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Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism

The transcription factor hypoxia-inducible factor 1 (HIF1) is the crucial regulator of genes that are involved in metabolism under hypoxic conditions, but information regarding the transcriptional activity of HIF1 in normoxic metabolism is limited. Different tumor cells were treated under normoxic a...

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Autores principales: Kappler, Matthias, Pabst, Ulrike, Weinholdt, Claus, Taubert, Helge, Rot, Swetlana, Kaune, Tom, Kotrba, Johanna, Porsch, Martin, Güttler, Antje, Bache, Matthias, Krohn, Knut, Bull, Fabian, Riemann, Anne, Wickenhauser, Claudia, Seliger, Barbara, Schubert, Johannes, Al-Nawas, Bilal, Thews, Oliver, Grosse, Ivo, Vordermark, Dirk, Eckert, Alexander W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6802203/
https://www.ncbi.nlm.nih.gov/pubmed/31554283
http://dx.doi.org/10.3390/ijms20194742
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author Kappler, Matthias
Pabst, Ulrike
Weinholdt, Claus
Taubert, Helge
Rot, Swetlana
Kaune, Tom
Kotrba, Johanna
Porsch, Martin
Güttler, Antje
Bache, Matthias
Krohn, Knut
Bull, Fabian
Riemann, Anne
Wickenhauser, Claudia
Seliger, Barbara
Schubert, Johannes
Al-Nawas, Bilal
Thews, Oliver
Grosse, Ivo
Vordermark, Dirk
Eckert, Alexander W.
author_facet Kappler, Matthias
Pabst, Ulrike
Weinholdt, Claus
Taubert, Helge
Rot, Swetlana
Kaune, Tom
Kotrba, Johanna
Porsch, Martin
Güttler, Antje
Bache, Matthias
Krohn, Knut
Bull, Fabian
Riemann, Anne
Wickenhauser, Claudia
Seliger, Barbara
Schubert, Johannes
Al-Nawas, Bilal
Thews, Oliver
Grosse, Ivo
Vordermark, Dirk
Eckert, Alexander W.
author_sort Kappler, Matthias
collection PubMed
description The transcription factor hypoxia-inducible factor 1 (HIF1) is the crucial regulator of genes that are involved in metabolism under hypoxic conditions, but information regarding the transcriptional activity of HIF1 in normoxic metabolism is limited. Different tumor cells were treated under normoxic and hypoxic conditions with various drugs that affect cellular metabolism. HIF1α was silenced by siRNA in normoxic/hypoxic tumor cells, before RNA sequencing and bioinformatics analyses were performed while using the breast cancer cell line MDA-MB-231 as a model. Differentially expressed genes were further analyzed and validated by qPCR, while the activity of the metabolites was determined by enzyme assays. Under normoxic conditions, HIF1 activity was significantly increased by (i) glutamine metabolism, which was associated with the release of ammonium, and it was decreased by (ii) acetylation via acetyl CoA synthetase (ACSS2) or ATP citrate lyase (ACLY), respectively, and (iii) the presence of L-ascorbic acid, citrate, or acetyl-CoA. Interestingly, acetylsalicylic acid, ibuprofen, L-ascorbic acid, and citrate each significantly destabilized HIF1α only under normoxia. The results from the deep sequence analyses indicated that, in HIF1-siRNA silenced MDA-MB-231 cells, 231 genes under normoxia and 1384 genes under hypoxia were transcriptionally significant deregulated in a HIF1-dependent manner. Focusing on glycolysis genes, it was confirmed that HIF1 significantly regulated six normoxic and 16 hypoxic glycolysis-associated gene transcripts. However, the results from the targeted metabolome analyses revealed that HIF1 activity affected neither the consumption of glucose nor the release of ammonium or lactate; however, it significantly inhibited the release of the amino acid alanine. This study comprehensively investigated, for the first time, how normoxic HIF1 is stabilized, and it analyzed the possible function of normoxic HIF1 in the transcriptome and metabolic processes of tumor cells in a breast cancer cell model. Furthermore, these data imply that HIF1 compensates for the metabolic outcomes of glutaminolysis and, subsequently, the Warburg effect might be a direct consequence of the altered amino acid metabolism in tumor cells.
