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An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer

A photochemical reaction mediated by light-activated molecules (photosensitizers) in photodynamic therapy (PDT) causes molecular oxygen to be converted into highly reactive oxygen species (ROS) that are beneficial for cancer therapy. As the active oxygen consumer and the primary regulator of apoptos...

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Autores principales: Satrialdi, Takano, Yuta, Hirata, Eri, Ushijima, Natsumi, Harashima, Hideyoshi, Yamada, Yuma
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419188/
https://www.ncbi.nlm.nih.gov/pubmed/36132667
http://dx.doi.org/10.1039/d1na00427a
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author Satrialdi,
Takano, Yuta
Hirata, Eri
Ushijima, Natsumi
Harashima, Hideyoshi
Yamada, Yuma
author_facet Satrialdi,
Takano, Yuta
Hirata, Eri
Ushijima, Natsumi
Harashima, Hideyoshi
Yamada, Yuma
author_sort Satrialdi,
collection PubMed
description A photochemical reaction mediated by light-activated molecules (photosensitizers) in photodynamic therapy (PDT) causes molecular oxygen to be converted into highly reactive oxygen species (ROS) that are beneficial for cancer therapy. As the active oxygen consumer and the primary regulator of apoptosis, mitochondria are known as an important target for optimizing PDT outcomes. However, most of the clinically used photosensitizers exhibited a poor tumor accumulation profile as well as lack of mitochondria targeting ability. Therefore, by applying a nanocarrier platform, mitochondria-specific delivery of photosensitizers can be materialized. The present research develops an effective mitochondria-targeting liposome-based nanocarrier system (MITO-Porter) encapsulating a π-extended porphyrin-type photosensitizer (rTPA), which results in a significant in vivo antitumor activity. A single PDT treatment of the rTPA–MITO-Porter resulted in a dramatic tumor inhibition against both human and murine tumors that had been xenografted in a mouse model. Furthermore, depolarization of the mitochondrial membrane was observed, implying the damage of the mitochondrial membrane due to the photochemical reaction that occurred specifically in the mitochondria of tumor cells. The findings presented herein serve to verify the significance of the mitochondria-targeted nanocarrier system for advancing the in vivo PDT effectivity in cancer therapy regardless of tumor type.
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spelling pubmed-94191882022-09-20 An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer Satrialdi, Takano, Yuta Hirata, Eri Ushijima, Natsumi Harashima, Hideyoshi Yamada, Yuma Nanoscale Adv Chemistry A photochemical reaction mediated by light-activated molecules (photosensitizers) in photodynamic therapy (PDT) causes molecular oxygen to be converted into highly reactive oxygen species (ROS) that are beneficial for cancer therapy. As the active oxygen consumer and the primary regulator of apoptosis, mitochondria are known as an important target for optimizing PDT outcomes. However, most of the clinically used photosensitizers exhibited a poor tumor accumulation profile as well as lack of mitochondria targeting ability. Therefore, by applying a nanocarrier platform, mitochondria-specific delivery of photosensitizers can be materialized. The present research develops an effective mitochondria-targeting liposome-based nanocarrier system (MITO-Porter) encapsulating a π-extended porphyrin-type photosensitizer (rTPA), which results in a significant in vivo antitumor activity. A single PDT treatment of the rTPA–MITO-Porter resulted in a dramatic tumor inhibition against both human and murine tumors that had been xenografted in a mouse model. Furthermore, depolarization of the mitochondrial membrane was observed, implying the damage of the mitochondrial membrane due to the photochemical reaction that occurred specifically in the mitochondria of tumor cells. The findings presented herein serve to verify the significance of the mitochondria-targeted nanocarrier system for advancing the in vivo PDT effectivity in cancer therapy regardless of tumor type. RSC 2021-08-21 /pmc/articles/PMC9419188/ /pubmed/36132667 http://dx.doi.org/10.1039/d1na00427a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Satrialdi,
Takano, Yuta
Hirata, Eri
Ushijima, Natsumi
Harashima, Hideyoshi
Yamada, Yuma
An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer
title An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer
title_full An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer
title_fullStr An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer
title_full_unstemmed An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer
title_short An effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer
title_sort effective in vivo mitochondria-targeting nanocarrier combined with a π-extended porphyrin-type photosensitizer
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9419188/
https://www.ncbi.nlm.nih.gov/pubmed/36132667
http://dx.doi.org/10.1039/d1na00427a
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