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A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy

The low efficiency of photodynamic therapy (PDT) is caused by tumor hypoxia and the adaptive immune resistance/evasion of tumor cells, while the currently emerging immune checkpoint therapy restores the intrinsic immune capacities but can't directly attack the tumor cells. Methods: Herein we re...

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Autores principales: Liu, Yanlei, Pan, Yunxiang, Cao, Wen, Xia, Fangfang, Liu, Bin, Niu, Jiaqi, Alfranca, Gabriel, Sun, Xiyang, Ma, Lijun, de la Fuente, Jesus Martinez, Song, Jie, Ni, Jian, Cui, Daxiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6815945/
https://www.ncbi.nlm.nih.gov/pubmed/31660074
http://dx.doi.org/10.7150/thno.37586
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author Liu, Yanlei
Pan, Yunxiang
Cao, Wen
Xia, Fangfang
Liu, Bin
Niu, Jiaqi
Alfranca, Gabriel
Sun, Xiyang
Ma, Lijun
de la Fuente, Jesus Martinez
Song, Jie
Ni, Jian
Cui, Daxiang
author_facet Liu, Yanlei
Pan, Yunxiang
Cao, Wen
Xia, Fangfang
Liu, Bin
Niu, Jiaqi
Alfranca, Gabriel
Sun, Xiyang
Ma, Lijun
de la Fuente, Jesus Martinez
Song, Jie
Ni, Jian
Cui, Daxiang
author_sort Liu, Yanlei
collection PubMed
description The low efficiency of photodynamic therapy (PDT) is caused by tumor hypoxia and the adaptive immune resistance/evasion of tumor cells, while the currently emerging immune checkpoint therapy restores the intrinsic immune capacities but can't directly attack the tumor cells. Methods: Herein we report an integrated nanoplatform that combines PDT with immunotherapy to enhance photodynamic therapeutic effects and simultaneously inhibit tumor cells resistance/evasion. To achieve this, we fabricated Mn@CaCO(3)/ICG nanoparticles and loaded them with PD-L1-targeting siRNA. Results: Thanks to the protection of CaCO(3) on the loaded ICG and the oxygen produced by MnO(2), an enhanced photodynamic therapeutic effect in vitro was observed. In vivo experiments demonstrated that the nanoplatform could efficiently deliver the loaded drug to the tumor tissues and significantly improve tumor hypoxia, which further contributes to the therapeutic effect of PDT in vivo. Moreover, the synergistic benefits derived from the siRNA, which silenced the checkpoint gene PD-L1 that mediates the immune resistance/evasion, resulted in a surprising therapeutic effect to rouse the immune system. Conclusions: The combination treatment strategy has great potential to be developed as a new and robust method for enhanced PDT therapy with high efficiency and a powerful antitumor immune response based on PD-L1 blockade.
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spelling pubmed-68159452019-10-28 A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy Liu, Yanlei Pan, Yunxiang Cao, Wen Xia, Fangfang Liu, Bin Niu, Jiaqi Alfranca, Gabriel Sun, Xiyang Ma, Lijun de la Fuente, Jesus Martinez Song, Jie Ni, Jian Cui, Daxiang Theranostics Research Paper The low efficiency of photodynamic therapy (PDT) is caused by tumor hypoxia and the adaptive immune resistance/evasion of tumor cells, while the currently emerging immune checkpoint therapy restores the intrinsic immune capacities but can't directly attack the tumor cells. Methods: Herein we report an integrated nanoplatform that combines PDT with immunotherapy to enhance photodynamic therapeutic effects and simultaneously inhibit tumor cells resistance/evasion. To achieve this, we fabricated Mn@CaCO(3)/ICG nanoparticles and loaded them with PD-L1-targeting siRNA. Results: Thanks to the protection of CaCO(3) on the loaded ICG and the oxygen produced by MnO(2), an enhanced photodynamic therapeutic effect in vitro was observed. In vivo experiments demonstrated that the nanoplatform could efficiently deliver the loaded drug to the tumor tissues and significantly improve tumor hypoxia, which further contributes to the therapeutic effect of PDT in vivo. Moreover, the synergistic benefits derived from the siRNA, which silenced the checkpoint gene PD-L1 that mediates the immune resistance/evasion, resulted in a surprising therapeutic effect to rouse the immune system. Conclusions: The combination treatment strategy has great potential to be developed as a new and robust method for enhanced PDT therapy with high efficiency and a powerful antitumor immune response based on PD-L1 blockade. Ivyspring International Publisher 2019-09-21 /pmc/articles/PMC6815945/ /pubmed/31660074 http://dx.doi.org/10.7150/thno.37586 Text en © The author(s) 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
Liu, Yanlei
Pan, Yunxiang
Cao, Wen
Xia, Fangfang
Liu, Bin
Niu, Jiaqi
Alfranca, Gabriel
Sun, Xiyang
Ma, Lijun
de la Fuente, Jesus Martinez
Song, Jie
Ni, Jian
Cui, Daxiang
A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy
title A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy
title_full A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy
title_fullStr A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy
title_full_unstemmed A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy
title_short A tumor microenvironment responsive biodegradable CaCO(3)/MnO(2)- based nanoplatform for the enhanced photodynamic therapy and improved PD-L1 immunotherapy
title_sort tumor microenvironment responsive biodegradable caco(3)/mno(2)- based nanoplatform for the enhanced photodynamic therapy and improved pd-l1 immunotherapy
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6815945/
https://www.ncbi.nlm.nih.gov/pubmed/31660074
http://dx.doi.org/10.7150/thno.37586
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