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spelling pubmed-68022032019-11-18 Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism Kappler, Matthias Pabst, Ulrike Weinholdt, Claus Taubert, Helge Rot, Swetlana Kaune, Tom Kotrba, Johanna Porsch, Martin Güttler, Antje Bache, Matthias Krohn, Knut Bull, Fabian Riemann, Anne Wickenhauser, Claudia Seliger, Barbara Schubert, Johannes Al-Nawas, Bilal Thews, Oliver Grosse, Ivo Vordermark, Dirk Eckert, Alexander W. Int J Mol Sci Article The transcription factor hypoxia-inducible factor 1 (HIF1) is the crucial regulator of genes that are involved in metabolism under hypoxic conditions, but information regarding the transcriptional activity of HIF1 in normoxic metabolism is limited. Different tumor cells were treated under normoxic and hypoxic conditions with various drugs that affect cellular metabolism. HIF1α was silenced by siRNA in normoxic/hypoxic tumor cells, before RNA sequencing and bioinformatics analyses were performed while using the breast cancer cell line MDA-MB-231 as a model. Differentially expressed genes were further analyzed and validated by qPCR, while the activity of the metabolites was determined by enzyme assays. Under normoxic conditions, HIF1 activity was significantly increased by (i) glutamine metabolism, which was associated with the release of ammonium, and it was decreased by (ii) acetylation via acetyl CoA synthetase (ACSS2) or ATP citrate lyase (ACLY), respectively, and (iii) the presence of L-ascorbic acid, citrate, or acetyl-CoA. Interestingly, acetylsalicylic acid, ibuprofen, L-ascorbic acid, and citrate each significantly destabilized HIF1α only under normoxia. The results from the deep sequence analyses indicated that, in HIF1-siRNA silenced MDA-MB-231 cells, 231 genes under normoxia and 1384 genes under hypoxia were transcriptionally significant deregulated in a HIF1-dependent manner. Focusing on glycolysis genes, it was confirmed that HIF1 significantly regulated six normoxic and 16 hypoxic glycolysis-associated gene transcripts. However, the results from the targeted metabolome analyses revealed that HIF1 activity affected neither the consumption of glucose nor the release of ammonium or lactate; however, it significantly inhibited the release of the amino acid alanine. This study comprehensively investigated, for the first time, how normoxic HIF1 is stabilized, and it analyzed the possible function of normoxic HIF1 in the transcriptome and metabolic processes of tumor cells in a breast cancer cell model. Furthermore, these data imply that HIF1 compensates for the metabolic outcomes of glutaminolysis and, subsequently, the Warburg effect might be a direct consequence of the altered amino acid metabolism in tumor cells. MDPI 2019-09-24 /pmc/articles/PMC6802203/ /pubmed/31554283 http://dx.doi.org/10.3390/ijms20194742 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kappler, Matthias
Pabst, Ulrike
Weinholdt, Claus
Taubert, Helge
Rot, Swetlana
Kaune, Tom
Kotrba, Johanna
Porsch, Martin
Güttler, Antje
Bache, Matthias
Krohn, Knut
Bull, Fabian
Riemann, Anne
Wickenhauser, Claudia
Seliger, Barbara
Schubert, Johannes
Al-Nawas, Bilal
Thews, Oliver
Grosse, Ivo
Vordermark, Dirk
Eckert, Alexander W.
Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism
title Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism
title_full Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism
title_fullStr Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism
title_full_unstemmed Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism
title_short Causes and Consequences of A Glutamine Induced Normoxic HIF1 Activity for the Tumor Metabolism
title_sort causes and consequences of a glutamine induced normoxic hif1 activity for the tumor metabolism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6802203/
https://www.ncbi.nlm.nih.gov/pubmed/31554283
http://dx.doi.org/10.3390/ijms20194742
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