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长链非编码RNA Meg3通过使Rad21、Smc3或Sin3α失活来调节小鼠β细胞中的Mafa表达。

Long Noncoding RNA Meg3 Regulates Mafa Expression in Mouse Beta Cells by Inactivating Rad21, Smc3 or Sin3α.

作者信息

Wang Ning, Zhu Yanan, Xie Min, Wang Lintao, Jin Feiyan, Li Yihui, Yuan Qingxin, De Wei

机构信息

Department of Biochemistry and Molecular Biology, Nanjing Medical University, Nanjing, China.

Department of Endocrinology, First Affiliated Hospital of Nanjing Medical University, Nanjing, China.

出版信息

Cell Physiol Biochem. 2018;45(5):2031-2043. doi: 10.1159/000487983. Epub 2018 Mar 6.

Abstract

BACKGROUND/AIMS: The main pathogenic mechanism of diabetes is a decrease in the number of islet beta cells or a decline in their function. Recent studies have shown that pancreatic long noncoding RNAs (lncRNAs) have a high degree of tissue specificity and may be involved in the maintenance of islet cells function and the development of diabetes. The aim of this study was to investigate the molecular regulatory mechanism of mouse maternal expressed gene 3 (Meg3) in insulin biosynthesis in pancreatic islets.

METHODS

Chromatin immunoprecipitation-quantitative polymerase chain reaction (qPCR) and RNA immunoprecipitation-qPCR were used to investigate the molecular mechanism of lncRNA Meg3 in insulin biosynthesis by regulating v-Maf musculoaponeurotic fibrosarcoma oncogene family, protein A (MafA), a mature beta cell marker in the MIN6 beta cell line. Further, the expression levels of Meg3, Ezh2, MafA, Rad21, Smc3, and Sin3α were analyzed in vivo and in vitro by RT-PCR and western blotting.

RESULTS

Intranuclear lncRNA Meg3 can bind EZH2, a methyltransferase belonging to the Polycomb repressive complex-2, in pancreatic islet cells. In addition, knockdown of Ezh2 can also inhibit the expression of MafA and Ins2, while expression levels of Rad21, Smc3, and Sin3α are upregulated, by interfering with Ezh2 or Meg3 in pancreatic beta cells. Knockdown of Meg3 resulted in the loss of EZH2 binding and H3K27 trimethylation occupancy of Rad21, Smc3, and Sin3α promoter regions. The inhibition of Rad21, Smc3, or Sin3α, which directly act on the MafA promoter, leads to upregulated expression of MafA in both MIN6 cells and mouse islets. Moreover, the synthesis and secretion of insulin were increased by inhibition of these transcription factors.

CONCLUSIONS

Pancreatic lncRNA Meg3 can epigenetically regulate the expression of Rad21, Smc3, and Sin3α via EZH2-driven H3K27 methylation. By inhibiting the expression of Rad21, Smc3, or Sin3α, Meg3 promotes the expression of MafA and affects the production of insulin.

摘要

背景/目的:糖尿病的主要致病机制是胰岛β细胞数量减少或其功能下降。最近的研究表明,胰腺长链非编码RNA(lncRNA)具有高度的组织特异性,可能参与胰岛细胞功能的维持和糖尿病的发生发展。本研究旨在探讨小鼠母源表达基因3(Meg3)在胰岛胰岛素生物合成中的分子调控机制。

方法

采用染色质免疫沉淀-定量聚合酶链反应(qPCR)和RNA免疫沉淀-qPCR技术,通过调节v-Maf肌腱膜纤维肉瘤癌基因家族蛋白A(MafA),研究lncRNA Meg3在MIN6β细胞系中胰岛素生物合成中的分子机制,MafA是一种成熟的β细胞标志物。此外,通过RT-PCR和蛋白质印迹法在体内和体外分析Meg3、Ezh2、MafA、Rad21、Smc3和Sin3α的表达水平。

结果

核内lncRNA Meg3可与胰岛细胞中属于多梳抑制复合物2的甲基转移酶EZH2结合。此外,在胰腺β细胞中干扰Ezh2或Meg3,敲低Ezh2也可抑制MafA和Ins2表达,同时上调Rad21、Smc3和Sin3α的表达水平。敲低Meg3导致EZH2与Rad21、Smc3和Sin3α启动子区域的结合丧失以及H3K27三甲基化占据减少。直接作用于MafA启动子的Rad21、Smc3或Sin3α的抑制导致MIN6细胞和小鼠胰岛中MafA表达上调。此外,抑制这些转录因子可增加胰岛素的合成和分泌。

结论

胰腺lncRNA Meg3可通过EZH2驱动的H3K27甲基化表观遗传调控Rad21、Smc3和Sin3α的表达。通过抑制Rad21、Smc3或Sin3α的表达,Meg3促进MafA的表达并影响胰岛素的产生。

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