On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy

Nanosystem-mediated tumor radiosensitization strategy combining the features of X-ray with infinite penetration depth and high atomic number elements shows considerable application potential in clinical cancer therapy. However, it is difficult to achieve satisfactory anticancer efficacy using clinic...

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Main Authors: Liu, Shikai, Li, Wenting, Chen, Hengxing, Zhou, Jialing, Dong, Shuming, Zang, Pengyu, Tian, Boshi, Ding, He, Gai, Shili, Yang, Piaoping, Zhao, Yanli
Other Authors: School of Physical and Mathematical Sciences
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Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/165517
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1655172023-06-21T08:09:05Z On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy Liu, Shikai Li, Wenting Chen, Hengxing Zhou, Jialing Dong, Shuming Zang, Pengyu Tian, Boshi Ding, He Gai, Shili Yang, Piaoping Zhao, Yanli School of Physical and Mathematical Sciences School of Chemistry, Chemical Engineering and Biotechnology Science::Chemistry DNA Damage Repair Glutamine Synthetase Nanosystem-mediated tumor radiosensitization strategy combining the features of X-ray with infinite penetration depth and high atomic number elements shows considerable application potential in clinical cancer therapy. However, it is difficult to achieve satisfactory anticancer efficacy using clinical radiotherapy for the majority of solid tumors due to the restrictions brought about by the tumor hypoxia, insufficient DNA damage, and rapid DNA repair during and after treatment. Inspired by the complementary advantages of nitric oxide (NO) and X-ray-induced photodynamic therapy, we herein report a two-dimensional nanoplatform by the integration of the NO donor-modified LiYF4:Ce scintillator and graphitic carbon nitride nanosheets for on-demand generation of highly cytotoxic peroxynitrite (ONOO–). By simply adjusting the Ce3+ doping content, the obtained nanoscintillator can realize high radioluminescence, activating photosensitive materials to simultaneously generate NO and superoxide radical for the formation of ONOO– in the tumor. Obtained ONOO– effectively amplifies therapeutic efficacy of radiotherapy by directly inducing mitochondrial and DNA damage, overcoming hypoxia-associated radiation resistance. The level of glutamine synthetase (GS) is downregulated by ONOO–, and the inhibition of GS delays DNA damage repair, further enhancing radiosensitivity. This work establishes a combinatorial strategy of ONOO– to overcome the major limitations of radiotherapy and provides insightful guidance to clinical radiotherapy. Agency for Science, Technology and Research (A*STAR) Submitted/Accepted version Financial support from the National Natural Science Foundation of China (51972075, 51972076, and 51772059), the Natural Science Foundation of Shandong Province (ZR2019ZD29), the Natural Science Foundation of Heilongjiang Province (YQ2019E014), the Postdoctoral Scientific Research Developmental Fund (LBH-Q18034), and the Ph.D. Student Research and Innovation Fund of the Fundamental Research Funds for the Central Universities (3072020GIP1016) are greatly acknowledged. This research is also supported by the Singapore Agency for Science, Technology and Research (A*STAR) AME IRG grant (A20E5c0081). 2023-03-29T01:40:56Z 2023-03-29T01:40:56Z 2022 Journal Article Liu, S., Li, W., Chen, H., Zhou, J., Dong, S., Zang, P., Tian, B., Ding, H., Gai, S., Yang, P. & Zhao, Y. (2022). On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy. ACS Nano, 16(6), 8939-8953. https://dx.doi.org/10.1021/acsnano.1c11422 1936-0851 https://hdl.handle.net/10356/165517 10.1021/acsnano.1c11422 6 16 8939 8953 en A20E5c0081 ACS Nano This document is the Accepted Manuscript version of a Published Work that appeared in final form in ACS Nano, copyright © 2022 American Chemical Society, after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acsnano.1c11422. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Chemistry
DNA Damage Repair
Glutamine Synthetase
spellingShingle Science::Chemistry
DNA Damage Repair
Glutamine Synthetase
Liu, Shikai
Li, Wenting
Chen, Hengxing
Zhou, Jialing
Dong, Shuming
Zang, Pengyu
Tian, Boshi
Ding, He
Gai, Shili
Yang, Piaoping
Zhao, Yanli
On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy
description Nanosystem-mediated tumor radiosensitization strategy combining the features of X-ray with infinite penetration depth and high atomic number elements shows considerable application potential in clinical cancer therapy. However, it is difficult to achieve satisfactory anticancer efficacy using clinical radiotherapy for the majority of solid tumors due to the restrictions brought about by the tumor hypoxia, insufficient DNA damage, and rapid DNA repair during and after treatment. Inspired by the complementary advantages of nitric oxide (NO) and X-ray-induced photodynamic therapy, we herein report a two-dimensional nanoplatform by the integration of the NO donor-modified LiYF4:Ce scintillator and graphitic carbon nitride nanosheets for on-demand generation of highly cytotoxic peroxynitrite (ONOO–). By simply adjusting the Ce3+ doping content, the obtained nanoscintillator can realize high radioluminescence, activating photosensitive materials to simultaneously generate NO and superoxide radical for the formation of ONOO– in the tumor. Obtained ONOO– effectively amplifies therapeutic efficacy of radiotherapy by directly inducing mitochondrial and DNA damage, overcoming hypoxia-associated radiation resistance. The level of glutamine synthetase (GS) is downregulated by ONOO–, and the inhibition of GS delays DNA damage repair, further enhancing radiosensitivity. This work establishes a combinatorial strategy of ONOO– to overcome the major limitations of radiotherapy and provides insightful guidance to clinical radiotherapy.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
Liu, Shikai
Li, Wenting
Chen, Hengxing
Zhou, Jialing
Dong, Shuming
Zang, Pengyu
Tian, Boshi
Ding, He
Gai, Shili
Yang, Piaoping
Zhao, Yanli
format Article
author Liu, Shikai
Li, Wenting
Chen, Hengxing
Zhou, Jialing
Dong, Shuming
Zang, Pengyu
Tian, Boshi
Ding, He
Gai, Shili
Yang, Piaoping
Zhao, Yanli
author_sort Liu, Shikai
title On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy
title_short On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy
title_full On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy
title_fullStr On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy
title_full_unstemmed On-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy
title_sort on-demand generation of peroxynitrite from an integrated two-dimensional system for enhanced tumor therapy
publishDate 2023
url https://hdl.handle.net/10356/165517
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