progression, the...

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Autores principales: Drury, James, Young, Lyndsay E. A., Scott, Timothy L., Kelson, Courtney O., He, Daheng, Liu, Jinpeng, Wu, Yuanyan, Wang, Chi, Weiss, Heidi L., Fan, Teresa, Gentry, Matthew S., Sun, Ramon, Zaytseva, Yekaterina Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9245602/
https://www.ncbi.nlm.nih.gov/pubmed/35742953
http://dx.doi.org/10.3390/ijms23126510
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author Drury, James
Young, Lyndsay E. A.
Scott, Timothy L.
Kelson, Courtney O.
He, Daheng
Liu, Jinpeng
Wu, Yuanyan
Wang, Chi
Weiss, Heidi L.
Fan, Teresa
Gentry, Matthew S.
Sun, Ramon
Zaytseva, Yekaterina Y.
author_facet Drury, James
Young, Lyndsay E. A.
Scott, Timothy L.
Kelson, Courtney O.
He, Daheng
Liu, Jinpeng
Wu, Yuanyan
Wang, Chi
Weiss, Heidi L.
Fan, Teresa
Gentry, Matthew S.
Sun, Ramon
Zaytseva, Yekaterina Y.
author_sort Drury, James
collection PubMed
description Altered lipid metabolism is a potential target for therapeutic intervention in cancer. Overexpression of Fatty Acid Synthase (FASN) correlates with poor prognosis in colorectal cancer (CRC). While multiple studies show that upregulation of lipogenesis is critically important for CRC progression, the contribution of FASN to CRC initiation is poorly understood. We utilize a C57BL/6-Apc/Villin-Cre mouse model with knockout of FASN in intestinal epithelial cells to show that the heterozygous deletion of FASN increases mouse survival and decreases the number of intestinal adenomas. Using RNA-Seq and gene set enrichment analysis, we demonstrate that a decrease in FASN expression is associated with inhibition of pathways involved in cellular proliferation, energy production, and CRC progression. Metabolic and reverse phase protein array analyses demonstrate consistent changes in alteration of metabolic pathways involved in both anabolism and energy production. Downregulation of FASN expression reduces the levels of metabolites within glycolysis and tricarboxylic acid cycle with the most significant reduction in the level of citrate, a master metabolite, which enhances ATP production and fuels anabolic pathways. In summary, we demonstrate the critical importance of FASN during CRC initiation. These findings suggest that targeting FASN is a potential therapeutic approach for early stages of CRC or as a preventive strategy for this disease.
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spelling pubmed-92456022022-07-01 Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer Drury, James Young, Lyndsay E. A. Scott, Timothy L. Kelson, Courtney O. He, Daheng Liu, Jinpeng Wu, Yuanyan Wang, Chi Weiss, Heidi L. Fan, Teresa Gentry, Matthew S. Sun, Ramon Zaytseva, Yekaterina Y. Int J Mol Sci Article Altered lipid metabolism is a potential target for therapeutic intervention in cancer. Overexpression of Fatty Acid Synthase (FASN) correlates with poor prognosis in colorectal cancer (CRC). While multiple studies show that upregulation of lipogenesis is critically important for CRC progression, the contribution of FASN to CRC initiation is poorly understood. We utilize a C57BL/6-Apc/Villin-Cre mouse model with knockout of FASN in intestinal epithelial cells to show that the heterozygous deletion of FASN increases mouse survival and decreases the number of intestinal adenomas. Using RNA-Seq and gene set enrichment analysis, we demonstrate that a decrease in FASN expression is associated with inhibition of pathways involved in cellular proliferation, energy production, and CRC progression. Metabolic and reverse phase protein array analyses demonstrate consistent changes in alteration of metabolic pathways involved in both anabolism and energy production. Downregulation of FASN expression reduces the levels of metabolites within glycolysis and tricarboxylic acid cycle with the most significant reduction in the level of citrate, a master metabolite, which enhances ATP production and fuels anabolic pathways. In summary, we demonstrate the critical importance of FASN during CRC initiation. These findings suggest that targeting FASN is a potential therapeutic approach for early stages of CRC or as a preventive strategy for this disease. MDPI 2022-06-10 /pmc/articles/PMC9245602/ /pubmed/35742953 http://dx.doi.org/10.3390/ijms23126510 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Drury, James
Young, Lyndsay E. A.
Scott, Timothy L.
Kelson, Courtney O.
He, Daheng
Liu, Jinpeng
Wu, Yuanyan
Wang, Chi
Weiss, Heidi L.
Fan, Teresa
Gentry, Matthew S.
Sun, Ramon
Zaytseva, Yekaterina Y.
Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer
title Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer
title_full Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer
title_fullStr Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer
title_full_unstemmed Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer
title_short Tissue-Specific Downregulation of Fatty Acid Synthase Suppresses Intestinal Adenoma Formation via Coordinated Reprograming of Transcriptome and Metabolism in the Mouse Model of Apc-Driven Colorectal Cancer
title_sort tissue-specific downregulation of fatty acid synthase suppresses intestinal adenoma formation via coordinated reprograming of transcriptome and metabolism in the mouse model of apc-driven colorectal cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9245602/
https://www.ncbi.nlm.nih.gov/pubmed/35742953
http://dx.doi.org/10.3390/ijms23126510
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