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Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy

Therapeutic approaches of combining conventional photodynamic therapy (PDT) with other adjuvant treatments to sensitize PDT represent an appealing strategy. Herein, a novel synergetic “nanobomb” strategy based on glutathione (GSH)-responsive biodegradation was proposed to effectively destroy tumors...

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Detalles Bibliográficos
Autores principales: Feng, Yi, Zhang, Hanxi, Xie, Xiaoxue, Chen, Yu, Yang, Geng, Wei, Xiaodan, Li, Ningxi, Li, Mengyue, Li, Tingting, Qin, Xiang, Li, Shun, You, Fengming, Wu, Chunhui, Yang, Hong, Liu, Yiyao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9130115/
https://www.ncbi.nlm.nih.gov/pubmed/35647513
http://dx.doi.org/10.1016/j.mtbio.2022.100288
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author Feng, Yi
Zhang, Hanxi
Xie, Xiaoxue
Chen, Yu
Yang, Geng
Wei, Xiaodan
Li, Ningxi
Li, Mengyue
Li, Tingting
Qin, Xiang
Li, Shun
You, Fengming
Wu, Chunhui
Yang, Hong
Liu, Yiyao
author_facet Feng, Yi
Zhang, Hanxi
Xie, Xiaoxue
Chen, Yu
Yang, Geng
Wei, Xiaodan
Li, Ningxi
Li, Mengyue
Li, Tingting
Qin, Xiang
Li, Shun
You, Fengming
Wu, Chunhui
Yang, Hong
Liu, Yiyao
author_sort Feng, Yi
collection PubMed
description Therapeutic approaches of combining conventional photodynamic therapy (PDT) with other adjuvant treatments to sensitize PDT represent an appealing strategy. Herein, a novel synergetic “nanobomb” strategy based on glutathione (GSH)-responsive biodegradation was proposed to effectively destroy tumors expeditiously and accurately. This “nanobomb” was rationally constructed via the simultaneous encapsulation of methylene blue (MB) and l-arginine (L-Arg) into polyethylene glycol (PEG) modified mesoporous organosilicon nanoparticles (MON). The resulting L-Arg/MB@MP initially exhibited prolonged blood circulation, improved bioavailability, and enhanced tumor accumulation in mice after tail vein injection according to the pharmacokinetic investigations, before the nanoparticles were entirely excreted. Under laser irradiation, L-Arg/MB@MP produced remarkable reactive oxygen species (ROS) directly for PDT therapy, while a portion of ROS may oxidize L-Arg to generate nitric oxide (NO) not only for gas therapy (GT) but also serve as a biological messenger to regulate vasodilation to alleviate the tumor hypoxia. Subsequently, the rapidly released NO was further oxidized to reactive nitrogen species, which together with ROS promote immunogenic cell death by inducing G2/M cell-cycle arrest and apoptosis in cancer cells, and eventually resulting in enhanced anti-tumor immune responses. Moreover, the GSH depletion in tumor tissues induced by L-Arg/MB@MP biodegradation can cooperate with GT to amplify the therapeutic effect of PDT. These results demonstrate that this “nanobomb” provides new ideas for clinical translation to treat tumor patients in terms of synergistic PDT-GT nanotherapy in hypoxic-solid tumors.
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spelling pubmed-91301152022-05-26 Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy Feng, Yi Zhang, Hanxi Xie, Xiaoxue Chen, Yu Yang, Geng Wei, Xiaodan Li, Ningxi Li, Mengyue Li, Tingting Qin, Xiang Li, Shun You, Fengming Wu, Chunhui Yang, Hong Liu, Yiyao Mater Today Bio Full Length Article Therapeutic approaches of combining conventional photodynamic therapy (PDT) with other adjuvant treatments to sensitize PDT represent an appealing strategy. Herein, a novel synergetic “nanobomb” strategy based on glutathione (GSH)-responsive biodegradation was proposed to effectively destroy tumors expeditiously and accurately. This “nanobomb” was rationally constructed via the simultaneous encapsulation of methylene blue (MB) and l-arginine (L-Arg) into polyethylene glycol (PEG) modified mesoporous organosilicon nanoparticles (MON). The resulting L-Arg/MB@MP initially exhibited prolonged blood circulation, improved bioavailability, and enhanced tumor accumulation in mice after tail vein injection according to the pharmacokinetic investigations, before the nanoparticles were entirely excreted. Under laser irradiation, L-Arg/MB@MP produced remarkable reactive oxygen species (ROS) directly for PDT therapy, while a portion of ROS may oxidize L-Arg to generate nitric oxide (NO) not only for gas therapy (GT) but also serve as a biological messenger to regulate vasodilation to alleviate the tumor hypoxia. Subsequently, the rapidly released NO was further oxidized to reactive nitrogen species, which together with ROS promote immunogenic cell death by inducing G2/M cell-cycle arrest and apoptosis in cancer cells, and eventually resulting in enhanced anti-tumor immune responses. Moreover, the GSH depletion in tumor tissues induced by L-Arg/MB@MP biodegradation can cooperate with GT to amplify the therapeutic effect of PDT. These results demonstrate that this “nanobomb” provides new ideas for clinical translation to treat tumor patients in terms of synergistic PDT-GT nanotherapy in hypoxic-solid tumors. Elsevier 2022-05-13 /pmc/articles/PMC9130115/ /pubmed/35647513 http://dx.doi.org/10.1016/j.mtbio.2022.100288 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Full Length Article
Feng, Yi
Zhang, Hanxi
Xie, Xiaoxue
Chen, Yu
Yang, Geng
Wei, Xiaodan
Li, Ningxi
Li, Mengyue
Li, Tingting
Qin, Xiang
Li, Shun
You, Fengming
Wu, Chunhui
Yang, Hong
Liu, Yiyao
Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy
title Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy
title_full Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy
title_fullStr Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy
title_full_unstemmed Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy
title_short Cascade-activatable NO release based on GSH-detonated “nanobomb” for multi-pathways cancer therapy
title_sort cascade-activatable no release based on gsh-detonated “nanobomb” for multi-pathways cancer therapy
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9130115/
https://www.ncbi.nlm.nih.gov/pubmed/35647513
http://dx.doi.org/10.1016/j.mtbio.2022.100288
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