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Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells

Sustained autophagy contributes to the metabolic adaptation of cancer cells to hypoxic and acidic microenvironments. Since cells in such environments are resistant to conventional cytotoxic drugs, inhibition of autophagy represents a promising therapeutic strategy in clinical oncology. We previously...

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Autores principales: Pellegrini, Paola, Dyczynski, Matheus, Sbrana, Francesca Vittoria, Karlgren, Maria, Buoncervello, Maria, Hägg-Olofsson, Maria, Ma, Ran, Hartman, Johan, Bajalica-Lagercrantz, Svetlana, Grander, Dan, Kharaziha, Pedram, De Milito, Angelo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5094956/
https://www.ncbi.nlm.nih.gov/pubmed/27248168
http://dx.doi.org/10.18632/oncotarget.9601
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author Pellegrini, Paola
Dyczynski, Matheus
Sbrana, Francesca Vittoria
Karlgren, Maria
Buoncervello, Maria
Hägg-Olofsson, Maria
Ma, Ran
Hartman, Johan
Bajalica-Lagercrantz, Svetlana
Grander, Dan
Kharaziha, Pedram
De Milito, Angelo
author_facet Pellegrini, Paola
Dyczynski, Matheus
Sbrana, Francesca Vittoria
Karlgren, Maria
Buoncervello, Maria
Hägg-Olofsson, Maria
Ma, Ran
Hartman, Johan
Bajalica-Lagercrantz, Svetlana
Grander, Dan
Kharaziha, Pedram
De Milito, Angelo
author_sort Pellegrini, Paola
collection PubMed
description Sustained autophagy contributes to the metabolic adaptation of cancer cells to hypoxic and acidic microenvironments. Since cells in such environments are resistant to conventional cytotoxic drugs, inhibition of autophagy represents a promising therapeutic strategy in clinical oncology. We previously reported that the efficacy of hydroxychloroquine (HCQ), an autophagy inhibitor under clinical investigation is strongly impaired in acidic tumor environments, due to poor uptake of the drug, a phenomenon widely associated with drug resistance towards many weak bases. In this study we identified salinomycin (SAL) as a potent inhibitor of autophagy and cytotoxic agent effective on several cancer cell lines under conditions of transient and chronic acidosis. Since SAL has been reported to specifically target cancer-stem cells (CSC), we used an established model of breast CSC and CSC derived from breast cancer patients to examine whether this specificity may be associated with autophagy inhibition. We indeed found that CSC-like cells are more sensitive to autophagy inhibition compared to cells not expressing CSC markers. We also report that the ability of SAL to inhibit mammosphere formation from CSC-like cells was dramatically enhanced in acidic conditions. We propose that the development and use of clinically suitable SAL derivatives may result in improved autophagy inhibition in cancer cells and CSC in the acidic tumor microenvironment and lead to clinical benefits.
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spelling pubmed-50949562016-11-22 Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells Pellegrini, Paola Dyczynski, Matheus Sbrana, Francesca Vittoria Karlgren, Maria Buoncervello, Maria Hägg-Olofsson, Maria Ma, Ran Hartman, Johan Bajalica-Lagercrantz, Svetlana Grander, Dan Kharaziha, Pedram De Milito, Angelo Oncotarget Research Paper: Autophagy and Cell Death Sustained autophagy contributes to the metabolic adaptation of cancer cells to hypoxic and acidic microenvironments. Since cells in such environments are resistant to conventional cytotoxic drugs, inhibition of autophagy represents a promising therapeutic strategy in clinical oncology. We previously reported that the efficacy of hydroxychloroquine (HCQ), an autophagy inhibitor under clinical investigation is strongly impaired in acidic tumor environments, due to poor uptake of the drug, a phenomenon widely associated with drug resistance towards many weak bases. In this study we identified salinomycin (SAL) as a potent inhibitor of autophagy and cytotoxic agent effective on several cancer cell lines under conditions of transient and chronic acidosis. Since SAL has been reported to specifically target cancer-stem cells (CSC), we used an established model of breast CSC and CSC derived from breast cancer patients to examine whether this specificity may be associated with autophagy inhibition. We indeed found that CSC-like cells are more sensitive to autophagy inhibition compared to cells not expressing CSC markers. We also report that the ability of SAL to inhibit mammosphere formation from CSC-like cells was dramatically enhanced in acidic conditions. We propose that the development and use of clinically suitable SAL derivatives may result in improved autophagy inhibition in cancer cells and CSC in the acidic tumor microenvironment and lead to clinical benefits. Impact Journals LLC 2016-05-27 /pmc/articles/PMC5094956/ /pubmed/27248168 http://dx.doi.org/10.18632/oncotarget.9601 Text en Copyright: © 2016 Pellegrini et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper: Autophagy and Cell Death
Pellegrini, Paola
Dyczynski, Matheus
Sbrana, Francesca Vittoria
Karlgren, Maria
Buoncervello, Maria
Hägg-Olofsson, Maria
Ma, Ran
Hartman, Johan
Bajalica-Lagercrantz, Svetlana
Grander, Dan
Kharaziha, Pedram
De Milito, Angelo
Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells
title Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells
title_full Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells
title_fullStr Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells
title_full_unstemmed Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells
title_short Tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells
title_sort tumor acidosis enhances cytotoxic effects and autophagy inhibition by salinomycin on cancer cell lines and cancer stem cells
topic Research Paper: Autophagy and Cell Death
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5094956/
https://www.ncbi.nlm.nih.gov/pubmed/27248168
http://dx.doi.org/10.18632/oncotarget.9601
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