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Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes

Pediatric glioblastoma (GBM) is a relatively rare brain tumor in children that has a dismal prognosis. Surgery followed by radiotherapy is the main treatment protocol used for older patients. The benefit of adjuvant chemotherapy is still limited due to a poor understanding of the underlying molecula...

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Autores principales: Alhajala, Hisham S., Nguyen, Ha S., Shabani, Saman, Best, Benjamin, Kaushal, Mayank, Al-Gizawiy, Mona M., Erin Ahn, Eun-Young, Knipstein, Jeffery A., Mirza, Shama, Schmainda, Kathleen M., Chitambar, Christopher R., Doan, Ninh B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6183347/
https://www.ncbi.nlm.nih.gov/pubmed/30344926
http://dx.doi.org/10.18632/oncotarget.26137
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author Alhajala, Hisham S.
Nguyen, Ha S.
Shabani, Saman
Best, Benjamin
Kaushal, Mayank
Al-Gizawiy, Mona M.
Erin Ahn, Eun-Young
Knipstein, Jeffery A.
Mirza, Shama
Schmainda, Kathleen M.
Chitambar, Christopher R.
Doan, Ninh B.
author_facet Alhajala, Hisham S.
Nguyen, Ha S.
Shabani, Saman
Best, Benjamin
Kaushal, Mayank
Al-Gizawiy, Mona M.
Erin Ahn, Eun-Young
Knipstein, Jeffery A.
Mirza, Shama
Schmainda, Kathleen M.
Chitambar, Christopher R.
Doan, Ninh B.
author_sort Alhajala, Hisham S.
collection PubMed
description Pediatric glioblastoma (GBM) is a relatively rare brain tumor in children that has a dismal prognosis. Surgery followed by radiotherapy is the main treatment protocol used for older patients. The benefit of adjuvant chemotherapy is still limited due to a poor understanding of the underlying molecular and genetic changes that occur with irradiation of the tumor. In this study, we performed total RNA sequencing on an established stable radioresistant pediatric GBM cell line to identify mRNA expression changes following radiation. The expression of many genes was altered in the radioresistant pediatric GBM model. These genes have never before been reported to be associated with the development of radioresistant GBM. In addition to exhibiting an accelerated growth rate, radioresistant GBM cells also have overexpression of the DNA synthesis-rate-limiting enzyme ribonucleotide reductase, and pro-cathepsin B. These newly identified genes should be concertedly studied to better understand their role in pediatric GBM recurrence and progression after radiation. It was observed that the changes in multiple biological pathways protected GBM cells against radiation and transformed them to a more malignant form. These changes emphasize the importance of developing a treatment regimen that consists of a multiple-agent cocktail that acts on multiple implicated pathways to effectively target irradiated pediatric GBM. An alternative to radiation or a novel therapy that targets differentially expressed genes, such as metalloproteases, growth factors, and oncogenes and aim to minimize oncogenic changes following radiation is necessary to improve recurrent GBM survival.
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spelling pubmed-61833472018-10-19 Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes Alhajala, Hisham S. Nguyen, Ha S. Shabani, Saman Best, Benjamin Kaushal, Mayank Al-Gizawiy, Mona M. Erin Ahn, Eun-Young Knipstein, Jeffery A. Mirza, Shama Schmainda, Kathleen M. Chitambar, Christopher R. Doan, Ninh B. Oncotarget Research Paper Pediatric glioblastoma (GBM) is a relatively rare brain tumor in children that has a dismal prognosis. Surgery followed by radiotherapy is the main treatment protocol used for older patients. The benefit of adjuvant chemotherapy is still limited due to a poor understanding of the underlying molecular and genetic changes that occur with irradiation of the tumor. In this study, we performed total RNA sequencing on an established stable radioresistant pediatric GBM cell line to identify mRNA expression changes following radiation. The expression of many genes was altered in the radioresistant pediatric GBM model. These genes have never before been reported to be associated with the development of radioresistant GBM. In addition to exhibiting an accelerated growth rate, radioresistant GBM cells also have overexpression of the DNA synthesis-rate-limiting enzyme ribonucleotide reductase, and pro-cathepsin B. These newly identified genes should be concertedly studied to better understand their role in pediatric GBM recurrence and progression after radiation. It was observed that the changes in multiple biological pathways protected GBM cells against radiation and transformed them to a more malignant form. These changes emphasize the importance of developing a treatment regimen that consists of a multiple-agent cocktail that acts on multiple implicated pathways to effectively target irradiated pediatric GBM. An alternative to radiation or a novel therapy that targets differentially expressed genes, such as metalloproteases, growth factors, and oncogenes and aim to minimize oncogenic changes following radiation is necessary to improve recurrent GBM survival. Impact Journals LLC 2018-09-25 /pmc/articles/PMC6183347/ /pubmed/30344926 http://dx.doi.org/10.18632/oncotarget.26137 Text en Copyright: © 2018 Alhajala et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/) 3.0 (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Alhajala, Hisham S.
Nguyen, Ha S.
Shabani, Saman
Best, Benjamin
Kaushal, Mayank
Al-Gizawiy, Mona M.
Erin Ahn, Eun-Young
Knipstein, Jeffery A.
Mirza, Shama
Schmainda, Kathleen M.
Chitambar, Christopher R.
Doan, Ninh B.
Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes
title Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes
title_full Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes
title_fullStr Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes
title_full_unstemmed Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes
title_short Irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes
title_sort irradiation of pediatric glioblastoma cells promotes radioresistance and enhances glioma malignancy via genome-wide transcriptome changes
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6183347/
https://www.ncbi.nlm.nih.gov/pubmed/30344926
http://dx.doi.org/10.18632/oncotarget.26137
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