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Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis

Glioblastoma is acknowledged as the most aggressive cerebral tumor in adults. However, the efficacy of current standard therapy is seriously undermined by drug resistance and suppressive immune microenvironment. Ferroptosis is a recently discovered form of iron-dependent cell death that may have exc...

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Autores principales: Wang, Zixiao, Liu, Zihao, Wang, Shan, Bing, Xin, Ji, Xiaoshuai, He, Dong, Han, Min, Wei, Yanbang, Wang, Chanyue, Xia, Qian, Yang, Jianqiao, Gao, Jiajia, Yin, Xianyong, Wang, Zhihai, Shang, Zehan, Xu, Jiacan, Xin, Tao, Liu, Qian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Shenyang Pharmaceutical University 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10232663/
https://www.ncbi.nlm.nih.gov/pubmed/37274924
http://dx.doi.org/10.1016/j.ajps.2023.100800
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author Wang, Zixiao
Liu, Zihao
Wang, Shan
Bing, Xin
Ji, Xiaoshuai
He, Dong
Han, Min
Wei, Yanbang
Wang, Chanyue
Xia, Qian
Yang, Jianqiao
Gao, Jiajia
Yin, Xianyong
Wang, Zhihai
Shang, Zehan
Xu, Jiacan
Xin, Tao
Liu, Qian
author_facet Wang, Zixiao
Liu, Zihao
Wang, Shan
Bing, Xin
Ji, Xiaoshuai
He, Dong
Han, Min
Wei, Yanbang
Wang, Chanyue
Xia, Qian
Yang, Jianqiao
Gao, Jiajia
Yin, Xianyong
Wang, Zhihai
Shang, Zehan
Xu, Jiacan
Xin, Tao
Liu, Qian
author_sort Wang, Zixiao
collection PubMed
description Glioblastoma is acknowledged as the most aggressive cerebral tumor in adults. However, the efficacy of current standard therapy is seriously undermined by drug resistance and suppressive immune microenvironment. Ferroptosis is a recently discovered form of iron-dependent cell death that may have excellent prospect as chemosensitizer. The utilization of ferropotosis inducer Erastin could significantly mediate chemotherapy sensitization of Temozolomide and exert anti-tumor effects in glioblastoma. In this study, a combination of hydrogel-liposome nanoplatform encapsulated with Temozolomide and ferroptosis inducer Erastin was constructed. The αvβ3 integrin-binding peptide cyclic RGD was utilized to modify codelivery system to achieve glioblastoma targeting strategy. As biocompatible drug reservoirs, cross-linked GelMA (gelatin methacrylamide) hydrogel and cRGD-coated liposome realized the sustained release of internal contents. In the modified intracranial tumor resection model, GelMA-liposome system achieved slow release of Temozolomide and Erastin in situ for more than 14 d. The results indicated that nanoplatform (T+E@LPs-cRGD+GelMA) improved glioblastoma sensitivity to chemotherapeutic temozolomide and exerted satisfactory anti-tumor effects. It was demonstrated that the induction of ferroptosis could be utilized as a therapeutic strategy to overcome drug resistance. Furthermore, transcriptome sequencing was conducted to reveal the underlying mechanism that the nanoplatform (T+E@LPs-cRGD+GelMA) implicated in. It is suggested that GelMA-liposome system participated in the immune response and immunomodulation of glioblastoma via interferon/PD-L1 pathway. Collectively, this study proposed a potential combinatory therapeutic strategy for glioblastoma treatment.
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spelling pubmed-102326632023-06-02 Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis Wang, Zixiao Liu, Zihao Wang, Shan Bing, Xin Ji, Xiaoshuai He, Dong Han, Min Wei, Yanbang Wang, Chanyue Xia, Qian Yang, Jianqiao Gao, Jiajia Yin, Xianyong Wang, Zhihai Shang, Zehan Xu, Jiacan Xin, Tao Liu, Qian Asian J Pharm Sci Original Research Paper Glioblastoma is acknowledged as the most aggressive cerebral tumor in adults. However, the efficacy of current standard therapy is seriously undermined by drug resistance and suppressive immune microenvironment. Ferroptosis is a recently discovered form of iron-dependent cell death that may have excellent prospect as chemosensitizer. The utilization of ferropotosis inducer Erastin could significantly mediate chemotherapy sensitization of Temozolomide and exert anti-tumor effects in glioblastoma. In this study, a combination of hydrogel-liposome nanoplatform encapsulated with Temozolomide and ferroptosis inducer Erastin was constructed. The αvβ3 integrin-binding peptide cyclic RGD was utilized to modify codelivery system to achieve glioblastoma targeting strategy. As biocompatible drug reservoirs, cross-linked GelMA (gelatin methacrylamide) hydrogel and cRGD-coated liposome realized the sustained release of internal contents. In the modified intracranial tumor resection model, GelMA-liposome system achieved slow release of Temozolomide and Erastin in situ for more than 14 d. The results indicated that nanoplatform (T+E@LPs-cRGD+GelMA) improved glioblastoma sensitivity to chemotherapeutic temozolomide and exerted satisfactory anti-tumor effects. It was demonstrated that the induction of ferroptosis could be utilized as a therapeutic strategy to overcome drug resistance. Furthermore, transcriptome sequencing was conducted to reveal the underlying mechanism that the nanoplatform (T+E@LPs-cRGD+GelMA) implicated in. It is suggested that GelMA-liposome system participated in the immune response and immunomodulation of glioblastoma via interferon/PD-L1 pathway. Collectively, this study proposed a potential combinatory therapeutic strategy for glioblastoma treatment. Shenyang Pharmaceutical University 2023-05 2023-03-28 /pmc/articles/PMC10232663/ /pubmed/37274924 http://dx.doi.org/10.1016/j.ajps.2023.100800 Text en © 2023 Shenyang Pharmaceutical University. Published by Elsevier B.V. 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 Original Research Paper
Wang, Zixiao
Liu, Zihao
Wang, Shan
Bing, Xin
Ji, Xiaoshuai
He, Dong
Han, Min
Wei, Yanbang
Wang, Chanyue
Xia, Qian
Yang, Jianqiao
Gao, Jiajia
Yin, Xianyong
Wang, Zhihai
Shang, Zehan
Xu, Jiacan
Xin, Tao
Liu, Qian
Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis
title Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis
title_full Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis
title_fullStr Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis
title_full_unstemmed Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis
title_short Implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis
title_sort implantation of hydrogel-liposome nanoplatform inhibits glioblastoma relapse by inducing ferroptosis
topic Original Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10232663/
https://www.ncbi.nlm.nih.gov/pubmed/37274924
http://dx.doi.org/10.1016/j.ajps.2023.100800
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