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Bioinformatics integrated analysis to investigate candidate biomarkers and associated metabolites in osteosarcoma.

Authors :
Wang, Jun
Gong, Mingzhi
Xiong, Zhenggang
Zhao, Yangyang
Xing, Deguo
Source :
Journal of Orthopaedic Surgery & Research; 7/5/2021, Vol. 16 Issue 1, p1-11, 11p
Publication Year :
2021

Abstract

Background: This study hoped to explore the potential biomarkers and associated metabolites during osteosarcoma (OS) progression based on bioinformatics integrated analysis. Methods: Gene expression profiles of GSE28424, including 19 human OS cell lines (OS group) and 4 human normal long bone tissue samples (control group), were downloaded. The differentially expressed genes (DEGs) in OS vs. control were investigated. The enrichment investigation was performed based on DEGs, followed by protein–protein interaction network analysis. Then, the feature genes associated with OS were explored, followed by survival analysis to reveal prognostic genes. The qRT-PCR assay was performed to test the expression of these genes. Finally, the OS-associated metabolites and disease-metabolic network were further investigated. Results: Totally, 357 DEGs were revealed between the OS vs. control groups. These DEGs, such as CXCL12, were mainly involved in functions like leukocyte migration. Then, totally, 38 feature genes were explored, of which 8 genes showed significant associations with the survival of patients. High expression of CXCL12, CEBPA, SPARCL1, CAT, TUBA1A, and ALDH1A1 was associated with longer survival time, while high expression of CFLAR and STC2 was associated with poor survival. Finally, a disease-metabolic network was constructed with 25 nodes including two disease-associated metabolites cyclophosphamide and bisphenol A (BPA). BPA showed interactions with multiple prognosis-related genes, such as CXCL12 and STC2. Conclusion: We identified 8 prognosis-related genes in OS. CXCL12 might participate in OS progression via leukocyte migration function. BPA might be an important metabolite interacting with multiple prognosis-related genes. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
1749799X
Volume :
16
Issue :
1
Database :
Complementary Index
Journal :
Journal of Orthopaedic Surgery & Research
Publication Type :
Academic Journal
Accession number :
151251759
Full Text :
https://doi.org/10.1186/s13018-021-02578-0