Cargando…

Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells

The mitochondrion has emerged as a promising therapeutic target for novel cancer treatments because of its essential role in tumorigenesis and resistance to chemotherapy. Previously, we described a natural compound, 10-((2,5-dihydroxybenzoyl)oxy)decyl) triphenylphosphonium bromide (GA-TPP(+)C(10)),...

Descripción completa

Detalles Bibliográficos
Autores principales: Fuentes-Retamal, Sebastián, Sandoval-Acuña, Cristian, Peredo-Silva, Liliana, Guzmán-Rivera, Daniela, Pavani, Mario, Torrealba, Natalia, Truksa, Jaroslav, Castro-Castillo, Vicente, Catalán, Mabel, Kemmerling, Ulrike, Urra, Félix A., Ferreira, Jorge
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7072465/
https://www.ncbi.nlm.nih.gov/pubmed/32053908
http://dx.doi.org/10.3390/cells9020407
_version_ 1783506412844875776
author Fuentes-Retamal, Sebastián
Sandoval-Acuña, Cristian
Peredo-Silva, Liliana
Guzmán-Rivera, Daniela
Pavani, Mario
Torrealba, Natalia
Truksa, Jaroslav
Castro-Castillo, Vicente
Catalán, Mabel
Kemmerling, Ulrike
Urra, Félix A.
Ferreira, Jorge
author_facet Fuentes-Retamal, Sebastián
Sandoval-Acuña, Cristian
Peredo-Silva, Liliana
Guzmán-Rivera, Daniela
Pavani, Mario
Torrealba, Natalia
Truksa, Jaroslav
Castro-Castillo, Vicente
Catalán, Mabel
Kemmerling, Ulrike
Urra, Félix A.
Ferreira, Jorge
author_sort Fuentes-Retamal, Sebastián
collection PubMed
description The mitochondrion has emerged as a promising therapeutic target for novel cancer treatments because of its essential role in tumorigenesis and resistance to chemotherapy. Previously, we described a natural compound, 10-((2,5-dihydroxybenzoyl)oxy)decyl) triphenylphosphonium bromide (GA-TPP(+)C(10)), with a hydroquinone scaffold that selectively targets the mitochondria of breast cancer (BC) cells by binding to the triphenylphosphonium group as a chemical chaperone; however, the mechanism of action remains unclear. In this work, we showed that GA-TPP(+)C(10) causes time-dependent complex inhibition of the mitochondrial bioenergetics of BC cells, characterized by (1) an initial phase of mitochondrial uptake with an uncoupling effect of oxidative phosphorylation, as previously reported, (2) inhibition of Complex I-dependent respiration, and (3) a late phase of mitochondrial accumulation with inhibition of α-ketoglutarate dehydrogenase complex (αKGDHC) activity. These events led to cell cycle arrest in the G1 phase and cell death at 24 and 48 h of exposure, and the cells were rescued by the addition of the cell-penetrating metabolic intermediates l-aspartic acid β-methyl ester (mAsp) and dimethyl α-ketoglutarate (dm-KG). In addition, this unexpected blocking of mitochondrial function triggered metabolic remodeling toward glycolysis, AMPK activation, increased expression of proliferator-activated receptor gamma coactivator 1-alpha (pgc1α) and electron transport chain (ETC) component-related genes encoded by mitochondrial DNA and downregulation of the uncoupling proteins ucp3 and ucp4, suggesting an AMPK-dependent prosurvival adaptive response in cancer cells. Consistent with this finding, we showed that inhibition of mitochondrial translation with doxycycline, a broad-spectrum antibiotic that inhibits the 28 S subunit of the mitochondrial ribosome, in the presence of GA-TPP(+)C(10) significantly reduces the mt-CO1 and VDAC protein levels and the FCCP-stimulated maximal electron flux and promotes selective and synergistic cytotoxic effects on BC cells at 24 h of treatment. Based on our results, we propose that this combined strategy based on blockage of the adaptive response induced by mitochondrial bioenergetic inhibition may have therapeutic relevance in BC.
format Online
Article
Text
id pubmed-7072465
