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Identification of novel diabetes impaired miRNA-transcription factor co-regulatory networks in bone marrow-derived Lin-/VEGF-R2+ endothelial progenitor cells

机译:骨髓源性Lin- / VEGF-R2 +内皮祖细胞中新型糖尿病受损的miRNA转录因子共调控网络的鉴定

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摘要

Endothelial progenitor cells (EPCs) are a group of rare cells that play an important role in the repair of injured vascular endothelial cells and assist in reperfusion of ischemic tissue. Decreased production and/or loss of function of EPCs are associated with diabetic vasculopathy. The molecular mechanisms by which diabetes impairs EPCs remain unclear. We conducted microarray experiments followed by integrative regulatory analysis on cells isolated from Akita diabetic mice (18-weeks after onset of diabetes) and age-matched non-diabetic controls. Two types of cells were isolated from mice bone marrow; Lin+ cells and Lin-/VEGF-R2+ EPCs. RNA was hybridized to mouse WG-6 V2 beadchips followed by comprehensive gene network analysis and computational validation of the obtained results. In total, 80 genes were exclusively DE between non-diabetic Lin-/VEGF-R2+ EPCs and diabetic Lin-/VEGF-R2+ EPCs, of which the 3 genes Clcnka, Pik3c2a, and Ptf1a are known to be associated with diabetic complications. Further analysis led to the establishment of a TF-miRNA mediated regulatory network specific to diabetic Lin-/VEGF-R2+ EPCs and to identify 11 central-hub TFs (Tbp, Ahr, Trp53, Gata1, Foxo1, Foxo4, Yy1, Max, Pparg, Myc, Cebpa), and 2 miRNAs (mir-139-5p, mir-709) that might act as putative genomic drivers of diabetic pathogenesis in Lin-/VEGF-R2+ EPCs. Moreover, we identified multiple TF-miRNA co-regulatory network motifs for which we validated their contribution to diabetic Lin-/VEGF-R2+ EPCs in terms of statistical significance and relevance to biological evidence. Our findings suggest that diabetic Lin-/VEGF-R2+ EPCs have specifically altered signature genes and miRNAs that render their capacity to proliferate and differentiate.
机译:内皮祖细胞(EPC)是一组稀有细胞,在修复受损的血管内皮细胞中起重要作用,并有助于缺血组织的再灌注。 EPC的生产减少和/或功能丧失与糖尿病性血管病有关。糖尿病损害EPC的分子机制尚不清楚。我们进行了微阵列实验,然后对从秋田糖尿病小鼠(糖尿病发作后18周)和年龄匹配的非糖尿病对照中分离的细胞进行了综合调控分析。从小鼠骨髓中分离出两种类型的细胞。 Lin + 细胞和Lin - / VEGF-R2 + EPC。将RNA杂交到小鼠WG-6 V2珠芯片上,然后进行全面的基因网络分析和所得结果的计算验证。共有80个基因在非糖尿病Lin - / VEGF-R2 + EPC与糖尿病Lin - / VEGF-R2 < sup> + EPC,其中3个基因Clcnka,Pik3c2a和Ptf1a与糖尿病并发症有关。进一步的分析导致建立了针对糖尿病Lin - / VEGF-R2 + EPC的TF-miRNA介导的调控网络,并鉴定了11个中心枢纽TF(Tbp, Ahr,Trp53,Gata1,Foxo1,Foxo4,Yy1,Max,Pparg,Myc,Cebpa)和2个miRNA(mir-139-5p, mir-709 )可能是Lin - / VEGF-R2 + EPC的糖尿病发病机制。此外,我们从统计学意义和相关性方面鉴定了多个TF-miRNA共同调控网络基序,从而验证了它们对糖尿病Lin - / VEGF-R2 + EPC的贡献。生物学证据。我们的发现表明,糖尿病人Lin - / VEGF-R2 + EPC特异改变了签名基因和miRNA,使其具有增殖和分化的能力。

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