Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells
Abstract Background During breast cancer progression, the epithelial to mesenchymal transition has been associated with metastasis and endocrine therapy resistance; however, the underlying mechanisms remain elusive. To gain insight into this process, we studied the transition undergone by MCF7-deriv...
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BMC
2020-07-01
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Series: | Cancer & Metabolism |
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Online Access: | http://link.springer.com/article/10.1186/s40170-020-00216-7 |
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doaj-87dbd3fcc1344db092b9283e458aacae |
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record_format |
Article |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Tamara Fernández-Calero Marcos Davyt Karen Perelmuter Cora Chalar Giovana Bampi Helena Persson Juan Pablo Tosar Völundur Hafstað Hugo Naya Carlos Rovira Mariela Bollati-Fogolín Ricardo Ehrlich Gilles Flouriot Zoya Ignatova Mónica Marín |
spellingShingle |
Tamara Fernández-Calero Marcos Davyt Karen Perelmuter Cora Chalar Giovana Bampi Helena Persson Juan Pablo Tosar Völundur Hafstað Hugo Naya Carlos Rovira Mariela Bollati-Fogolín Ricardo Ehrlich Gilles Flouriot Zoya Ignatova Mónica Marín Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells Cancer & Metabolism Breast cancer EMT Luminal to basal transition MKL1/actin signaling pathway Metabolism adaptation Translation machinery |
author_facet |
Tamara Fernández-Calero Marcos Davyt Karen Perelmuter Cora Chalar Giovana Bampi Helena Persson Juan Pablo Tosar Völundur Hafstað Hugo Naya Carlos Rovira Mariela Bollati-Fogolín Ricardo Ehrlich Gilles Flouriot Zoya Ignatova Mónica Marín |
author_sort |
Tamara Fernández-Calero |
title |
Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells |
title_short |
Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells |
title_full |
Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells |
title_fullStr |
Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells |
title_full_unstemmed |
Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells |
title_sort |
fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cells |
publisher |
BMC |
series |
Cancer & Metabolism |
issn |
2049-3002 |
publishDate |
2020-07-01 |
description |
Abstract Background During breast cancer progression, the epithelial to mesenchymal transition has been associated with metastasis and endocrine therapy resistance; however, the underlying mechanisms remain elusive. To gain insight into this process, we studied the transition undergone by MCF7-derived cells, which is driven by the constitutive nuclear expression of a MKL1 variant devoid of the actin-binding domain (MKL1 ΔN200). We characterized the adaptive changes that occur during the MKL1-induced cellular model and focused on regulation of translation machinery and metabolic adaptation. Methods We performed a genome-wide analysis at the transcriptional and translational level using ribosome profiling complemented with RNA-Seq and analyzed the expression of components of the translation machinery and enzymes involved in energy metabolism. NGS data were correlated with metabolomic measurements and quantification of specific mRNAs extracted from polysomes and western blots. Results Our results reveal the expression profiles of a luminal to basal-like state in accordance with an epithelial to mesenchymal transition. During the transition, the synthesis of ribosomal proteins and that of many translational factors was upregulated. This overexpression of the translational machinery appears to be regulated at the translational level. Our results indicate an increase of ribosome biogenesis and translation activity. We detected an extensive metabolic rewiring occurring in an already “Warburg-like” context, in which enzyme isoform switches and metabolic shunts indicate a crucial role of HIF-1α along with other master regulatory factors. Furthermore, we detected a decrease in the expression of enzymes involved in ribonucleotide synthesis from the pentose phosphate pathway. During this transition, cells increase in size, downregulate genes associated with proliferation, and strongly upregulate expression of cytoskeletal and extracellular matrix genes. Conclusions Our study reveals multiple regulatory events associated with metabolic and translational machinery adaptation during an epithelial mesenchymal-like transition process. During this major cellular transition, cells achieve a new homeostatic state ensuring their survival. This work shows that ribosome profiling complemented with RNA-Seq is a powerful approach to unveil in-depth global adaptive cellular responses and the interconnection among regulatory circuits, which will be helpful for identification of new therapeutic targets. |
