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Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration

We aim to characterize the metabolic changes associated with early response to radiation therapy in a prostate cancer mouse model by 2-deoxy-2-[(18)F]fluoro-d-glucose ([(18)F]FDG) and [(11)C]acetate ([(11)C]ACT) positron emission tomography, with nuclear magnetic resonance (NMR) metabolomics corrobo...

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Autores principales: Chung, Yi-Hsiu, Tsai, Cheng-Kun, Wang, Chiun-Chieh, Chen, Hsi-Mu, Lu, Kuan-Ying, Chiu, Han, Lin, Yu-Chun, Yen, Tzu-Chen, Lin, Gigin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6150287/
https://www.ncbi.nlm.nih.gov/pubmed/29125557
http://dx.doi.org/10.3390/molecules22111946
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author Chung, Yi-Hsiu
Tsai, Cheng-Kun
Wang, Chiun-Chieh
Chen, Hsi-Mu
Lu, Kuan-Ying
Chiu, Han
Lin, Yu-Chun
Yen, Tzu-Chen
Lin, Gigin
author_facet Chung, Yi-Hsiu
Tsai, Cheng-Kun
Wang, Chiun-Chieh
Chen, Hsi-Mu
Lu, Kuan-Ying
Chiu, Han
Lin, Yu-Chun
Yen, Tzu-Chen
Lin, Gigin
author_sort Chung, Yi-Hsiu
collection PubMed
description We aim to characterize the metabolic changes associated with early response to radiation therapy in a prostate cancer mouse model by 2-deoxy-2-[(18)F]fluoro-d-glucose ([(18)F]FDG) and [(11)C]acetate ([(11)C]ACT) positron emission tomography, with nuclear magnetic resonance (NMR) metabolomics corroboration. [(18)F]FDG and [(11)C]ACT PET were performed before and following irradiation (RT, 15Gy) for transgenic adenocarcinoma of mouse prostate xenografts. The underlying metabolomics alterations of tumor tissues were analyzed by using ex vivo NMR. The [(18)F]FDG total lesion glucose (TLG) of the tumor significant increased in the RT group at Days 1 and 3 post-irradiation, compared with the non-RT group (p < 0.05). The [(11)C]ACT maximum standard uptake value (SUVmax) in RT (0.83 ± 0.02) and non-RT groups (0.85 ± 0.07) were not significantly different (p > 0.05). The ex vivo NMR analysis showed a 1.70-fold increase in glucose and a 1.2-fold increase in acetate in the RT group at Day 3 post-irradiation (p < 0.05). Concordantly, the expressions of cytoplasmic acetyl-CoA synthetase in the irradiated tumors was overexpressed at Day 3 post-irradiation (p < 0.05). Therefore, TLG of [(18)F]FDG in vivo PET images can map early treatment response following irradiation and be a promising prognostic indicator in a longitudinal preclinical study. The underlying metabolic alterations was not reflected by the [(11)C]ACT PET.
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spelling pubmed-61502872018-11-13 Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration Chung, Yi-Hsiu Tsai, Cheng-Kun Wang, Chiun-Chieh Chen, Hsi-Mu Lu, Kuan-Ying Chiu, Han Lin, Yu-Chun Yen, Tzu-Chen Lin, Gigin Molecules Article We aim to characterize the metabolic changes associated with early response to radiation therapy in a prostate cancer mouse model by 2-deoxy-2-[(18)F]fluoro-d-glucose ([(18)F]FDG) and [(11)C]acetate ([(11)C]ACT) positron emission tomography, with nuclear magnetic resonance (NMR) metabolomics corroboration. [(18)F]FDG and [(11)C]ACT PET were performed before and following irradiation (RT, 15Gy) for transgenic adenocarcinoma of mouse prostate xenografts. The underlying metabolomics alterations of tumor tissues were analyzed by using ex vivo NMR. The [(18)F]FDG total lesion glucose (TLG) of the tumor significant increased in the RT group at Days 1 and 3 post-irradiation, compared with the non-RT group (p < 0.05). The [(11)C]ACT maximum standard uptake value (SUVmax) in RT (0.83 ± 0.02) and non-RT groups (0.85 ± 0.07) were not significantly different (p > 0.05). The ex vivo NMR analysis showed a 1.70-fold increase in glucose and a 1.2-fold increase in acetate in the RT group at Day 3 post-irradiation (p < 0.05). Concordantly, the expressions of cytoplasmic acetyl-CoA synthetase in the irradiated tumors was overexpressed at Day 3 post-irradiation (p < 0.05). Therefore, TLG of [(18)F]FDG in vivo PET images can map early treatment response following irradiation and be a promising prognostic indicator in a longitudinal preclinical study. The underlying metabolic alterations was not reflected by the [(11)C]ACT PET. MDPI 2017-11-10 /pmc/articles/PMC6150287/ /pubmed/29125557 http://dx.doi.org/10.3390/molecules22111946 Text en © 2017 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chung, Yi-Hsiu
Tsai, Cheng-Kun
Wang, Chiun-Chieh
Chen, Hsi-Mu
Lu, Kuan-Ying
Chiu, Han
Lin, Yu-Chun
Yen, Tzu-Chen
Lin, Gigin
Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration
title Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration
title_full Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration
title_fullStr Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration
title_full_unstemmed Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration
title_short Early Response Monitoring Following Radiation Therapy by Using [(18)F]FDG and [(11)C]Acetate PET in Prostate Cancer Xenograft Model with Metabolomics Corroboration
title_sort early response monitoring following radiation therapy by using [(18)f]fdg and [(11)c]acetate pet in prostate cancer xenograft model with metabolomics corroboration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6150287/
https://www.ncbi.nlm.nih.gov/pubmed/29125557
http://dx.doi.org/10.3390/molecules22111946
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