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Identification and functional analysis of differentially expressed genes associated with cerebral ischemia/reperfusion injury through bioinformatics methods

机译:通过生物信息学方法对脑缺血/再灌注损伤相关的差异表达基因的鉴定和功能分析

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Cerebral ischemia/reperfusion (I/R) injury results in detrimental complications. However, little is known about the underlying molecular mechanisms involved in the reperfusion stage. The aim of the present study was to identify a gene expression profile associated with cerebral ischemia/reperfusion injury. The GSE23160 dataset, which comprised data from sham control samples and post-I/R injury brain tissues that were obtained using a middle cerebral artery occlusion (MCAO) model at 2, 8 and 24 h post-reperfusion, was downloaded from the Gene Expression Omnibus database. The differentially expressed genes (DEGs) in the MCAO samples compared with controls were screened using the GEO2R web tool. Gene Ontology (GO) analysis and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analysis for DEGs was performed using the online tool DAVID. Furthermore, a protein-protein interaction (PPI) network was constructed using the STRING database and Cytoscape software. In total, 32 DEGs at 2 h post-reperfusion, 39 DEGs at 8 h post-reperfusion and 91 DEGs at 24 h post-reperfusion were identified, while 15 DEGs were common among all three groups. GO analysis revealed that the DEGs at all three time-points were enriched in chemotaxis' and inflammatory response' terms, while KEGG pathway analysis demonstrated that DEGs were significantly enriched in the chemokine signaling pathway'. Furthermore, following PPI network construction, Cxcl1 was identified as the only hub gene that was common among all three time-points. In conclusion, the present study has demonstrated a global view of the potential molecular differences following cerebral I/R injury and may contribute to an improved understanding of the reperfusion stage, which may ultimately aid in the development of future clinical strategies.
机译:脑缺血/再灌注(I / R)损伤导致有害并发症。然而,关于再灌注阶段的潜在的分子机制很少。本研究的目的是鉴定与脑缺血/再灌注损伤相关的基因表达谱。从基因表达下下载使用2,8和24小时获得的假手动闭塞(MCAO)模型获得的假手术检测样品和I / R损伤脑组织的数据。从基因表达下载了在再灌注后2,8和24小时获得的omn​​ibus数据库。使用GEO2R腹板工具筛选与对照相比MCAO样品中的差异表达的基因(DEGS)。使用在线工具David进行基因本体(GO)分析和基因组(Kegg)途径(Kegg)途径分析。此外,使用串数据库和Cytoscape软件构建蛋白质 - 蛋白质相互作用(PPI)网络。在再灌注后2小时的总共32℃,再灌注后的39次,再灌注后的24小时再灌注91℃,而所有三组均常见。 GO分析显示,所有三个时间点的DEGS都富含趋化性'和炎症反应'术语,而Kegg途径分析表明DEG在趋化因子信号通路中显着富集。此外,在PPI网络构建之后,CXCL1被鉴定为唯一三个时间点常见的唯一集线基因。总之,本研究表明,脑I / R损伤后潜在的分子差异的全球视图,可能有助于改善对再灌注阶段的理解,这可能最终有助于开发未来的临床策略。

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