Molecular Biology Interdepartmental Program, University of California, Los Angeles, Los Angeles, California.
Department of Molecular, Cell, and Developmental Biology, University of California, Los Angeles, Los Angeles, California.
Cancer Res. 2024 May 2;84(9):1382-1383. doi: 10.1158/0008-5472.CAN-24-0460.
Over the past decade, studies have increasingly shed light on a reciprocal relationship between cellular metabolism and cell fate, meaning that a cell's lineage both drives and is governed by its specific metabolic features. A recent study by Zhang and colleagues, published in Cell Metabolism, describes a novel metabolic-epigenetic regulatory axis that governs lineage identity in triple-negative breast cancer (TNBC). Among the key findings, the authors demonstrate that the metabolic enzyme pyruvate kinase M2 (PKM2) directly binds to the histone methyltransferase enhancer of zeste homolog 2 (EZH2) in the nucleus to silence expression of a set of genes that includes the mitochondrial carnitine transporter SLC16A9. Perturbation of this metabolic-epigenetic regulatory mechanism induces a metabolic shift away from glycolysis and toward fatty acid oxidation. The ensuing influx of carnitine facilitates the deposition of the activating epigenetic mark H3K27Ac onto the promoter of GATA3, driving a committed luminal lineage state. Importantly, this metabolic-epigenetic axis represents a potentially targetable vulnerability for the treatment of TNBC, a subtype that currently lacks effective therapeutic strategies. These findings lend further support for the paradigm shift underlying our understanding of cancer metabolism: that a cellular fuel source functions not only to provide energy but also to direct the epigenetic regulation of cell fate.
在过去的十年中,越来越多的研究揭示了细胞代谢与细胞命运之间的相互关系,这意味着细胞的谱系不仅由其特定的代谢特征驱动,也由其决定。最近,Zhang 及其同事在《Cell Metabolism》上发表的一项研究描述了一个新的代谢-表观遗传调控轴,该轴控制着三阴性乳腺癌(TNBC)中的谱系身份。在关键发现中,作者证明代谢酶丙酮酸激酶 M2(PKM2)直接在核内与组蛋白甲基转移酶增强子结合,沉默包括线粒体肉碱转运蛋白 SLC16A9 在内的一组基因的表达。这个代谢-表观遗传调控机制的破坏会诱导从糖酵解向脂肪酸氧化的代谢转变。随之而来的肉碱流入促进了激活的表观遗传标记 H3K27Ac 在 GATA3 启动子上的沉积,驱动了一个特定的管腔谱系状态。重要的是,这个代谢-表观遗传轴代表了治疗 TNBC 的一个潜在的可靶向弱点,而 TNBC 目前缺乏有效的治疗策略。这些发现进一步支持了我们对癌症代谢的理解的范式转变:即细胞燃料不仅提供能量,还能指导细胞命运的表观遗传调控。