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Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells

Iron is crucial to satisfy several mitochondrial functions including energy metabolism and oxidative phosphorylation. Patients affected by Myelodysplastic Syndromes (MDS) and acute myeloid leukemia (AML) are frequently characterized by iron overload (IOL), due to continuous red blood cell (RBC) tran...

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Autores principales: Calabrese, Chiara, Panuzzo, Cristina, Stanga, Serena, Andreani, Giacomo, Ravera, Silvia, Maglione, Alessandro, Pironi, Lucrezia, Petiti, Jessica, Shahzad Ali, Muhammad, Scaravaglio, Patrizia, Napoli, Francesca, Fava, Carmen, De Gobbi, Marco, Frassoni, Francesco, Saglio, Giuseppe, Bracco, Enrico, Pergolizzi, Barbara, Cilloni, Daniela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7589297/
https://www.ncbi.nlm.nih.gov/pubmed/33081324
http://dx.doi.org/10.3390/ijms21207674
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author Calabrese, Chiara
Panuzzo, Cristina
Stanga, Serena
Andreani, Giacomo
Ravera, Silvia
Maglione, Alessandro
Pironi, Lucrezia
Petiti, Jessica
Shahzad Ali, Muhammad
Scaravaglio, Patrizia
Napoli, Francesca
Fava, Carmen
De Gobbi, Marco
Frassoni, Francesco
Saglio, Giuseppe
Bracco, Enrico
Pergolizzi, Barbara
Cilloni, Daniela
author_facet Calabrese, Chiara
Panuzzo, Cristina
Stanga, Serena
Andreani, Giacomo
Ravera, Silvia
Maglione, Alessandro
Pironi, Lucrezia
Petiti, Jessica
Shahzad Ali, Muhammad
Scaravaglio, Patrizia
Napoli, Francesca
Fava, Carmen
De Gobbi, Marco
Frassoni, Francesco
Saglio, Giuseppe
Bracco, Enrico
Pergolizzi, Barbara
Cilloni, Daniela
author_sort Calabrese, Chiara
collection PubMed
description Iron is crucial to satisfy several mitochondrial functions including energy metabolism and oxidative phosphorylation. Patients affected by Myelodysplastic Syndromes (MDS) and acute myeloid leukemia (AML) are frequently characterized by iron overload (IOL), due to continuous red blood cell (RBC) transfusions. This event impacts the overall survival (OS) and it is associated with increased mortality in lower-risk MDS patients. Accordingly, the oral iron chelator Deferasirox (DFX) has been reported to improve the OS and delay leukemic transformation. However, the molecular players and the biological mechanisms laying behind remain currently mostly undefined. The aim of this study has been to investigate the potential anti-leukemic effect of DFX, by functionally and molecularly analyzing its effects in three different leukemia cell lines, harboring or not p53 mutations, and in human primary cells derived from 15 MDS/AML patients. Our findings indicated that DFX can lead to apoptosis, impairment of cell growth only in a context of IOL, and can induce a significant alteration of mitochondria network, with a sharp reduction in mitochondrial activity. Moreover, through a remarkable reduction of Murine Double Minute 2 (MDM2), known to regulate the stability of p53 and p73 proteins, we observed an enhancement of p53 transcriptional activity after DFX. Interestingly, this iron depletion-triggered signaling is enabled by p73, in the absence of p53, or in the presence of a p53 mutant form. In conclusion, we propose a mechanism by which the increased p53 family transcriptional activity and protein stability could explain the potential benefits of iron chelation therapy in terms of improving OS and delaying leukemic transformation.
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spelling pubmed-75892972020-10-29 Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells Calabrese, Chiara Panuzzo, Cristina Stanga, Serena Andreani, Giacomo Ravera, Silvia Maglione, Alessandro Pironi, Lucrezia Petiti, Jessica Shahzad Ali, Muhammad Scaravaglio, Patrizia Napoli, Francesca Fava, Carmen De Gobbi, Marco Frassoni, Francesco Saglio, Giuseppe Bracco, Enrico Pergolizzi, Barbara Cilloni, Daniela Int J Mol Sci Article Iron is crucial to satisfy several mitochondrial functions including energy metabolism and oxidative phosphorylation. Patients affected by Myelodysplastic Syndromes (MDS) and acute myeloid leukemia (AML) are frequently characterized by iron overload (IOL), due to continuous red blood cell (RBC) transfusions. This event impacts the overall survival (OS) and it is associated with increased mortality in lower-risk MDS patients. Accordingly, the oral iron chelator Deferasirox (DFX) has been reported to improve the OS and delay leukemic transformation. However, the molecular players and the biological mechanisms laying behind remain currently mostly undefined. The aim of this study has been to investigate the potential anti-leukemic effect of DFX, by functionally and molecularly analyzing its effects in three different leukemia cell lines, harboring or not p53 mutations, and in human primary cells derived from 15 MDS/AML patients. Our findings indicated that DFX can lead to apoptosis, impairment of cell growth only in a context of IOL, and can induce a significant alteration of mitochondria network, with a sharp reduction in mitochondrial activity. Moreover, through a remarkable reduction of Murine Double Minute 2 (MDM2), known to regulate the stability of p53 and p73 proteins, we observed an enhancement of p53 transcriptional activity after DFX. Interestingly, this iron depletion-triggered signaling is enabled by p73, in the absence of p53, or in the presence of a p53 mutant form. In conclusion, we propose a mechanism by which the increased p53 family transcriptional activity and protein stability could explain the potential benefits of iron chelation therapy in terms of improving OS and delaying leukemic transformation. MDPI 2020-10-16 /pmc/articles/PMC7589297/ /pubmed/33081324 http://dx.doi.org/10.3390/ijms21207674 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
Calabrese, Chiara
Panuzzo, Cristina
Stanga, Serena
Andreani, Giacomo
Ravera, Silvia
Maglione, Alessandro
Pironi, Lucrezia
Petiti, Jessica
Shahzad Ali, Muhammad
Scaravaglio, Patrizia
Napoli, Francesca
Fava, Carmen
De Gobbi, Marco
Frassoni, Francesco
Saglio, Giuseppe
Bracco, Enrico
Pergolizzi, Barbara
Cilloni, Daniela
Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells
title Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells
title_full Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells
title_fullStr Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells
title_full_unstemmed Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells
title_short Deferasirox-Dependent Iron Chelation Enhances Mitochondrial Dysfunction and Restores p53 Signaling by Stabilization of p53 Family Members in Leukemic Cells
title_sort deferasirox-dependent iron chelation enhances mitochondrial dysfunction and restores p53 signaling by stabilization of p53 family members in leukemic cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7589297/
https://www.ncbi.nlm.nih.gov/pubmed/33081324
http://dx.doi.org/10.3390/ijms21207674
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