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代谢重编程与肿瘤发生中的染色质修饰的信号转导

Metabolic Reprogramming and Signaling to Chromatin Modifications in Tumorigenesis.

机构信息

Department of Molecular Mechanisms of Disease, University of Zürich, Zürich, Switzerland.

出版信息

Adv Exp Med Biol. 2020;1219:225-241. doi: 10.1007/978-3-030-34025-4_12.

Abstract

Cellular proliferation relies on a high energetic status, replenished through nutrient intake, that leads to the production of biosynthetic material. A communication between the energetic levels and the control of gene expression is essential to engage in cell division. Multiple nutrient and metabolic sensing mechanisms in cells control transcriptional responses through cell signaling cascades that activate specific transcription factors associated with a concomitant regulation of the chromatin state. In addition to this canonical axis, gene expression could be directly influenced by the fluctuation of specific key intermediary metabolites of central metabolic pathways which are also donors or cofactors of histone and DNA modifications. This alternative axis represents a more direct connection between nutrients and the epigenome function. Cancer cells are highly energetically demanding to sustain proliferation. To reach their energetic demands, cancer cells rewire metabolic pathways. Recent discoveries show that perturbations of metabolic pathways in cancer cells have a direct impact on the epigenome. In this chapter, the interaction between metabolic driven changes of transcriptional programs in the context of tumorigenesis will be discussed.

摘要

细胞增殖依赖于高能状态,通过营养物质的摄入得到补充,从而产生生物合成物质。能量水平与基因表达控制之间的交流对于细胞分裂至关重要。细胞内的多种营养和代谢感应机制通过细胞信号级联控制转录反应,激活与染色质状态伴随调节相关的特定转录因子。除了这个典型的轴之外,基因表达也可以直接受到中央代谢途径中特定关键中间代谢物的波动影响,这些中间代谢物也是组蛋白和 DNA 修饰的供体或辅助因子。这个替代轴代表了营养物质与表观基因组功能之间更直接的联系。癌细胞需要大量的能量来维持增殖。为了满足其能量需求,癌细胞重新布线代谢途径。最近的发现表明,癌细胞代谢途径的扰动对表观基因组有直接影响。在这一章中,将讨论肿瘤发生过程中代谢驱动的转录程序变化之间的相互作用。

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