首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Stearoyl-CoA Desaturase 1 Activity Determines the Maintenance of DNMT1-Mediated DNA Methylation Patterns in Pancreatic β-Cells
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Stearoyl-CoA Desaturase 1 Activity Determines the Maintenance of DNMT1-Mediated DNA Methylation Patterns in Pancreatic β-Cells

机译:硬脂酰-CoA去饱和酶1活性决定在胰腺β细胞中维持DNMT1介导的DNA甲基化图案

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摘要

Metabolic stress, such as lipotoxicity, affects the DNA methylation profile in pancreatic β-cells and thus contributes to β-cell failure and the progression of type 2 diabetes (T2D). Stearoyl-CoA desaturase 1 (SCD1) is a rate-limiting enzyme that is involved in monounsaturated fatty acid synthesis, which protects pancreatic β-cells against lipotoxicity. The present study found that SCD1 is also required for the establishment and maintenance of DNA methylation patterns in β-cells. We showed that SCD1 inhibition/deficiency caused DNA hypomethylation and changed the methyl group distribution within chromosomes in β-cells. Lower levels of DNA methylation in SCD1-deficient β-cells were followed by lower levels of DNA methyltransferase 1 (DNMT1). We also found that the downregulation of SCD1 in pancreatic β-cells led to the activation of adenosine monophosphate-activated protein kinase (AMPK) and an increase in the activity of the NAD-dependent deacetylase sirtuin-1 (SIRT1). Furthermore, the physical association between DNMT1 and SIRT1 stimulated the deacetylation of DNMT1 under conditions of SCD1 inhibition/downregulation, suggesting a mechanism by which SCD1 exerts control over DNMT1. We also found that SCD1-deficient β-cells that were treated with compound c, an inhibitor of AMPK, were characterized by higher levels of both global DNA methylation and DNMT1 protein expression compared with untreated cells. Therefore, we found that activation of the AMPK/SIRT1 signaling pathway mediates the effect of SCD1 inhibition/deficiency on DNA methylation status in pancreatic β-cells. Altogether, these findings suggest that SCD1 is a gatekeeper that protects β-cells against the lipid-derived loss of DNA methylation and provide mechanistic insights into the mechanism by which SCD1 regulates DNA methylation patterns in β-cells and T2D-relevant tissues.
机译:代谢应力,例如脂毒性,影响胰腺β细胞中的DNA甲基化曲线,从而有助于β细胞衰竭和2型糖尿病(T2D)的进展。 Stearoyl-CoA去饱和酶1(SCD1)是参与单不饱和脂肪酸合成的速率限制酶,其保护胰腺β细胞免受脂毒性。本研究发现,SCD1也需要在β细胞中建立和维持DNA甲基化图案。我们表明,SCD1抑制/缺乏导致DNA低甲基化,并改变了β细胞中的染色体内的甲基分布。 SCD1缺陷β-细胞中的DNA甲基化水平降低,然后水平DNA甲基转移酶1(DNMT1)。我们还发现,胰腺β细胞中SCD1的下调导致腺苷一磷酸胺激活蛋白激酶(AMPK)的激活,并增加了NAD依赖性脱乙酰化酶Sirtuin-1(SIRT1)的活性。此外,DNMT1和SIRT1之间的物理关联在SCD1抑制/下调的条件下刺激DNMT1的脱乙酰化,表明SCD1对DNMT1施加控制的机制。我们还发现,用化合物C处理的SCD1缺陷型β-细胞AMPK的抑制剂,其特征在于全球DNA甲基化和DNMT1蛋白表达与未处理的细胞相比的较高水平。因此,我们发现AMPK / SIRT1信号通路的激活介导SCD1抑制/缺乏对胰腺β细胞DNA甲基化状态的影响。总之,这些研究结果表明,SCD1是保护β-细胞免受DNA甲基化的脂质衍生丧失的门守,并向SCD1调节β-细胞和T2D相关组织中DNA甲基化模式的机制提供机械洞察力。

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