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首页> 外文期刊>Stem cells international >Bidirectional Transcriptome Analysis of Rat Bone Marrow-Derived Mesenchymal Stem Cells and Activated Microglia in an In Vitro Coculture System
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Bidirectional Transcriptome Analysis of Rat Bone Marrow-Derived Mesenchymal Stem Cells and Activated Microglia in an In Vitro Coculture System

机译:大鼠骨髓衍生间充质干细胞的双向转录组分析,体外培养系统中的活性微胶质

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Microglia contribute to the regulation of neuroinflammation and play an important role in the pathogenesis of brain diseases. Thus, regulation of neuroinflammation triggered by activated microglia in brain diseases has become a promising curative strategy. Bone marrow-derived mesenchymal stem cells (BM-MSCs) have been shown to have therapeutic effects, resulting from the regulation of inflammatory conditions in the brain. In this study, we investigated differential gene expression in rat BM-MSCs (rBM-MSCs) that were cocultured with lipopolysaccharide- (LPS-) stimulated primary rat microglia using microarray analysis and evaluated the functional relationships through Ingenuity Pathway Analysis (IPA). We also evaluated the effects of rBM-MSC on LPS-stimulated microglia using a reverse coculture system and the same conditions of the transcriptomic analysis. In the transcriptome of rBM-MSCs, 67 genes were differentially expressed, which were highly related with migration of cells, compared to control. The prediction of the gene network using IPA and experimental validation showed that LPS-stimulated primary rat microglia increase the migration of rBM-MSCs. Reversely, expression patterns of the transcriptome in LPS-stimulated primary rat microglia were changed when cocultured with rBM-MSCs. Our results showed that 65 genes were changed, which were highly related with inflammatory response, compared to absence of rBM-MSCs. In the same way with the aforementioned, the prediction of the gene network and experimental validation showed that rBM-MSCs decrease the inflammatory response of LPS-stimulated primary rat microglia. Our data indicate that LPS-stimulated microglia increase the migration of rBM-MSCs and that rBM-MSCs reduce the inflammatory activity in LPS-stimulated microglia. The results of this study show complex mechanisms underlying the interaction between rBM-MSCs and activated microglia and may be helpful for the development of stem cell-based strategies for brain diseases.
机译:微胶质植物有助于神经炎症的调节,并在脑病的发病机制中发挥重要作用。因此,脑病中活化的微胶质引发的神经引发的神经炎症的调节已成为一个有希望的治疗策略。骨髓衍生的间充质干细胞(BM-MSCs)已被证明具有治疗效果,由大脑中炎性病症的调节产生。在该研究中,我们研究了使用微阵列分析的脂多糖 - (LPS-)刺激的原代大鼠微胶质的大鼠BM-MSCs(RBM-MSCs)中的差异基因表达,并通过纯粹的途径分析(IPA)评估功能关系。我们还使用反向共培养系统和转录组分析的相同条件评估RBM-MSC对LPS刺激的微胶质的影响。在RBM-MSCs的转录组中,与对照相比,差异表达67个基因,其与细胞迁移高度相关。使用IPA和实验验证的基因网络预测显示,LPS刺激的原大鼠小胶质细胞增加了RBM-MSCs的迁移。随着RBM-MSCs与RBM-MSC共同化,改变了LPS刺激的原大鼠微胶质细胞中转录组的表达模式。我们的研究结果表明,与缺乏RBM-MSC的情况相比,改变了65个基因,其与炎症反应高度相关。以相同的方式与上述相同的方式,基因网络的预测和实验验证表明RBM-MSCs降低了LPS刺激的原代大鼠小胶质细胞的炎症反应。我们的数据表明,LPS刺激的小胶质细胞增加了RBM-MSCs的迁移,并且RBM-MSCs降低了LPS刺激的小胶质细胞中的炎症活性。该研究的结果显示了RBM-MSCs和活性小胶质细胞之间相互作用的复杂机制,可能有助于开发基于干细胞的脑病策略。

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