通过NAD+依赖的去乙酰化改变代谢程序细胞身份。

Robert A Bone,Molly P Lowndes,Silvia Raineri,Alba R Riveiro,Sarah L Lundregan,Morten Dall,Karolina Sulek,Jose A H Romero,Luna Malzard,Sandra Koigi,Indra J Heckenbach,Victor Solis-Mezarino,Moritz Völker-Albert,Catherine G Vasilopoulou,Florian Meier,Ala Trusina,Matthias Mann,Michael L Nielsen,Jonas T Treebak,Joshua M Brickman
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引用次数: 0

摘要

细胞根据潜在的基因调控网络改变其代谢谱,但代谢的改变如何编码特定的转录指令?在这里,我们表明,强迫胚胎干细胞(ESCs)的代谢变化促进了发育身份,更接近培养中早期哺乳动物囊胚的内细胞团(ICM)。这种细胞特性的转变取决于ESC培养基中d -葡萄糖被d -半乳糖取代所引发的糖酵解抑制和氧化磷酸化(OXPHOS)的刺激。增强的OXPHOS反过来激活NAD +依赖性Sirtuin家族的去乙酰化酶,导致组蛋白和关键转录因子的去乙酰化,从而集中增强子活性,同时减少转录噪声,从而导致ESC表型显著增强。利用与OXPHOS偶联的NAD + /NADH辅酶作为编程谱系特异性转录的手段,为细胞如何应对环境变化提供了新的范例,并暗示细胞再生利用酶活性同时激活离散增强子集,同时沉默全基因组转录噪声。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Altering metabolism programs cell identity via NAD+-dependent deacetylation.
Cells change their metabolic profiles in response to underlying gene regulatory networks, but how can alterations in metabolism encode specific transcriptional instructions? Here, we show that forcing a metabolic change in embryonic stem cells (ESCs) promotes a developmental identity that better approximates the inner cell mass (ICM) of the early mammalian blastocyst in cultures. This shift in cellular identity depends on the inhibition of glycolysis and stimulation of oxidative phosphorylation (OXPHOS) triggered by the replacement of D-glucose by D-galactose in ESC media. Enhanced OXPHOS in turn activates NAD + -dependent deacetylases of the Sirtuin family, resulting in the deacetylation of histones and key transcription factors to focus enhancer activity while reducing transcriptional noise, which results in a robustly enhanced ESC phenotype. This exploitation of a NAD + /NADH coenzyme coupled to OXPHOS as a means of programming lineage-specific transcription suggests new paradigms for how cells respond to alterations in their environment, and implies cellular rejuvenation exploits enzymatic activities for simultaneous activation of a discrete enhancer set alongside silencing genome-wide transcriptional noise.
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