Cargando…

Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer

Aldehyde dehydrogenases (ALDHs) are multifunctional enzymes that oxidize diverse endogenous and exogenous aldehydes. We conducted a meta-analysis based on The Cancer Genome Atlas and Gene Expression Omnibus data and detected genetic alterations in ALDH1A1, ALDH1A3, or ALDH3A1, 86% of which were gene...

Descripción completa

Detalles Bibliográficos
Autores principales: Rebollido-Rios, Rocio, Venton, Geoffroy, Sánchez-Redondo, Sara, Iglesias i Felip, Carmela, Fournet, Guy, González, Elena, Romero Fernández, Wilber, Borroto Escuela, Dasiel Oscar, Di Stefano, Barbara, Penarroche-Díaz, Reinier, Martin, Guillaume, Ceylan, Ismail, Costello, Regis, Perez-Alea, Mileidys
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7098886/
https://www.ncbi.nlm.nih.gov/pubmed/32015486
http://dx.doi.org/10.1038/s41388-020-1184-9
_version_ 1783511236926767104
author Rebollido-Rios, Rocio
Venton, Geoffroy
Sánchez-Redondo, Sara
Iglesias i Felip, Carmela
Fournet, Guy
González, Elena
Romero Fernández, Wilber
Borroto Escuela, Dasiel Oscar
Di Stefano, Barbara
Penarroche-Díaz, Reinier
Martin, Guillaume
Ceylan, Ismail
Costello, Regis
Perez-Alea, Mileidys
author_facet Rebollido-Rios, Rocio
Venton, Geoffroy
Sánchez-Redondo, Sara
Iglesias i Felip, Carmela
Fournet, Guy
González, Elena
Romero Fernández, Wilber
Borroto Escuela, Dasiel Oscar
Di Stefano, Barbara
Penarroche-Díaz, Reinier
Martin, Guillaume
Ceylan, Ismail
Costello, Regis
Perez-Alea, Mileidys
author_sort Rebollido-Rios, Rocio
collection PubMed
description Aldehyde dehydrogenases (ALDHs) are multifunctional enzymes that oxidize diverse endogenous and exogenous aldehydes. We conducted a meta-analysis based on The Cancer Genome Atlas and Gene Expression Omnibus data and detected genetic alterations in ALDH1A1, ALDH1A3, or ALDH3A1, 86% of which were gene amplification or mRNA upregulation, in 31% of nonsmall cell lung cancers (NSCLCs). The expression of these isoenzymes impacted chemoresistance and shortened survival times in patients. We hypothesized that these enzymes provide an oxidative advantage for the persistence of NSCLC. To test this hypothesis, we used genetic and pharmacological approaches with DIMATE, an irreversible inhibitor of ALDH1/3. DIMATE showed cytotoxicity in 73% of NSCLC cell lines tested and demonstrated antitumor activity in orthotopic xenografts via hydroxynonenal-protein adduct accumulation, GSTO1-mediated depletion of glutathione and increased H(2)O(2). Consistent with this result, ALDH1/3 disruption synergized with ROS-inducing agents or glutathione synthesis inhibitors to trigger cell death. In lung cancer xenografts with high to moderate cisplatin resistance, combination treatment with DIMATE promoted strong synergistic responses with tumor regression. These results indicate that NSCLCs with increased expression of ALDH1A1, ALDH1A3, or ALDH3A1 may be targeted by strategies involving inhibitors of these isoenzymes as monotherapy or in combination with chemotherapy to overcome patient-specific drug resistance.
format Online
Article
Text
id pubmed-7098886
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-70988862020-03-30 Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer Rebollido-Rios, Rocio Venton, Geoffroy Sánchez-Redondo, Sara Iglesias i Felip, Carmela Fournet, Guy González, Elena Romero Fernández, Wilber Borroto Escuela, Dasiel Oscar Di Stefano, Barbara Penarroche-Díaz, Reinier Martin, Guillaume Ceylan, Ismail Costello, Regis Perez-Alea, Mileidys Oncogene Article Aldehyde dehydrogenases (ALDHs) are multifunctional enzymes that oxidize diverse endogenous and exogenous aldehydes. We conducted a meta-analysis based on The Cancer Genome Atlas and Gene Expression Omnibus data and detected genetic alterations in ALDH1A1, ALDH1A3, or ALDH3A1, 86% of which were gene amplification or mRNA upregulation, in 31% of nonsmall cell lung cancers (NSCLCs). The expression of these isoenzymes impacted chemoresistance and shortened survival times in patients. We hypothesized that these enzymes provide an oxidative advantage for the persistence of NSCLC. To test this hypothesis, we used genetic and pharmacological approaches with DIMATE, an irreversible inhibitor of ALDH1/3. DIMATE showed cytotoxicity in 73% of NSCLC cell lines tested and demonstrated antitumor activity in orthotopic xenografts via hydroxynonenal-protein adduct accumulation, GSTO1-mediated depletion of glutathione and increased H(2)O(2). Consistent with this result, ALDH1/3 disruption synergized with ROS-inducing agents or glutathione synthesis inhibitors to trigger cell death. In lung cancer xenografts with high to moderate cisplatin resistance, combination treatment with DIMATE promoted strong synergistic responses with tumor regression. These results indicate that NSCLCs with increased expression of ALDH1A1, ALDH1A3, or ALDH3A1 may be targeted by strategies involving inhibitors of these isoenzymes as monotherapy or in combination with chemotherapy to overcome patient-specific drug resistance. Nature Publishing Group UK 2020-02-03 2020 /pmc/articles/PMC7098886/ /pubmed/32015486 http://dx.doi.org/10.1038/s41388-020-1184-9 Text en © The Author(s) 2020 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Rebollido-Rios, Rocio
Venton, Geoffroy
Sánchez-Redondo, Sara
Iglesias i Felip, Carmela
Fournet, Guy
González, Elena
Romero Fernández, Wilber
Borroto Escuela, Dasiel Oscar
Di Stefano, Barbara
Penarroche-Díaz, Reinier
Martin, Guillaume
Ceylan, Ismail
Costello, Regis
Perez-Alea, Mileidys
Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer
title Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer
title_full Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer
title_fullStr Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer
title_full_unstemmed Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer
title_short Dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer
title_sort dual disruption of aldehyde dehydrogenases 1 and 3 promotes functional changes in the glutathione redox system and enhances chemosensitivity in nonsmall cell lung cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7098886/
https://www.ncbi.nlm.nih.gov/pubmed/32015486
http://dx.doi.org/10.1038/s41388-020-1184-9
work_keys_str_mv AT rebollidoriosrocio dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT ventongeoffroy dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT sanchezredondosara dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT iglesiasifelipcarmela dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT fournetguy dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT gonzalezelena dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT romerofernandezwilber dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT borrotoescueladasieloscar dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT distefanobarbara dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT penarrochediazreinier dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT martinguillaume dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT ceylanismail dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT costelloregis dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer
AT perezaleamileidys dualdisruptionofaldehydedehydrogenases1and3promotesfunctionalchangesintheglutathioneredoxsystemandenhanceschemosensitivityinnonsmallcelllungcancer