Cargando…

An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance

Multi-drug resistance (MDR) of tumor cells has greatly hindered the therapeutic efficacy of chemotherapeutic drugs, resulting in chemotherapy failure, while overexpression of ATP-binding cassette (ABC) transporters in cell membranes is the leading cause of MDR. In this study, we reported novel self-...

Descripción completa

Detalles Bibliográficos
Autores principales: Gu, Liu-Qing, Cui, Peng-Fei, Xing, Lei, He, Yu-Jing, Chang, Xin, Zhou, Tian-Jiao, Liu, Yu, Li, Ling, Jiang, Hu-Lin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9087936/
https://www.ncbi.nlm.nih.gov/pubmed/35548379
http://dx.doi.org/10.1039/c9ra01356c
_version_ 1784704263626162176
author Gu, Liu-Qing
Cui, Peng-Fei
Xing, Lei
He, Yu-Jing
Chang, Xin
Zhou, Tian-Jiao
Liu, Yu
Li, Ling
Jiang, Hu-Lin
author_facet Gu, Liu-Qing
Cui, Peng-Fei
Xing, Lei
He, Yu-Jing
Chang, Xin
Zhou, Tian-Jiao
Liu, Yu
Li, Ling
Jiang, Hu-Lin
author_sort Gu, Liu-Qing
collection PubMed
description Multi-drug resistance (MDR) of tumor cells has greatly hindered the therapeutic efficacy of chemotherapeutic drugs, resulting in chemotherapy failure, while overexpression of ATP-binding cassette (ABC) transporters in cell membranes is the leading cause of MDR. In this study, we reported novel self-assembled triphenylphosphine-quercetin–polyethylene glycol–monoclonal antibody nanoparticles (TQ–PEG–mAb NPs) for overcoming MDR primarily through mitochondrial damage to block ATP supply to ABC transporters both in vitro and in vivo. The doxorubicin (DOX)-loaded NPs (TQ/DOX–PEG–mAb) were composed of two drugs (TQ and DOX) and an outer shielding shell of the PEG–mAb conjugate. Besides, the outer shell could be acid-responsively detached to expose the positive charge of TQ inside the NPs to enhance cellular uptake. TQ was proved to effectively induce mitochondrial damage with increased ROS levels and depolarization of mitochondrial membrane potential (MMP), leading to prominently reduced ATP supply to ABC transporters. Moreover, the involvement of the anti-vascular endothelial growth factor (VEGF) mAb was not only for efficient targeting but also for combined therapy. Consequently, TQ/DOX–PEG–mAb showed that the internalized amount of DOX was largely improved while the efflux amount was dramatically inhibited on MCF-7/ADR cells, indicating excellent reversal of DOX resistance. Importantly, the growth of DOX-resistant breast tumors was significantly inhibited with no evident systemic toxicity. Therefore, the employment of TQ–PEG–mAb is believed to be a new approach to improve the efficacy of chemotherapeutic drugs in MDR tumors.
format Online
Article
Text
id pubmed-9087936
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90879362022-05-10 An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance Gu, Liu-Qing Cui, Peng-Fei Xing, Lei He, Yu-Jing Chang, Xin Zhou, Tian-Jiao Liu, Yu Li, Ling Jiang, Hu-Lin RSC Adv Chemistry Multi-drug resistance (MDR) of tumor cells has greatly hindered the therapeutic efficacy of chemotherapeutic drugs, resulting in chemotherapy failure, while overexpression of ATP-binding cassette (ABC) transporters in cell membranes is the leading cause of MDR. In this study, we reported novel self-assembled triphenylphosphine-quercetin–polyethylene glycol–monoclonal antibody nanoparticles (TQ–PEG–mAb NPs) for overcoming MDR primarily through mitochondrial damage to block ATP supply to ABC transporters both in vitro and in vivo. The doxorubicin (DOX)-loaded NPs (TQ/DOX–PEG–mAb) were composed of two drugs (TQ and DOX) and an outer shielding shell of the PEG–mAb conjugate. Besides, the outer shell could be acid-responsively detached to expose the positive charge of TQ inside the NPs to enhance cellular uptake. TQ was proved to effectively induce mitochondrial damage with increased ROS levels and depolarization of mitochondrial membrane potential (MMP), leading to prominently reduced ATP supply to ABC transporters. Moreover, the involvement of the anti-vascular endothelial growth factor (VEGF) mAb was not only for efficient targeting but also for combined therapy. Consequently, TQ/DOX–PEG–mAb showed that the internalized amount of DOX was largely improved while the efflux amount was dramatically inhibited on MCF-7/ADR cells, indicating excellent reversal of DOX resistance. Importantly, the growth of DOX-resistant breast tumors was significantly inhibited with no evident systemic toxicity. Therefore, the employment of TQ–PEG–mAb is believed to be a new approach to improve the efficacy of chemotherapeutic drugs in MDR tumors. The Royal Society of Chemistry 2019-04-16 /pmc/articles/PMC9087936/ /pubmed/35548379 http://dx.doi.org/10.1039/c9ra01356c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gu, Liu-Qing
Cui, Peng-Fei
Xing, Lei
He, Yu-Jing
Chang, Xin
Zhou, Tian-Jiao
Liu, Yu
Li, Ling
Jiang, Hu-Lin
An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance
title An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance
title_full An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance
title_fullStr An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance
title_full_unstemmed An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance
title_short An energy-blocking nanoparticle decorated with anti-VEGF antibody to reverse chemotherapeutic drug resistance
title_sort energy-blocking nanoparticle decorated with anti-vegf antibody to reverse chemotherapeutic drug resistance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9087936/
https://www.ncbi.nlm.nih.gov/pubmed/35548379
http://dx.doi.org/10.1039/c9ra01356c
work_keys_str_mv AT guliuqing anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT cuipengfei anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT xinglei anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT heyujing anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT changxin anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT zhoutianjiao anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT liuyu anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT liling anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT jianghulin anenergyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT guliuqing energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT cuipengfei energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT xinglei energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT heyujing energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT changxin energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT zhoutianjiao energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT liuyu energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT liling energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance
AT jianghulin energyblockingnanoparticledecoratedwithantivegfantibodytoreversechemotherapeuticdrugresistance