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A network-based analysis of ischemic stroke using parallel microRNA-mRNA expression profiles

机译:基于网络的缺血性卒中分析,使用平行的microRNA-mRNA表达谱

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Ischemic stroke is one of the leading causes of death and disability worldwide with inflammatory-immune responses in blood and brain damage. To analyze the severity of ischemic stroke, many studies were performed to find biomarkers based on samples from animal brain tissue models. In this work, we used parallel microRNA-mRNA expression profile from rat brain tissues to construct a network based on negative correlation calculation. PageRank algorithm was used to calculate the importance of network nodes. 14 genes were chosen as featured biomarkers. Results showed these genes were significant on biological levels which indicated us that the biomarkers chosen based on animal models may be helpful in stroke diagnosis, etiology and pathogenesis, thus guiding acute treatment and development of new treatments in the future.
机译:缺血中风是全世界死亡和残疾的主要原因之一,具有血液和脑损伤的炎症性免疫反应。为了分析缺血性卒中的严重程度,进行许多研究以基于来自动物组织模型的样品来寻找生物标志物。在这项工作中,我们使用了来自大鼠脑组织的并联MicroRNA-mRNA表达谱来构建基于负相关计算的网络。 PageRank算法用于计算网络节点的重要性。选择14个基因作为特色生物标志物。结果表明,这些基因对生物水平显着显着,这表明基于动物模型所选择的生物标志物可能有助于中风诊断,病因和发病机制,从而引导未来新治疗的急性治疗和发展。

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