乙酰化
生物
组蛋白乙酰转移酶
组蛋白
组蛋白脱乙酰基酶
SAP30型
组蛋白乙酰转移酶
生物化学
HDAC4型
组蛋白H2A
HDAC11型
组蛋白甲基转移酶
组蛋白脱乙酰基酶5
组蛋白脱乙酰基酶2
细胞生物学
基因
作者
Wen‐Chuan Hsieh,Benjamin M. Sutter,Holly Ruess,Spencer Barnes,Venkat S. Malladi,Benjamin P. Tu
出处
期刊:Molecular Cell
[Elsevier BV]
日期:2022-01-01
卷期号:82 (1): 60-74.e5
被引量:61
标识
DOI:10.1016/j.molcel.2021.12.015
摘要
Acetyl-CoA is a key intermediate situated at the intersection of many metabolic pathways. The reliance of histone acetylation on acetyl-CoA enables the coordination of gene expression with metabolic state. Abundant acetyl-CoA has been linked to the activation of genes involved in cell growth or tumorigenesis through histone acetylation. However, the role of histone acetylation in transcription under low levels of acetyl-CoA remains poorly understood. Here, we use a yeast starvation model to observe the dramatic alteration in the global occupancy of histone acetylation following carbon starvation; the location of histone acetylation marks shifts from growth-promoting genes to gluconeogenic and fat metabolism genes. This reallocation is mediated by both the histone deacetylase Rpd3p and the acetyltransferase Gcn5p, a component of the SAGA transcriptional coactivator. Our findings reveal an unexpected switch in the specificity of histone acetylation to promote pathways that generate acetyl-CoA for oxidation when acetyl-CoA is limiting.
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