Department of Hepatobiliary and Pancreatic Surgery, Affiliated Hospital of Nantong University, Nantong, 226001, China.
Research Center of Clinical Medicine, Affiliated Hospital of Nantong University, Nantong, 226001, China.
Stem Cell Res Ther. 2019 Feb 15;10(1):59. doi: 10.1186/s13287-019-1154-8.
The regulatory mechanism of insulin-producing cells (IPCs) differentiation from induced pluripotent stem cells (iPSCs) in vitro is very important in the phylogenetics of pancreatic islets, the molecular pathogenesis of diabetes, and the acquisition of high-quality pancreatic β-cells derived from stem cells for cell therapy.
miPSCs were induced for IPCs differentiation. miRNA microarray assays were performed by using total RNA from our iPCs-derived IPCs containing undifferentiated iPSCs and iPSCs-derived IPCSs at day 4, day 14, and day 21 during step 3 to screen the differentially expressed miRNAs (DEmiRNAs) related to IPCs differentiation, and putative target genes of DEmiRNAs were predicted by bioinformatics analysis. miR-690 was selected for further research, and MPCs were transfected by miR-690-agomir to confirm whether it was involved in the regulation of IPCs differentiation in iPSCs. Quantitative Real-Time PCR (qRT-PCR), Western blotting, and immunostaining assays were performed to examine the pancreatic function of IPCs at mRNA and protein level respectively. Flow cytometry and ELISA were performed to detect differentiation efficiency and insulin content and secretion from iPSCs-derived IPCs in response to stimulation at different concentration of glucose. The targeting of the 3'-untranslated region of Sox9 by miR-690 was examined by luciferase assay.
We found that miR-690 was expressed dynamically during IPCs differentiation according to the miRNA array results and that overexpression of miR-690 significantly impaired the maturation and insulinogenesis of IPCs derived from iPSCs both in vitro and in vivo. Bioinformatic prediction and mechanistic analysis revealed that miR-690 plays a pivotal role during the differentiation of IPCs by directly targeting the transcription factor sex-determining region Y (SRY)-box9. Furthermore, downstream experiments indicated that miR-690 is likely to act as an inactivated regulator of the Wnt signaling pathway in this process.
We discovered a previously unknown interaction between miR-690 and sox9 but also revealed a new regulatory signaling pathway of the miR-690/Sox9 axis during iPSCs-induced IPCs differentiation.
胰岛素生成细胞(IPCs)在体外从诱导多能干细胞(iPSCs)中分化的调控机制在胰腺胰岛发生、糖尿病分子发病机制以及获得高质量的干细胞衍生的胰腺β细胞用于细胞治疗中非常重要。
通过诱导 miPSC 分化为 IPCs。使用来自含有未分化 iPSCs 的 iPCs 衍生的 IPCs 和第 3 步中第 4 天、第 14 天和第 21 天的 iPSCs 衍生的 IPCs 的总 RNA 进行 miRNA 微阵列分析,筛选与 IPCs 分化相关的差异表达 miRNA(DEmiRNAs),并通过生物信息学分析预测 DEmiRNAs 的假定靶基因。选择 miR-690 进行进一步研究,并通过 miR-690-agonist 转染 MPCs,以确认其是否参与 iPSCs 中 IPCs 分化的调节。进行定量实时 PCR(qRT-PCR)、Western 印迹和免疫染色分析,分别在 mRNA 和蛋白水平上检测 IPCs 的胰腺功能。通过流式细胞术和 ELISA 检测不同浓度葡萄糖刺激下 iPSCs 衍生的 IPCs 的分化效率和胰岛素含量及分泌。通过荧光素酶测定法检测 Sox9 的 3'-非翻译区是否被 miR-690 靶向。
根据 miRNA 阵列结果,我们发现 miR-690 在 IPCs 分化过程中动态表达,并且 miR-690 的过表达显著损害了体内外 iPSCs 衍生的 IPCs 的成熟和胰岛素生成。生物信息学预测和机制分析表明,miR-690 通过直接靶向性别决定区 Y(SRY)-盒 9(Sox9)转录因子在 IPCs 分化中发挥关键作用。此外,下游实验表明,miR-690 可能在此过程中充当 Wnt 信号通路的失活调节剂。
我们发现了 miR-690 和 Sox9 之间以前未知的相互作用,但也揭示了 iPSCs 诱导的 IPCs 分化过程中 miR-690/Sox9 轴的新调节信号通路。