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代谢调控的转录组。

Metabolic Regulation of the Epitranscriptome.

机构信息

Chemical Biology Laboratory , National Cancer Institute , Frederick , Maryland 21702 , United States.

Laboratory of Cell Biology , National Cancer Institute , Bethesda , Maryland 20892 , United States.

出版信息

ACS Chem Biol. 2019 Mar 15;14(3):316-324. doi: 10.1021/acschembio.8b00951. Epub 2019 Feb 1.

Abstract

An emergent theme in cancer biology is that dysregulated energy metabolism may directly influence oncogenic gene expression. This is due to the fact that many enzymes involved in gene regulation use cofactors derived from primary metabolism, including acetyl-CoA,  S-adenosylmethionine, and 2-ketoglutarate. While this phenomenon was first studied through the prism of histone and DNA modifications (the epigenome), recent work indicates metabolism can also impact gene regulation by disrupting the balance of RNA post-transcriptional modifications (the epitranscriptome). Here we review recent studies that explore how metabolic regulation of writers and erasers of the epitranscriptome (FTO, TET2, NAT10, MTO1, and METTL16) helps shape gene expression through three distinct mechanisms: cofactor inhibition, cofactor depletion, and writer localization. Our brief survey underscores similarities and differences between the metabolic regulation of the epigenome and epitranscriptome, and highlights fertile ground for future investigation.

摘要

癌症生物学中的一个新兴主题是,失调的能量代谢可能会直接影响致癌基因的表达。这是因为许多参与基因调控的酶使用来自初级代谢的辅助因子,包括乙酰辅酶 A、S-腺苷甲硫氨酸和 2-酮戊二酸。虽然这种现象最初是通过组蛋白和 DNA 修饰(表观基因组)的角度进行研究的,但最近的工作表明,代谢也可以通过破坏 RNA 转录后修饰(表转录组)的平衡来影响基因调控。在这里,我们回顾了最近的研究,探讨了表转录组的写手和橡皮擦(FTO、TET2、NAT10、MTO1 和 METTL16)的代谢调节如何通过三种不同的机制帮助塑造基因表达:辅助因子抑制、辅助因子耗竭和写手定位。我们的简要调查强调了表观基因组和表转录组代谢调节之间的相似性和差异,并突出了未来研究的肥沃领域。

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