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Screening feature genes of astrocytoma using a combined method of microarray gene expression profiling and bioinformatics analysis

机译:微阵列基因表达谱分析和生物信息学分析相结合的方法筛选星形细胞瘤的特征基因

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摘要

The aim of our study was to find feature genes associated with astrocytoma and correlative gene functions which can distinguish cancer tissue from adjacent non-tumor astrocyte tissues. Gene expression profile was downloaded from Gene Expression Omnibus database which included 8 astrocytoma tissues and 3 adjacent non-tumor astrocyte samples. The raw data were first transformed into probe-level data and the differentially expressed genes (DEGs) between tissues of patients with astrocytoma and normal specimen were identified using T-test in samr package of R. The Database for Annotation, Visualization and Integrated Discovery (DAVID) was applied to analyze the gene ontology (GO) enrichment on gene functions and the Kyoto Encyclopedia of Genes and Genomes (KEGG) pathways. Finally, corresponding protein-protein interaction (PPI) networks of DEGs was constructed using the Cytoscape based on the data collected from STRING online datasets. A total of 3072 genes, including 1799 up-regulated genes and 1273 down-regulated genes, were filtered as DEGs, and we learnt that the DEGs including AQP4, PMP2, SRARCL1 and SLC1A2CAMs etc and that AQP4 was most significantly related to cell osmotic pressure. Three feature genes in KEGG pathway are highly enriched in cancer specimen while two genes are in the normal tissues. The discovery of featured genes significantly related to the regulation of cell osmotic pressure, has the potential to use in clinic for diagnosis of astrocytoma in future. In addition, it has a great significance on studying mechanism, distinguishing normal and cancer tissues, and exploring new treatments for astrocytoma. However, further experiments were needed to confirm our result.
机译:我们研究的目的是寻找与星形细胞瘤和相关基因功能相关的特征基因,这些特征基因可以将癌组织与相邻的非肿瘤星形胶质细胞组织区分开。基因表达谱从Gene Expression Omnibus数据库下载,该数据库包括8个星形细胞瘤组织和3个相邻的非肿瘤星形胶质细胞样品。首先将原始数据转换为探针级数据,并使用R的samr包中的T-test鉴定星形细胞瘤患者和正常标本患者组织之间的差异表达基因(DEG)。注释,可视化和集成发现数据库(大卫(DAVID)被用来分析基因本体(GO)在基因功能上的富集以及《京都基因与基因组百科全书》(KEGG)途径。最后,根据从STRING在线数据集中收集的数据,使用Cytoscape构建了相应的DEG蛋白质-蛋白质相互作用(PPI)网络。总共筛选了3072个基因,其中包括1799个上调基因和1273个下调基因作为DEG,我们了解到DEG包括AQP4,PMP2,SRARCL1和SLC1A2CAMs等,而AQP4与细胞渗透压的关系最为明显。 KEGG通路中的三个特征基因在癌症样本中高度富集,而两个基因在正常组织中。与细胞渗透压的调节显着相关的特征基因的发现,有可能在将来用于临床诊断星形细胞瘤。此外,它对于研究机制,区分正常组织和癌组织以及探索星形细胞瘤的新疗法具有重要意义。但是,需要进一步的实验来确认我们的结果。

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