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-70724652020-03-19 Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells Fuentes-Retamal, Sebastián Sandoval-Acuña, Cristian Peredo-Silva, Liliana Guzmán-Rivera, Daniela Pavani, Mario Torrealba, Natalia Truksa, Jaroslav Castro-Castillo, Vicente Catalán, Mabel Kemmerling, Ulrike Urra, Félix A. Ferreira, Jorge Cells Article The mitochondrion has emerged as a promising therapeutic target for novel cancer treatments because of its essential role in tumorigenesis and resistance to chemotherapy. Previously, we described a natural compound, 10-((2,5-dihydroxybenzoyl)oxy)decyl) triphenylphosphonium bromide (GA-TPP(+)C(10)), with a hydroquinone scaffold that selectively targets the mitochondria of breast cancer (BC) cells by binding to the triphenylphosphonium group as a chemical chaperone; however, the mechanism of action remains unclear. In this work, we showed that GA-TPP(+)C(10) causes time-dependent complex inhibition of the mitochondrial bioenergetics of BC cells, characterized by (1) an initial phase of mitochondrial uptake with an uncoupling effect of oxidative phosphorylation, as previously reported, (2) inhibition of Complex I-dependent respiration, and (3) a late phase of mitochondrial accumulation with inhibition of α-ketoglutarate dehydrogenase complex (αKGDHC) activity. These events led to cell cycle arrest in the G1 phase and cell death at 24 and 48 h of exposure, and the cells were rescued by the addition of the cell-penetrating metabolic intermediates l-aspartic acid β-methyl ester (mAsp) and dimethyl α-ketoglutarate (dm-KG). In addition, this unexpected blocking of mitochondrial function triggered metabolic remodeling toward glycolysis, AMPK activation, increased expression of proliferator-activated receptor gamma coactivator 1-alpha (pgc1α) and electron transport chain (ETC) component-related genes encoded by mitochondrial DNA and downregulation of the uncoupling proteins ucp3 and ucp4, suggesting an AMPK-dependent prosurvival adaptive response in cancer cells. Consistent with this finding, we showed that inhibition of mitochondrial translation with doxycycline, a broad-spectrum antibiotic that inhibits the 28 S subunit of the mitochondrial ribosome, in the presence of GA-TPP(+)C(10) significantly reduces the mt-CO1 and VDAC protein levels and the FCCP-stimulated maximal electron flux and promotes selective and synergistic cytotoxic effects on BC cells at 24 h of treatment. Based on our results, we propose that this combined strategy based on blockage of the adaptive response induced by mitochondrial bioenergetic inhibition may have therapeutic relevance in BC. MDPI 2020-02-11 /pmc/articles/PMC7072465/ /pubmed/32053908 http://dx.doi.org/10.3390/cells9020407 Text en © 2020 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
Fuentes-Retamal, Sebastián
Sandoval-Acuña, Cristian
Peredo-Silva, Liliana
Guzmán-Rivera, Daniela
Pavani, Mario
Torrealba, Natalia
Truksa, Jaroslav
Castro-Castillo, Vicente
Catalán, Mabel
Kemmerling, Ulrike
Urra, Félix A.
Ferreira, Jorge
Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells
title Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells
title_full Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells
title_fullStr Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells
title_full_unstemmed Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells
title_short Complex Mitochondrial Dysfunction Induced by TPP(+)-Gentisic Acid and Mitochondrial Translation Inhibition by Doxycycline Evokes Synergistic Lethality in Breast Cancer Cells
title_sort complex mitochondrial dysfunction induced by tpp(+)-gentisic acid and mitochondrial translation inhibition by doxycycline evokes synergistic lethality in breast cancer cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7072465/
https://www.ncbi.nlm.nih.gov/pubmed/32053908
http://dx.doi.org/10.3390/cells9020407
work_keys_str_mv AT fuentesretamalsebastian complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT sandovalacunacristian complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT peredosilvaliliana complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT guzmanriveradaniela complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT pavanimario complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT torrealbanatalia complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT truksajaroslav complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT castrocastillovicente complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT catalanmabel complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT kemmerlingulrike complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT urrafelixa complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells
AT ferreirajorge complexmitochondrialdysfunctioninducedbytppgentisicacidandmitochondrialtranslationinhibitionbydoxycyclineevokessynergisticlethalityinbreastcancercells