Cargando…

Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function

Doxorubicin (Dox) is an effective anticancer molecule, but its clinical efficacy is limited by strong cardiotoxic side effects. Lysosomal dysfunction has recently been proposed as a new mechanism of Dox-induced cardiomyopathy. However, to date, there is a paucity of therapeutic approaches capable of...

Descripción completa

Detalles Bibliográficos
Autores principales: Santin, Yohan, Formoso, Karina, Haidar, Fraha, Fuentes, Maria Del Pilar Oreja, Bourgailh, Florence, Hifdi, Nesrine, Hnia, Karim, Doghri, Yosra, Resta, Jessica, Champigny, Camille, Lechevallier, Séverine, Détrait, Maximin, Cousin, Grégoire, Bisserier, Malik, Parini, Angelo, Lezoualc'h, Frank, Verelst, Marc, Mialet-Perez, Jeanne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10614672/
https://www.ncbi.nlm.nih.gov/pubmed/37908733
http://dx.doi.org/10.7150/thno.86310
_version_ 1785129071051538432
author Santin, Yohan
Formoso, Karina
Haidar, Fraha
Fuentes, Maria Del Pilar Oreja
Bourgailh, Florence
Hifdi, Nesrine
Hnia, Karim
Doghri, Yosra
Resta, Jessica
Champigny, Camille
Lechevallier, Séverine
Détrait, Maximin
Cousin, Grégoire
Bisserier, Malik
Parini, Angelo
Lezoualc'h, Frank
Verelst, Marc
Mialet-Perez, Jeanne
author_facet Santin, Yohan
Formoso, Karina
Haidar, Fraha
Fuentes, Maria Del Pilar Oreja
Bourgailh, Florence
Hifdi, Nesrine
Hnia, Karim
Doghri, Yosra
Resta, Jessica
Champigny, Camille
Lechevallier, Séverine
Détrait, Maximin
Cousin, Grégoire
Bisserier, Malik
Parini, Angelo
Lezoualc'h, Frank
Verelst, Marc
Mialet-Perez, Jeanne
author_sort Santin, Yohan
collection PubMed
description Doxorubicin (Dox) is an effective anticancer molecule, but its clinical efficacy is limited by strong cardiotoxic side effects. Lysosomal dysfunction has recently been proposed as a new mechanism of Dox-induced cardiomyopathy. However, to date, there is a paucity of therapeutic approaches capable of restoring lysosomal acidification and function in the heart. Methods: We designed novel poly(lactic-co-glycolic acid) (PLGA)-grafted silica nanoparticles (NPs) and investigated their therapeutic potential in the primary prevention of Dox cardiotoxicity in cardiomyocytes and mice. Results: We showed that NPs-PLGA internalized rapidly in cardiomyocytes and accumulated inside the lysosomes. Mechanistically, NPs-PLGA restored lysosomal acidification in the presence of doxorubicin or bafilomycin A1, thereby improving lysosomal function and autophagic flux. Importantly, NPs-PLGA mitigated Dox-related mitochondrial dysfunction and oxidative stress, two main mechanisms of cardiotoxicity. In vivo, inhalation of NPs-PLGA led to effective and rapid targeting of the myocardium, which prevented Dox-induced adverse remodeling and cardiac dysfunction in mice. Conclusion: Our findings demonstrate a pivotal role for lysosomal dysfunction in Dox-induced cardiomyopathy and highlight for the first time that pulmonary-driven NPs-PLGA administration is a promising strategy against anthracycline cardiotoxicity.
format Online
Article
Text
id pubmed-10614672
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-106146722023-10-31 Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function Santin, Yohan Formoso, Karina Haidar, Fraha Fuentes, Maria Del Pilar Oreja Bourgailh, Florence Hifdi, Nesrine Hnia, Karim Doghri, Yosra Resta, Jessica Champigny, Camille Lechevallier, Séverine Détrait, Maximin Cousin, Grégoire Bisserier, Malik Parini, Angelo Lezoualc'h, Frank Verelst, Marc Mialet-Perez, Jeanne Theranostics Research Paper Doxorubicin (Dox) is an effective anticancer molecule, but its clinical efficacy is limited by strong cardiotoxic side effects. Lysosomal dysfunction has recently been proposed as a new mechanism of Dox-induced cardiomyopathy. However, to date, there is a paucity of therapeutic approaches capable of restoring lysosomal acidification and function in the heart. Methods: We designed novel poly(lactic-co-glycolic acid) (PLGA)-grafted silica nanoparticles (NPs) and investigated their therapeutic potential in the primary prevention of Dox cardiotoxicity in cardiomyocytes and mice. Results: We showed that NPs-PLGA internalized rapidly in cardiomyocytes and accumulated inside the lysosomes. Mechanistically, NPs-PLGA restored lysosomal acidification in the presence of doxorubicin or bafilomycin A1, thereby improving lysosomal function and autophagic flux. Importantly, NPs-PLGA mitigated Dox-related mitochondrial dysfunction and oxidative stress, two main mechanisms of cardiotoxicity. In vivo, inhalation of NPs-PLGA led to effective and rapid targeting of the myocardium, which prevented Dox-induced adverse remodeling and cardiac dysfunction in mice. Conclusion: Our findings demonstrate a pivotal role for lysosomal dysfunction in Dox-induced cardiomyopathy and highlight for the first time that pulmonary-driven NPs-PLGA administration is a promising strategy against anthracycline cardiotoxicity. Ivyspring International Publisher 2023-10-02 /pmc/articles/PMC10614672/ /pubmed/37908733 http://dx.doi.org/10.7150/thno.86310 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Santin, Yohan
Formoso, Karina
Haidar, Fraha
Fuentes, Maria Del Pilar Oreja
Bourgailh, Florence
Hifdi, Nesrine
Hnia, Karim
Doghri, Yosra
Resta, Jessica
Champigny, Camille
Lechevallier, Séverine
Détrait, Maximin
Cousin, Grégoire
Bisserier, Malik
Parini, Angelo
Lezoualc'h, Frank
Verelst, Marc
Mialet-Perez, Jeanne
Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function
title Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function
title_full Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function
title_fullStr Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function
title_full_unstemmed Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function
title_short Inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function
title_sort inhalation of acidic nanoparticles prevents doxorubicin cardiotoxicity through improvement of lysosomal function
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10614672/
https://www.ncbi.nlm.nih.gov/pubmed/37908733
http://dx.doi.org/10.7150/thno.86310
work_keys_str_mv AT santinyohan inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT formosokarina inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT haidarfraha inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT fuentesmariadelpilaroreja inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT bourgailhflorence inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT hifdinesrine inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT hniakarim inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT doghriyosra inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT restajessica inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT champignycamille inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT lechevallierseverine inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT detraitmaximin inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT cousingregoire inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT bisseriermalik inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT pariniangelo inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT lezoualchfrank inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT verelstmarc inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction
AT mialetperezjeanne inhalationofacidicnanoparticlespreventsdoxorubicincardiotoxicitythroughimprovementoflysosomalfunction