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Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects

Photodynamic therapy (PDT) is a promising anticancer strategy based on the light energy stimulation of photosensitizers (PS) molecules within a malignant cell. Among a multitude of recently challenged PS, Rose bengal (RB) has been already reported as an inducer of cytotoxicity in different tumor cel...

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Autores principales: Slivinschi, Bianca, Manai, Federico, Martinelli, Carolina, Carriero, Francesca, D’Amato, Camilla, Massarotti, Martina, Bresciani, Giorgia, Casali, Claudio, Milanesi, Gloria, Artal, Laura, Zanoletti, Lisa, Milella, Federica, Arfini, Davide, Azzalin, Alberto, Demartis, Sara, Gavini, Elisabetta, Comincini, Sergio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9406355/
https://www.ncbi.nlm.nih.gov/pubmed/36010578
http://dx.doi.org/10.3390/cells11162502
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author Slivinschi, Bianca
Manai, Federico
Martinelli, Carolina
Carriero, Francesca
D’Amato, Camilla
Massarotti, Martina
Bresciani, Giorgia
Casali, Claudio
Milanesi, Gloria
Artal, Laura
Zanoletti, Lisa
Milella, Federica
Arfini, Davide
Azzalin, Alberto
Demartis, Sara
Gavini, Elisabetta
Comincini, Sergio
author_facet Slivinschi, Bianca
Manai, Federico
Martinelli, Carolina
Carriero, Francesca
D’Amato, Camilla
Massarotti, Martina
Bresciani, Giorgia
Casali, Claudio
Milanesi, Gloria
Artal, Laura
Zanoletti, Lisa
Milella, Federica
Arfini, Davide
Azzalin, Alberto
Demartis, Sara
Gavini, Elisabetta
Comincini, Sergio
author_sort Slivinschi, Bianca
collection PubMed
description Photodynamic therapy (PDT) is a promising anticancer strategy based on the light energy stimulation of photosensitizers (PS) molecules within a malignant cell. Among a multitude of recently challenged PS, Rose bengal (RB) has been already reported as an inducer of cytotoxicity in different tumor cells. However, RB displays a low penetration capability across cell membranes. We have therefore developed a short-term amino acids starvation protocol that significantly increases RB uptake in human astrocytoma cells compared to normal rat astrocytes. Following induced starvation uptake, RB is released outside cells by the exocytosis of extracellular vesicles (EVs). Thus, we have introduced a specific pharmacological treatment, based on the GW4869 exosomes inhibitor, to interfere with RB extracellular release. These combined treatments allow significantly reduced nanomolar amounts of administered RB and a decrease in the time interval required for PDT stimulation. The overall conditions affected astrocytoma viability through the activation of apoptotic pathways. In conclusion, we have developed for the first time a combined scheme to simultaneously increase the RB uptake in human astrocytoma cells, reduce the extracellular release of the drug by EVs, and improve the effectiveness of PDT-based treatments. Importantly, this strategy might be a valuable approach to efficiently deliver other PS or chemotherapeutic drugs in tumor cells.
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spelling pubmed-94063552022-08-26 Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects Slivinschi, Bianca Manai, Federico Martinelli, Carolina Carriero, Francesca D’Amato, Camilla Massarotti, Martina Bresciani, Giorgia Casali, Claudio Milanesi, Gloria Artal, Laura Zanoletti, Lisa Milella, Federica Arfini, Davide Azzalin, Alberto Demartis, Sara Gavini, Elisabetta Comincini, Sergio Cells Article Photodynamic therapy (PDT) is a promising anticancer strategy based on the light energy stimulation of photosensitizers (PS) molecules within a malignant cell. Among a multitude of recently challenged PS, Rose bengal (RB) has been already reported as an inducer of cytotoxicity in different tumor cells. However, RB displays a low penetration capability across cell membranes. We have therefore developed a short-term amino acids starvation protocol that significantly increases RB uptake in human astrocytoma cells compared to normal rat astrocytes. Following induced starvation uptake, RB is released outside cells by the exocytosis of extracellular vesicles (EVs). Thus, we have introduced a specific pharmacological treatment, based on the GW4869 exosomes inhibitor, to interfere with RB extracellular release. These combined treatments allow significantly reduced nanomolar amounts of administered RB and a decrease in the time interval required for PDT stimulation. The overall conditions affected astrocytoma viability through the activation of apoptotic pathways. In conclusion, we have developed for the first time a combined scheme to simultaneously increase the RB uptake in human astrocytoma cells, reduce the extracellular release of the drug by EVs, and improve the effectiveness of PDT-based treatments. Importantly, this strategy might be a valuable approach to efficiently deliver other PS or chemotherapeutic drugs in tumor cells. MDPI 2022-08-11 /pmc/articles/PMC9406355/ /pubmed/36010578 http://dx.doi.org/10.3390/cells11162502 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Slivinschi, Bianca
Manai, Federico
Martinelli, Carolina
Carriero, Francesca
D’Amato, Camilla
Massarotti, Martina
Bresciani, Giorgia
Casali, Claudio
Milanesi, Gloria
Artal, Laura
Zanoletti, Lisa
Milella, Federica
Arfini, Davide
Azzalin, Alberto
Demartis, Sara
Gavini, Elisabetta
Comincini, Sergio
Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects
title Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects
title_full Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects
title_fullStr Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects
title_full_unstemmed Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects
title_short Enhanced Delivery of Rose Bengal by Amino Acids Starvation and Exosomes Inhibition in Human Astrocytoma Cells to Potentiate Anticancer Photodynamic Therapy Effects
title_sort enhanced delivery of rose bengal by amino acids starvation and exosomes inhibition in human astrocytoma cells to potentiate anticancer photodynamic therapy effects
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9406355/
https://www.ncbi.nlm.nih.gov/pubmed/36010578
http://dx.doi.org/10.3390/cells11162502
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