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miR-126a-5p-Dbp and miR-31a-Crot/Mrpl4 interaction pairs crucial for the development of hypertension and stroke

机译:miR-126a-5p-Dbp和miR-31a-Crot / Mrpl4相互作用对对高血压和中风的发展至关重要

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摘要

The present study aimed to integrate the mRNA and microRNA (miRNA) expression profiles of spontaneously hypertensive rats (SHR rats) and stroke-prone spontaneously hypertensive rats (SHRSP rats) to screen for potential therapeutic targets for hypertension and stroke. The datasets , , and were collected from the Gene Expression Omnibus (GEO) database to screen differentially expressed genes (DEGs). The dataset was obtained to analyze differentially expressed miRNAs (DEMs). The DEGs and DEMs were identified between SHR (or SHRSP) rats and normotensive Wistar-Kyoto (WKY) rats using the Linear Models for Microarray (limma) data method. Venn diagrams were used to show the SHR-specific, SHRSP-specific and SHR-SHRSP shared DEGs and DEMs, and these were utilized to construct the protein-protein interaction (PPI) and miRNA-mRNA regulatory networks. The Database for Annotation, Visualization and Integrated Discovery (DAVID) was used to explore the function of the genes. Subsequently, the connectivity Map (CMAP) database was searched to identify small-molecule drugs. Comparisons between the -- merged and datasets identified 2 SHR-specific, 8 SHRSP-specific and 15 SHR-SHRSP shared DEGs. Function enrichment analysis showed that SHRSP-specific D-box binding PAR bZIP transcription factor (Dbp) was associated with circadian rhythm, and SHR-SHRSP shared carnitine O-octanoyltransferase (Crot) was involved in fatty acid metabolic processes or the inflammatory response via interacting with epoxide hydrolase 2 (EPHX2). SHR-SHRSP shared mitochondrial ribosomal protein L4 (Mrpl4) may exert roles by interacting with the threonine-tRNA ligase, TARS2. The miRNA regulatory network predicted that upregulated Dbp could be regulated by rno-miR-126a-5p, whereas downregulated Crot and Mrpl4 could be modulated by rno-miR-31a. The CMAP database predicted that small-molecule drugs, including botulin, Gly-His-Lys, and podophyllotoxin, may possess therapeutic potential. In conclusion, the present study has identified Dbp, Crot and Mrpl4 as potential targets for the treatment of hypertension and stroke. Furthermore, the expression of these genes may be reversed by the above miRNAs or drugs.
机译:本研究旨在整合自发性高血压大鼠(SHR大鼠)和中风倾向性自发性高血压大鼠(SHRSP大鼠)的mRNA和microRNA(miRNA)表达谱,以筛选高血压和中风的潜在治疗靶标。数据集和从基因表达综合(GEO)数据库中收集,以筛选差异表达基因(DEG)。获得该数据集以分析差异表达的miRNA(DEM)。使用线性微阵列模型(limma)数据方法,在SHR(或SHRSP)大鼠和血压正常的Wistar-Kyoto(WKY)大鼠之间鉴定了DEG和DEM。使用维恩图显示SHR特异性,SHRSP特异性和SHR-SHRSP共享的DEG和DEM,并利用它们构建蛋白质-蛋白质相互作用(PPI)和miRNA-mRNA调控网络。使用注释,可视化和综合发现数据库(DAVID)来探索基因的功能。随后,搜索连接图(CMAP)数据库以识别小分子药物。合并后的数据集与数据集之间的比较确定了2个SHR特定,8个SHRSP特定和15个SHR-SHRSP共享DEG。功能富集分析表明,SHRSP特异的D-box结合PAR bZIP转录因子(Dbp)与昼夜节律有关,并且SHR-SHRSP共享肉碱O-辛酰基转移酶(Crot)通过相互作用参与脂肪酸代谢过程或炎症反应用环氧水解酶2(EPHX2)。 SHR-SHRSP共享的线粒体核糖体蛋白L4(Mrp14)可能通过与苏氨酸tRNA连接酶TARS2相互作用而发挥作用。 miRNA调控网络预测rno-miR-126a-5p可以上调Dbp,而rno-miR-31a可以下调Crot和Mrpl4。 CMAP数据库预测,包括肉毒杆菌素,Gly-His-Lys和鬼臼毒素在内的小分子药物可能具有治疗潜力。总之,本研究确定了Dbp,Crot和Mrpl4作为治疗高血压和中风的潜在靶标。此外,这些基因的表达可以被上述miRNA或药物逆转。

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