染色质
H3K4me3
细胞生物学
表观遗传学
生物
RNA聚合酶Ⅱ
转录调控
抄写(语言学)
调节器
磷脂酰肌醇
PI3K/AKT/mTOR通路
染色质重塑
基因表达调控
化学
自噬
组蛋白
激酶
主调节器
转录因子
核蛋白
组蛋白甲基转移酶
甲基转移酶
细胞核
发起人
作者
Nathaniel F. Henneman,Genki Kawamura,Ying Luo,Catia Oliveira Dias,Jiaqi Su,Arianna Segaloni,Ivan Nemazanyy,Samuel Le Cam,Calvin Rodrigues,Nicolas Kuperwasser,Nicolas Cagnard,Karim Hnia,Raphaël Margueron,Dominik Lutter,Takeaki Ozawa,Ganna Panasyuk
标识
DOI:10.1038/s41556-026-02030-7
摘要
Transcriptional remodelling during fasting ensures metabolic adaptation and provides health benefits across species. Although several regulators of fasting-induced transcription and chromatin are known, how nutrient levels directly influence RNA polymerase II (RNAPII) and epigenetic writers remains unclear. Here we show that lipid kinase class 3 phosphatidylinositol 3-kinase (PI3K-3), a master regulator of autophagy, also functions on chromatin as a co-activator of epigenetic writers to promote RNAPII transcription. PI3K-3 overlaps with transcriptionally engaged RNAPII phosphorylated at Ser5 and with Setd1a/COMPASS, the complex that deposits the activating H3K4me3 mark. Nuclear PI3K-3 interacts with RNAPII and Setd1a/COMPASS and promotes their chromatin binding. PI3K-3 loss reduces RNAPII-S5p and H3K4me3 at selected genes, whereas PI3K-3 overexpression co-activates p300/CBP and chromatin-targeted PI3K-3 increases H3K4me3. During starvation, PI3K-3 induces autophagy genes and drives fasted liver towards ketogenesis and lipid degradation. These findings link nutrient stress to chromatin-mediated transcriptional activation. Henneman et al. report an unexpected role for class 3 PI3K (PI3K-3) acting as a transcriptional co-activator during fasting. They show that nuclear PI3K-3 co-activates the methyltransferase Set1/COMPASS complex to promote H3K4me3 deposition.
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