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Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma

Nuclear fission reactions can release massive amounts of energy accompanied by neutrons and γ photons, which create a mixed radiation field and enable a series of reactions in nuclear reactors. This study demonstrates a one-pot/one-step approach to synthesizing radioactive gold nanoparticles (RGNP)...

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Autores principales: Li, Jui-Ping, Kuo, Yu-Cheng, Liao, Wei-Neng, Yang, Ya-Ting, Chen, Sih-Yu, Chien, Yu-Ting, Wu, Kuo-Hung, Wang, Mei-Ya, Chou, Fong-In, Yang, Mo-Hsiung, Hueng, Dueng-Yuan, Yang, Chung-Shi, Chen, Jen-Kun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10650840/
https://www.ncbi.nlm.nih.gov/pubmed/37947667
http://dx.doi.org/10.3390/nano13212821
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author Li, Jui-Ping
Kuo, Yu-Cheng
Liao, Wei-Neng
Yang, Ya-Ting
Chen, Sih-Yu
Chien, Yu-Ting
Wu, Kuo-Hung
Wang, Mei-Ya
Chou, Fong-In
Yang, Mo-Hsiung
Hueng, Dueng-Yuan
Yang, Chung-Shi
Chen, Jen-Kun
author_facet Li, Jui-Ping
Kuo, Yu-Cheng
Liao, Wei-Neng
Yang, Ya-Ting
Chen, Sih-Yu
Chien, Yu-Ting
Wu, Kuo-Hung
Wang, Mei-Ya
Chou, Fong-In
Yang, Mo-Hsiung
Hueng, Dueng-Yuan
Yang, Chung-Shi
Chen, Jen-Kun
author_sort Li, Jui-Ping
collection PubMed
description Nuclear fission reactions can release massive amounts of energy accompanied by neutrons and γ photons, which create a mixed radiation field and enable a series of reactions in nuclear reactors. This study demonstrates a one-pot/one-step approach to synthesizing radioactive gold nanoparticles (RGNP) without using radioactive precursors and reducing agents. Trivalent gold ions are reduced into gold nanoparticles (8.6–146 nm), and a particular portion of (197)Au atoms is simultaneously converted to (198)Au atoms, rendering the nanoparticles radioactive. We suggest that harnessing nuclear energy to gold nanoparticles is feasible in the interests of advancing nanotechnology for cancer therapy. A combination of RGNP applied through convection-enhanced delivery (CED) and temozolomide (TMZ) through oral administration demonstrates the synergistic effect in treating glioblastoma-bearing mice. The mean survival for RGNP/TMZ treatment was 68.9 ± 9.7 days compared to that for standalone RGNP (38.4 ± 2.2 days) or TMZ (42.8 ± 2.5 days) therapies. Based on the verification of bioluminescence images, positron emission tomography, and immunohistochemistry inspection, the combination treatment can inhibit the proliferation of glioblastoma, highlighting the niche of concurrent chemoradiotherapy (CCRT) attributed to RGNP and TMZ.
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spelling pubmed-106508402023-10-24 Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma Li, Jui-Ping Kuo, Yu-Cheng Liao, Wei-Neng Yang, Ya-Ting Chen, Sih-Yu Chien, Yu-Ting Wu, Kuo-Hung Wang, Mei-Ya Chou, Fong-In Yang, Mo-Hsiung Hueng, Dueng-Yuan Yang, Chung-Shi Chen, Jen-Kun Nanomaterials (Basel) Article Nuclear fission reactions can release massive amounts of energy accompanied by neutrons and γ photons, which create a mixed radiation field and enable a series of reactions in nuclear reactors. This study demonstrates a one-pot/one-step approach to synthesizing radioactive gold nanoparticles (RGNP) without using radioactive precursors and reducing agents. Trivalent gold ions are reduced into gold nanoparticles (8.6–146 nm), and a particular portion of (197)Au atoms is simultaneously converted to (198)Au atoms, rendering the nanoparticles radioactive. We suggest that harnessing nuclear energy to gold nanoparticles is feasible in the interests of advancing nanotechnology for cancer therapy. A combination of RGNP applied through convection-enhanced delivery (CED) and temozolomide (TMZ) through oral administration demonstrates the synergistic effect in treating glioblastoma-bearing mice. The mean survival for RGNP/TMZ treatment was 68.9 ± 9.7 days compared to that for standalone RGNP (38.4 ± 2.2 days) or TMZ (42.8 ± 2.5 days) therapies. Based on the verification of bioluminescence images, positron emission tomography, and immunohistochemistry inspection, the combination treatment can inhibit the proliferation of glioblastoma, highlighting the niche of concurrent chemoradiotherapy (CCRT) attributed to RGNP and TMZ. MDPI 2023-10-24 /pmc/articles/PMC10650840/ /pubmed/37947667 http://dx.doi.org/10.3390/nano13212821 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Jui-Ping
Kuo, Yu-Cheng
Liao, Wei-Neng
Yang, Ya-Ting
Chen, Sih-Yu
Chien, Yu-Ting
Wu, Kuo-Hung
Wang, Mei-Ya
Chou, Fong-In
Yang, Mo-Hsiung
Hueng, Dueng-Yuan
Yang, Chung-Shi
Chen, Jen-Kun
Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma
title Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma
title_full Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma
title_fullStr Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma
title_full_unstemmed Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma
title_short Harnessing Nuclear Energy to Gold Nanoparticles for the Concurrent Chemoradiotherapy of Glioblastoma
title_sort harnessing nuclear energy to gold nanoparticles for the concurrent chemoradiotherapy of glioblastoma
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10650840/
https://www.ncbi.nlm.nih.gov/pubmed/37947667
http://dx.doi.org/10.3390/nano13212821
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