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Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation

Radiotherapy is a vital approach for brain tumor treatment. The standard treatment for glioblastoma (GB) is maximal surgical resection combined with radiotherapy and chemotherapy. However, the non-sensitivity of tumor cells in the hypoxic area of solid tumors to radiotherapy may cause radioresistanc...

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Autores principales: Zhang, Hongquan, Wen, Chunxi, Li, Bingting, Yan, Xinlin, Xu, Yangrong, Guo, Jialin, Hou, Shi, Chang, Jiajia, Li, Song, Xiao, Junhai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9024523/
https://www.ncbi.nlm.nih.gov/pubmed/35458626
http://dx.doi.org/10.3390/molecules27082428
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author Zhang, Hongquan
Wen, Chunxi
Li, Bingting
Yan, Xinlin
Xu, Yangrong
Guo, Jialin
Hou, Shi
Chang, Jiajia
Li, Song
Xiao, Junhai
author_facet Zhang, Hongquan
Wen, Chunxi
Li, Bingting
Yan, Xinlin
Xu, Yangrong
Guo, Jialin
Hou, Shi
Chang, Jiajia
Li, Song
Xiao, Junhai
author_sort Zhang, Hongquan
collection PubMed
description Radiotherapy is a vital approach for brain tumor treatment. The standard treatment for glioblastoma (GB) is maximal surgical resection combined with radiotherapy and chemotherapy. However, the non-sensitivity of tumor cells in the hypoxic area of solid tumors to radiotherapy may cause radioresistance. Therefore, radiotherapy sensitizers that increase the oxygen concentration within the tumor are promising for increasing the effectiveness of radiation. Inspired by hemoglobin allosteric oxygen release regulators, a series of novel phenoxyacetic acid analogues were designed and synthesized. A numerical method was applied to determine the activity and safety of newly synthesized compounds. In vitro studies on the evaluation of red blood cells revealed that compounds 19c (∆P(50) = 45.50 mmHg) and 19t (∆P(50) = 44.38 mmHg) improve the oxygen-releasing property effectively compared to positive control efaproxiral (∆P(50) = 36.40 mmHg). Preliminary safety evaluation revealed that 19c exhibited no cytotoxicity towards HEK293 and U87MG cells, while 19t was cytotoxic toward both cells with no selectivity. An in vivo activity assay confirmed that 19c exhibited a radiosensitization effect on orthotopically transplanted GB in mouse brains. Moreover, a pharmacokinetic study in rats showed that 19c was orally available.
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spelling pubmed-90245232022-04-23 Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation Zhang, Hongquan Wen, Chunxi Li, Bingting Yan, Xinlin Xu, Yangrong Guo, Jialin Hou, Shi Chang, Jiajia Li, Song Xiao, Junhai Molecules Article Radiotherapy is a vital approach for brain tumor treatment. The standard treatment for glioblastoma (GB) is maximal surgical resection combined with radiotherapy and chemotherapy. However, the non-sensitivity of tumor cells in the hypoxic area of solid tumors to radiotherapy may cause radioresistance. Therefore, radiotherapy sensitizers that increase the oxygen concentration within the tumor are promising for increasing the effectiveness of radiation. Inspired by hemoglobin allosteric oxygen release regulators, a series of novel phenoxyacetic acid analogues were designed and synthesized. A numerical method was applied to determine the activity and safety of newly synthesized compounds. In vitro studies on the evaluation of red blood cells revealed that compounds 19c (∆P(50) = 45.50 mmHg) and 19t (∆P(50) = 44.38 mmHg) improve the oxygen-releasing property effectively compared to positive control efaproxiral (∆P(50) = 36.40 mmHg). Preliminary safety evaluation revealed that 19c exhibited no cytotoxicity towards HEK293 and U87MG cells, while 19t was cytotoxic toward both cells with no selectivity. An in vivo activity assay confirmed that 19c exhibited a radiosensitization effect on orthotopically transplanted GB in mouse brains. Moreover, a pharmacokinetic study in rats showed that 19c was orally available. MDPI 2022-04-09 /pmc/articles/PMC9024523/ /pubmed/35458626 http://dx.doi.org/10.3390/molecules27082428 Text en © 2022 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
Zhang, Hongquan
Wen, Chunxi
Li, Bingting
Yan, Xinlin
Xu, Yangrong
Guo, Jialin
Hou, Shi
Chang, Jiajia
Li, Song
Xiao, Junhai
Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation
title Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation
title_full Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation
title_fullStr Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation
title_full_unstemmed Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation
title_short Phenoxyaromatic Acid Analogues as Novel Radiotherapy Sensitizers: Design, Synthesis and Biological Evaluation
title_sort phenoxyaromatic acid analogues as novel radiotherapy sensitizers: design, synthesis and biological evaluation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9024523/
https://www.ncbi.nlm.nih.gov/pubmed/35458626
http://dx.doi.org/10.3390/molecules27082428
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