甲基转移酶
癌症研究
肝细胞癌
组蛋白H3
生物
表观遗传学
下调和上调
酶
癌基因
化学
重编程
甲基化
组蛋白
丝氨酸
组蛋白甲基转移酶
酶激活剂
体内
串扰
代谢途径
代谢物
肿瘤进展
糖酵解
生物化学
细胞生物学
癌变
乙二醇
癌症
基因表达调控
索拉非尼
肝癌
DNA甲基化
生物合成
作者
Dongmei Gou,Rui Liu,Xiaoqun Shan,Haijun Deng,Chang Chen,Xiang Jin,Yi Liu,Qingzhu Gao,Zhi Li,Ailong Huang,Kai Wang,Ni Tang
摘要
Deciphering the crosstalk between metabolic reprogramming and epigenetic regulation is a promising strategy for cancer therapy. In this study, we discovered that the gluconeogenic enzyme PCK1 fueled the generation of S-adenosylmethionine (SAM) through the serine synthesis pathway. The methyltransferase SUV39H1 catalyzed SAM, which served as a methyl donor to support H3K9me3 modification, leading to the suppression of the oncogene S100A11. Mechanistically, PCK1 deficiency-induced oncogenic activation of S100A11 was due to its interaction with AKT1, which upregulated PI3K/AKT signaling. Intriguingly, the progression of hepatocellular carcinoma (HCC) driven by PCK1 deficiency was suppressed by SAM supplement or S100A11 KO in vivo and in vitro. These findings reveal the availability of the key metabolite SAM as a bridge connecting the gluconeogenic enzyme PCK1 and H3K9 trimethylation in attenuating HCC progression, thus suggesting a potential therapeutic strategy against HCC.
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