Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma

Abstract Background Osteosarcoma (OS) is the most common primary malignant bone tumor occurring in children and young adults. Drug-resistant osteosarcoma often results in chemotherapy failure. Therefore, new treatments aimed at novel therapeutic targets are urgently needed for the treatment of drug-...

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Main Authors: Wei-Nan Zeng, Qiu-Ping Yu, Duan Wang, Jun-Li Liu, Qing-Jun Yang, Zong-Ke Zhou, Yi-Ping Zeng
Format: Article
Language:English
Published: BMC 2021-03-01
Series:Journal of Nanobiotechnology
Subjects:
Online Access:https://doi.org/10.1186/s12951-021-00831-6
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spelling doaj-02952314afa0454baf542b5caeefb8892021-03-21T12:08:27ZengBMCJournal of Nanobiotechnology1477-31552021-03-0119111910.1186/s12951-021-00831-6Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcomaWei-Nan Zeng0Qiu-Ping Yu1Duan Wang2Jun-Li Liu3Qing-Jun Yang4Zong-Ke Zhou5Yi-Ping Zeng6Department of Orthopedics, West China Hospital/West China School of Medicine, Sichuan UniversityHealth Management Center, West China Hospital/West China School of Medicine, Sichuan UniversityDepartment of Orthopedics, West China Hospital/West China School of Medicine, Sichuan UniversityDepartment of Orthopedics, Chongqing General Hospital, University of Chinese Academy of SciencesDepartment of Orthopedics, Chongqing General Hospital, University of Chinese Academy of SciencesDepartment of Orthopedics, West China Hospital/West China School of Medicine, Sichuan UniversityDepartment of Orthopedics, Chongqing General Hospital, University of Chinese Academy of SciencesAbstract Background Osteosarcoma (OS) is the most common primary malignant bone tumor occurring in children and young adults. Drug-resistant osteosarcoma often results in chemotherapy failure. Therefore, new treatments aimed at novel therapeutic targets are urgently needed for the treatment of drug-resistant osteosarcoma. Mitochondria-targeted phototherapy, i.e., synergistic photodynamic/photothermal therapy, has emerged as a highly promising strategy for treating drug-resistant tumors. This study proposed a new nano-drug delivery system based on near-infrared imaging and multifunctional graphene, which can target mitochondria and show synergistic phototherapy, with preferential accumulation in tumors. Methods and results Based on our previous study, (4-carboxybutyl) triphenyl phosphonium bromide (TPP), a mitochondria-targeting ligand, was conjugated to indocyanine green (ICG)-loaded, polyethylenimine-modified PEGylated nanographene oxide sheets (TPP-PPG@ICG) to promote mitochondrial accumulation after cellular internalization. Thereafter, exposure to a single dose of near-infrared irradiation enabled synergistic photodynamic and photothermal therapy, which simultaneously inhibited adenosine triphosphate synthesis and mitochondrial function. Induction of intrinsic apoptosis assisted in surmounting drug resistance and caused tumor cell death. After fluorescence imaging-guided synergistic phototherapy, the mitochondria-targeting, multifunctional graphene-based, drug-delivery system showed highly selective anticancer efficiency in vitro and in vivo, resulting in marked inhibition of tumor progression without noticeable toxicity in mice bearing doxorubicin-resistant MG63 tumor cells. Conclusion The mitochondria-targeting TPP-PPG@ICG nanocomposite constitutes a new class of nanomedicine for fluorescence imaging-guided synergistic phototherapy and shows promise for treating drug-resistant osteosarcoma.https://doi.org/10.1186/s12951-021-00831-6Synergistic phototherapyMitochondria-targetingDrug-resistant osteosarcomaGraphene oxideSingle-laser activation
collection DOAJ
language English
format Article
sources DOAJ
author Wei-Nan Zeng
Qiu-Ping Yu
Duan Wang
Jun-Li Liu
Qing-Jun Yang
Zong-Ke Zhou
Yi-Ping Zeng
spellingShingle Wei-Nan Zeng
Qiu-Ping Yu
Duan Wang
Jun-Li Liu
Qing-Jun Yang
Zong-Ke Zhou
Yi-Ping Zeng
Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma
Journal of Nanobiotechnology
Synergistic phototherapy
Mitochondria-targeting
Drug-resistant osteosarcoma
Graphene oxide
Single-laser activation
author_facet Wei-Nan Zeng
Qiu-Ping Yu
Duan Wang
Jun-Li Liu
Qing-Jun Yang
Zong-Ke Zhou
Yi-Ping Zeng
author_sort Wei-Nan Zeng
title Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma
title_short Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma
title_full Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma
title_fullStr Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma
title_full_unstemmed Mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma
title_sort mitochondria-targeting graphene oxide nanocomposites for fluorescence imaging-guided synergistic phototherapy of drug-resistant osteosarcoma
publisher BMC
series Journal of Nanobiotechnology
issn 1477-3155
publishDate 2021-03-01
description Abstract Background Osteosarcoma (OS) is the most common primary malignant bone tumor occurring in children and young adults. Drug-resistant osteosarcoma often results in chemotherapy failure. Therefore, new treatments aimed at novel therapeutic targets are urgently needed for the treatment of drug-resistant osteosarcoma. Mitochondria-targeted phototherapy, i.e., synergistic photodynamic/photothermal therapy, has emerged as a highly promising strategy for treating drug-resistant tumors. This study proposed a new nano-drug delivery system based on near-infrared imaging and multifunctional graphene, which can target mitochondria and show synergistic phototherapy, with preferential accumulation in tumors. Methods and results Based on our previous study, (4-carboxybutyl) triphenyl phosphonium bromide (TPP), a mitochondria-targeting ligand, was conjugated to indocyanine green (ICG)-loaded, polyethylenimine-modified PEGylated nanographene oxide sheets (TPP-PPG@ICG) to promote mitochondrial accumulation after cellular internalization. Thereafter, exposure to a single dose of near-infrared irradiation enabled synergistic photodynamic and photothermal therapy, which simultaneously inhibited adenosine triphosphate synthesis and mitochondrial function. Induction of intrinsic apoptosis assisted in surmounting drug resistance and caused tumor cell death. After fluorescence imaging-guided synergistic phototherapy, the mitochondria-targeting, multifunctional graphene-based, drug-delivery system showed highly selective anticancer efficiency in vitro and in vivo, resulting in marked inhibition of tumor progression without noticeable toxicity in mice bearing doxorubicin-resistant MG63 tumor cells. Conclusion The mitochondria-targeting TPP-PPG@ICG nanocomposite constitutes a new class of nanomedicine for fluorescence imaging-guided synergistic phototherapy and shows promise for treating drug-resistant osteosarcoma.
topic Synergistic phototherapy
Mitochondria-targeting
Drug-resistant osteosarcoma
Graphene oxide
Single-laser activation
url https://doi.org/10.1186/s12951-021-00831-6
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