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转录共激活因子 ALL1-融合基因来自染色体 9,同时维持肝癌的耐缺氧和代谢优势。

The Transcriptional Coactivator, ALL1-Fused Gene From Chromosome 9, Simultaneously Sustains Hypoxia Tolerance and Metabolic Advantages in Liver Cancer.

机构信息

Precise Genome Engineering Center, School of Life Sciences, Guangzhou University, Guangzhou, China.

CAS Key Laboratory of Tissue Microenvironment and Tumor, Institute of Nutrition and Health Sciences, Chinese Academy of Sciences, University of Chinese Academy of Sciences, Shanghai, China.

出版信息

Hepatology. 2021 Oct;74(4):1952-1970. doi: 10.1002/hep.31870. Epub 2021 Aug 10.

Abstract

BACKGROUND AND AIMS

Proteins that recognize epigenetic modifications function as mediators to interpret epigenetic codes. Hypoxia response and metabolic rewiring are two major events during cancer progression. However, whether and how the epigenetic regulator integrates hypoxia response and metabolism together remain open for study.

APPROACH AND RESULTS

We data mined the clinical association of 33 histone lysine acetylation reader proteins with liver cancer and found that ALL1-fused gene from chromosome 9 (AF9) is up-regulated in cancer and correlates with tumor stage and poor prognosis. Conditional deletion of Af9 in mouse liver resulted in decreased tumor formation induced by c-MET proto-oncogene/β-catenin. Loss of AF9 heavily impaired cell proliferation and completely blocked solid tumor formation. We further discovered that AF9 formed a positive feedback circuit with hypoxia-inducible factor 1 alpha (HIF1α) and also stabilized MYC proto-oncogene (cMyc). Mechanically, AF9 interacted with HIF1α and targeted HIF1A promoter whereas AF9 recognized cMyc acetylation at K148, protected cMyc phosphorylation at S62, and then stabilized cMyc, which, in turn, up-regulates phosphofructokinase, platelet expression. Otherwise, knockout of Af9 in mouse hepatocytes increased the infiltration of CD8 T cells, which is linked to the down-regulation of lactate dehydrogenase A.

CONCLUSIONS

AF9 is up-regulated to promote gene expression of hypoxia tolerance and glycolysis by simultaneously forming a complex with HIF1α and recognizing acetylated cMyc. Our results establish the oncogenic role of AF9 in human liver cancer, which could be a potential target for designing drugs against liver cancer.

摘要

背景和目的

识别表观遗传修饰的蛋白质作为解释表观遗传密码的介质。缺氧反应和代谢重编程是癌症进展过程中的两个主要事件。然而,表观遗传调节剂是否以及如何将缺氧反应和代谢整合在一起仍然有待研究。

方法和结果

我们对 33 种组蛋白赖氨酸乙酰化阅读蛋白与肝癌的临床关联进行了数据挖掘,发现来自染色体 9 的 ALL1 融合基因(AF9)在癌症中上调,并与肿瘤分期和预后不良相关。在小鼠肝脏中条件性缺失 Af9 会导致 c-MET 原癌基因/β-catenin 诱导的肿瘤形成减少。AF9 的缺失严重抑制了细胞增殖,并完全阻止了实体瘤的形成。我们进一步发现,AF9 与缺氧诱导因子 1α(HIF1α)形成正反馈回路,也稳定了 MYC 原癌基因(cMyc)。在机制上,AF9 与 HIF1α相互作用并靶向 HIF1A 启动子,而 AF9 识别 cMyc 在 K148 的乙酰化,保护 cMyc 在 S62 的磷酸化,然后稳定 cMyc,从而上调磷酸果糖激酶、血小板表达。否则,在小鼠肝细胞中敲除 Af9 会增加 CD8 T 细胞的浸润,这与乳酸脱氢酶 A 的下调有关。

结论

AF9 的上调通过与 HIF1α 形成复合物并识别乙酰化的 cMyc 来促进缺氧耐受和糖酵解的基因表达。我们的研究结果确立了 AF9 在人类肝癌中的致癌作用,这可能是设计针对肝癌药物的潜在靶点。

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