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Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival

ABSTRACT: Diffuse large B-cell lymphomas (DLBCL) are broadly dependent on anaplerotic metabolism regulated by mitochondrial SIRT3. Herein we find that translational upregulation of ATF4 is coupled with anaplerotic metabolism in DLBCLs due to nutrient deprivation caused by SIRT3 driving rapid flux of...

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Autores principales: Li, Meng, Teater, Matthew R., Hong, Jun Young, Park, Noel R., Duy, Cihangir, Shen, Hao, Wang, Ling, Chen, Zhengming, Cerchietti, Leandro, Davidson, Shawn M., Lin, Hening, Melnick, Ari M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for Cancer Research 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9789686/
https://www.ncbi.nlm.nih.gov/pubmed/35019856
http://dx.doi.org/10.1158/2643-3230.BCD-20-0183
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author Li, Meng
Teater, Matthew R.
Hong, Jun Young
Park, Noel R.
Duy, Cihangir
Shen, Hao
Wang, Ling
Chen, Zhengming
Cerchietti, Leandro
Davidson, Shawn M.
Lin, Hening
Melnick, Ari M.
author_facet Li, Meng
Teater, Matthew R.
Hong, Jun Young
Park, Noel R.
Duy, Cihangir
Shen, Hao
Wang, Ling
Chen, Zhengming
Cerchietti, Leandro
Davidson, Shawn M.
Lin, Hening
Melnick, Ari M.
author_sort Li, Meng
collection PubMed
description ABSTRACT: Diffuse large B-cell lymphomas (DLBCL) are broadly dependent on anaplerotic metabolism regulated by mitochondrial SIRT3. Herein we find that translational upregulation of ATF4 is coupled with anaplerotic metabolism in DLBCLs due to nutrient deprivation caused by SIRT3 driving rapid flux of glutamine into the tricarboxylic acid (TCA) cycle. SIRT3 depletion led to ATF4 downregulation and cell death, which was rescued by ectopic ATF4 expression. Mechanistically, ATF4 translation is inhibited in SIRT3-deficient cells due to the increased pools of amino acids derived from compensatory autophagy and decreased glutamine consumption by the TCA cycle. Absence of ATF4 further aggravates this state through downregulation of its target genes, including genes for amino acid biosynthesis and import. Collectively, we identify a SIRT3–ATF4 axis required to maintain survival of DLBCL cells by enabling them to optimize amino acid uptake and utilization. Targeting ATF4 translation can potentiate the cytotoxic effect of SIRT3 inhibitor to DLBCL cells. SIGNIFICANCE: We discovered the link between SIRT3 and ATF4 in DLBCL cells, which connected lymphoma amino acid metabolism with ATF4 translation via metabolic stress signals. SIRT3–ATF4 axis is required in DLBCL cells regardless of subtype, which indicates a common metabolic vulnerability in DLBCLs and can serve as a therapeutic target. This article is highlighted in the In This Issue feature, p. 1
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spelling pubmed-97896862023-02-06 Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival Li, Meng Teater, Matthew R. Hong, Jun Young Park, Noel R. Duy, Cihangir Shen, Hao Wang, Ling Chen, Zhengming Cerchietti, Leandro Davidson, Shawn M. Lin, Hening Melnick, Ari M. Blood Cancer Discov Research Articles ABSTRACT: Diffuse large B-cell lymphomas (DLBCL) are broadly dependent on anaplerotic metabolism regulated by mitochondrial SIRT3. Herein we find that translational upregulation of ATF4 is coupled with anaplerotic metabolism in DLBCLs due to nutrient deprivation caused by SIRT3 driving rapid flux of glutamine into the tricarboxylic acid (TCA) cycle. SIRT3 depletion led to ATF4 downregulation and cell death, which was rescued by ectopic ATF4 expression. Mechanistically, ATF4 translation is inhibited in SIRT3-deficient cells due to the increased pools of amino acids derived from compensatory autophagy and decreased glutamine consumption by the TCA cycle. Absence of ATF4 further aggravates this state through downregulation of its target genes, including genes for amino acid biosynthesis and import. Collectively, we identify a SIRT3–ATF4 axis required to maintain survival of DLBCL cells by enabling them to optimize amino acid uptake and utilization. Targeting ATF4 translation can potentiate the cytotoxic effect of SIRT3 inhibitor to DLBCL cells. SIGNIFICANCE: We discovered the link between SIRT3 and ATF4 in DLBCL cells, which connected lymphoma amino acid metabolism with ATF4 translation via metabolic stress signals. SIRT3–ATF4 axis is required in DLBCL cells regardless of subtype, which indicates a common metabolic vulnerability in DLBCLs and can serve as a therapeutic target. This article is highlighted in the In This Issue feature, p. 1 American Association for Cancer Research 2022-01 2021-11-09 /pmc/articles/PMC9789686/ /pubmed/35019856 http://dx.doi.org/10.1158/2643-3230.BCD-20-0183 Text en ©2021 The Authors; Published by the American Association for Cancer Research https://creativecommons.org/licenses/by/4.0/This open access article is distributed under the Creative Commons Attribution 4.0 International (CC BY 4.0) license.
spellingShingle Research Articles
Li, Meng
Teater, Matthew R.
Hong, Jun Young
Park, Noel R.
Duy, Cihangir
Shen, Hao
Wang, Ling
Chen, Zhengming
Cerchietti, Leandro
Davidson, Shawn M.
Lin, Hening
Melnick, Ari M.
Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival
title Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival
title_full Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival
title_fullStr Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival
title_full_unstemmed Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival
title_short Translational Activation of ATF4 through Mitochondrial Anaplerotic Metabolic Pathways Is Required for DLBCL Growth and Survival
title_sort translational activation of atf4 through mitochondrial anaplerotic metabolic pathways is required for dlbcl growth and survival
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9789686/
https://www.ncbi.nlm.nih.gov/pubmed/35019856
http://dx.doi.org/10.1158/2643-3230.BCD-20-0183
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