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Identification of Biomarkers for Osteosarcoma Based on Integration Strategy

BACKGROUND: Osteosarcoma (OS) is the most common primary malignant tumor of bone. The identification of novel biomarkers is necessary for the diagnosis and treatment of osteosarcoma. MATERIAL/METHODS: We obtained 11 paired fresh-frozen OS samples and normal controls from patients between September 2...

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Autores principales: Bao, Junjie, Song, Zhaona, Song, Chunyu, Wang, Yahui, Li, Wan, Mai, Wei, Shi, Qingyu, Yu, Hongwei, Ni, Linying, Liu, Yishu, Lu, Xiaolin, He, Chuan, Chen, Lina, Qu, Guofan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Scientific Literature, Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7101204/
https://www.ncbi.nlm.nih.gov/pubmed/32173717
http://dx.doi.org/10.12659/MSM.920803
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author Bao, Junjie
Song, Zhaona
Song, Chunyu
Wang, Yahui
Li, Wan
Mai, Wei
Shi, Qingyu
Yu, Hongwei
Ni, Linying
Liu, Yishu
Lu, Xiaolin
He, Chuan
Chen, Lina
Qu, Guofan
author_facet Bao, Junjie
Song, Zhaona
Song, Chunyu
Wang, Yahui
Li, Wan
Mai, Wei
Shi, Qingyu
Yu, Hongwei
Ni, Linying
Liu, Yishu
Lu, Xiaolin
He, Chuan
Chen, Lina
Qu, Guofan
author_sort Bao, Junjie
collection PubMed
description BACKGROUND: Osteosarcoma (OS) is the most common primary malignant tumor of bone. The identification of novel biomarkers is necessary for the diagnosis and treatment of osteosarcoma. MATERIAL/METHODS: We obtained 11 paired fresh-frozen OS samples and normal controls from patients between September 2015 and February 2017. We used an integration strategy that analyzes next-generation sequencing data by bioinformatics methods based on the pathogenesis of osteosarcoma. RESULTS: One susceptibility lncRNA and 7 susceptibility genes regulated by the lncRNA for osteosarcoma were effectively identified, and real-time PCR and clinical index ALP data were used to test their effectiveness. CONCLUSIONS: The results showed that the expression levels of the 7 genes were highly consistent in the training and test sample sets, especially between the expression value of the gene ALPL and the plasma detection value of its encoded protein ALP. In particular, both the expression of gene ALPL and the plasma detection values of protein ALP encoded by gene ALPL showed a high degree of consistency among different data types. The identified lncRNA and genes effectively classified the samples proved so that they could be used as potential biomarkers of osteosarcoma. Our strategy may also be helpful for the identification of biomarkers for other diseases.
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spelling pubmed-71012042020-03-30 Identification of Biomarkers for Osteosarcoma Based on Integration Strategy Bao, Junjie Song, Zhaona Song, Chunyu Wang, Yahui Li, Wan Mai, Wei Shi, Qingyu Yu, Hongwei Ni, Linying Liu, Yishu Lu, Xiaolin He, Chuan Chen, Lina Qu, Guofan Med Sci Monit Clinical Research BACKGROUND: Osteosarcoma (OS) is the most common primary malignant tumor of bone. The identification of novel biomarkers is necessary for the diagnosis and treatment of osteosarcoma. MATERIAL/METHODS: We obtained 11 paired fresh-frozen OS samples and normal controls from patients between September 2015 and February 2017. We used an integration strategy that analyzes next-generation sequencing data by bioinformatics methods based on the pathogenesis of osteosarcoma. RESULTS: One susceptibility lncRNA and 7 susceptibility genes regulated by the lncRNA for osteosarcoma were effectively identified, and real-time PCR and clinical index ALP data were used to test their effectiveness. CONCLUSIONS: The results showed that the expression levels of the 7 genes were highly consistent in the training and test sample sets, especially between the expression value of the gene ALPL and the plasma detection value of its encoded protein ALP. In particular, both the expression of gene ALPL and the plasma detection values of protein ALP encoded by gene ALPL showed a high degree of consistency among different data types. The identified lncRNA and genes effectively classified the samples proved so that they could be used as potential biomarkers of osteosarcoma. Our strategy may also be helpful for the identification of biomarkers for other diseases. International Scientific Literature, Inc. 2020-03-16 /pmc/articles/PMC7101204/ /pubmed/32173717 http://dx.doi.org/10.12659/MSM.920803 Text en © Med Sci Monit, 2020 This work is licensed under Creative Common Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0 (https://creativecommons.org/licenses/by-nc-nd/4.0/) )
spellingShingle Clinical Research
Bao, Junjie
Song, Zhaona
Song, Chunyu
Wang, Yahui
Li, Wan
Mai, Wei
Shi, Qingyu
Yu, Hongwei
Ni, Linying
Liu, Yishu
Lu, Xiaolin
He, Chuan
Chen, Lina
Qu, Guofan
Identification of Biomarkers for Osteosarcoma Based on Integration Strategy
title Identification of Biomarkers for Osteosarcoma Based on Integration Strategy
title_full Identification of Biomarkers for Osteosarcoma Based on Integration Strategy
title_fullStr Identification of Biomarkers for Osteosarcoma Based on Integration Strategy
title_full_unstemmed Identification of Biomarkers for Osteosarcoma Based on Integration Strategy
title_short Identification of Biomarkers for Osteosarcoma Based on Integration Strategy
title_sort identification of biomarkers for osteosarcoma based on integration strategy
topic Clinical Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7101204/
https://www.ncbi.nlm.nih.gov/pubmed/32173717
http://dx.doi.org/10.12659/MSM.920803
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