topic |
Breast cancer EMT Luminal to basal transition MKL1/actin signaling pathway Metabolism adaptation Translation machinery |
url |
http://link.springer.com/article/10.1186/s40170-020-00216-7 |
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doaj-87dbd3fcc1344db092b9283e458aacae2020-11-25T03:20:52ZengBMCCancer & Metabolism2049-30022020-07-018112010.1186/s40170-020-00216-7Fine-tuning the metabolic rewiring and adaptation of translational machinery during an epithelial-mesenchymal transition in breast cancer cellsTamara Fernández-Calero0Marcos Davyt1Karen Perelmuter2Cora Chalar3Giovana Bampi4Helena Persson5Juan Pablo Tosar6Völundur Hafstað7Hugo Naya8Carlos Rovira9Mariela Bollati-Fogolín10Ricardo Ehrlich11Gilles Flouriot12Zoya Ignatova13Mónica Marín14Biochemistry-Molecular Biology Section, Faculty of Sciences, Universidad de la RepúblicaBiochemistry-Molecular Biology Section, Faculty of Sciences, Universidad de la RepúblicaCell Biology Unit, Institut Pasteur MontevideoBiochemistry-Molecular Biology Section, Faculty of Sciences, Universidad de la RepúblicaInstitute for Biochemistry and Molecular Biology, Department of Chemistry, University of HamburgDepartment of Clinical Sciences Lund, Oncology and Pathology, Lund University Cancer Center, Lund UniversityFunctional Genomics Unit, Institut Pasteur de MontevideoDepartment of Clinical Sciences Lund, Oncology and Pathology, Lund University Cancer Center, Lund UniversityBioinformatics Unit, Institut Pasteur MontevideoDepartment of Clinical Sciences Lund, Oncology and Pathology, Lund University Cancer Center, Lund UniversityCell Biology Unit, Institut Pasteur MontevideoBiochemistry-Molecular Biology Section, Faculty of Sciences, Universidad de la RepúblicaUniversité de Rennes 1-IRSET, Campus Santé de VillejeanInstitute for Biochemistry and Molecular Biology, Department of Chemistry, University of HamburgBiochemistry-Molecular Biology Section, Faculty of Sciences, Universidad de la RepúblicaAbstract Background During breast cancer progression, the epithelial to mesenchymal transition has been associated with metastasis and endocrine therapy resistance; however, the underlying mechanisms remain elusive. To gain insight into this process, we studied the transition undergone by MCF7-derived cells, which is driven by the constitutive nuclear expression of a MKL1 variant devoid of the actin-binding domain (MKL1 ΔN200). We characterized the adaptive changes that occur during the MKL1-induced cellular model and focused on regulation of translation machinery and metabolic adaptation. Methods We performed a genome-wide analysis at the transcriptional and translational level using ribosome profiling complemented with RNA-Seq and analyzed the expression of components of the translation machinery and enzymes involved in energy metabolism. NGS data were correlated with metabolomic measurements and quantification of specific mRNAs extracted from polysomes and western blots. Results Our results reveal the expression profiles of a luminal to basal-like state in accordance with an epithelial to mesenchymal transition. During the transition, the synthesis of ribosomal proteins and that of many translational factors was upregulated. This overexpression of the translational machinery appears to be regulated at the translational level. Our results indicate an increase of ribosome biogenesis and translation activity. We detected an extensive metabolic rewiring occurring in an already “Warburg-like” context, in which enzyme isoform switches and metabolic shunts indicate a crucial role of HIF-1α along with other master regulatory factors. Furthermore, we detected a decrease in the expression of enzymes involved in ribonucleotide synthesis from the pentose phosphate pathway. During this transition, cells increase in size, downregulate genes associated with proliferation, and strongly upregulate expression of cytoskeletal and extracellular matrix genes. Conclusions Our study reveals multiple regulatory events associated with metabolic and translational machinery adaptation during an epithelial mesenchymal-like transition process. During this major cellular transition, cells achieve a new homeostatic state ensuring their survival. This work shows that ribosome profiling complemented with RNA-Seq is a powerful approach to unveil in-depth global adaptive cellular responses and the interconnection among regulatory circuits, which will be helpful for identification of new therapeutic targets.http://link.springer.com/article/10.1186/s40170-020-00216-7Breast cancerEMTLuminal to basal transitionMKL1/actin signaling pathwayMetabolism adaptationTranslation machinery |