首页> 外文期刊>Diabetes >Increased DNA Methyltransferase 3b (Dnmt3b)-Mediated CpG Island Methylation Stimulated by Oxidative Stress Inhibits Expression of a Gene Required for Neural Tube and Neural Crest Development in Diabetic Pregnancy
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Increased DNA Methyltransferase 3b (Dnmt3b)-Mediated CpG Island Methylation Stimulated by Oxidative Stress Inhibits Expression of a Gene Required for Neural Tube and Neural Crest Development in Diabetic Pregnancy

机译:氧化应激刺激增加的DNA甲基转移酶3b(Dnmt3b)介导的CpG岛甲基化抑制糖尿病妊娠中神经管和神经C发育所需基因的表达。

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摘要

Previous studies have shown that diabetic embryopathy results from impaired expression of genes that are required for formation of embryonic structures. We have focused on Pax3, a gene that is expressed in embryonic neuroepithelium and is required for neural tube closure. Pax3 expression is inhibited in embryos of diabetic mice due to hyperglycemia-induced oxidative stress. DNA methylation silences developmentally expressed genes before differentiation. We hypothesized that hypometh-ylation of Pax3 upon neuroepithelial differentiation may be inhibited by hyperglycemia-induced oxidative stress. We tested this using embryos of pregnant hyperglycemic mice and mouse embryonic stem cells (ESC). Methylation of a Pax3 CpG island decreased upon neurulation of embryos and formation of neuronal precursors from ESC. In ESC, this was inhibited by oxidative stress. Use of short hairpin RNA in ESC demonstrated that DNA methyltransferase 3b (Dnmt3b) was responsible for methylation and silencing of Pax3 before differentiation and by oxidative stress. Although expression of Dnmt3b was not affected by oxidative stress, DNA methyltransferase activity was increased. These results indicate that hyperglycemia-induced oxidative stress stimulates Dnmt3b activity, thereby inhibiting chromatin modifications necessary for induction of Pax3 expression during neurulation and thus providing a molecular mechanism for defects caused by Pax3 insufficiency in diabetic pregnancy.
机译:先前的研究表明,糖尿病性胚胎病是由于形成胚胎结构所需的基因表达受损而导致的。我们集中研究了Pax3,该基因在胚胎神经上皮细胞中表达,是神经管闭合所必需的。由于高血糖诱导的氧化应激,糖尿病小鼠胚胎中的Pax3表达受到抑制。 DNA甲基化使分化前的发育表达基因沉默。我们假设,高血糖诱导的氧化应激可能抑制Pax3在神经上皮细胞分化过程中的甲基化。我们使用怀孕的高血糖小鼠的胚胎和小鼠胚胎干细胞(ESC)对此进行了测试。 Pax3 CpG岛的甲基化减少胚胎的胚胎和从ESC的神经元前体的形成。在ESC中,这被氧化应激抑制。在ESC中使用短发夹RNA证明,DNA甲基转移酶3b(Dnmt3b)负责Pax3的甲基化和沉默之前的分化和氧化应激。尽管Dnmt3b的表达不受氧化应激的影响,但DNA甲基转移酶活性增加。这些结果表明,高血糖诱导的氧化应激刺激Dnmt3b活性,从而抑制了神经营养过程中诱导Pax3表达所必需的染色质修饰,从而为糖尿病妊娠中Pax3功能不足引起的缺陷提供了分子机制。

著录项

  • 来源
    《Diabetes》 |2014年第10期|3512-3522|共11页
  • 作者

    Dan Wei; Mary R. Loeken;

  • 作者单位

    Section on Islet Cell and Regenerative Biology, Joslin Diabetes Center, and Department of Medicine, Harvard Medical School, Boston, MA;

    Section on Islet Cell and Regenerative Biology, Joslin Diabetes Center, and Department of Medicine, Harvard Medical School, Boston, MA;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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