CeMM, Research Center for Molecular Medicine of the Austrian Academy of Sciences, Vienna, Austria.
Department of Laboratory Medicine, Medical University of Vienna, Vienna, Austria.
Nat Metab. 2021 May;3(5):651-664. doi: 10.1038/s42255-021-00386-8. Epub 2021 May 10.
Metabolism negotiates cell-endogenous requirements of energy, nutrients and building blocks with the immediate environment to enable various processes, including growth and differentiation. While there is an increasing number of examples of crosstalk between metabolism and chromatin, few involve uptake of exogenous metabolites. Solute carriers (SLCs) represent the largest group of transporters in the human genome and are responsible for the transport of a wide variety of substrates, including nutrients and metabolites. We aimed to investigate the possible involvement of SLC-mediated solutes uptake and cellular metabolism in regulating cellular epigenetic states. Here, we perform a CRISPR-Cas9 transporter-focused genetic screen and a metabolic compound library screen for the regulation of BRD4-dependent chromatin states in human myeloid leukaemia cells. Intersection of the two orthogonal approaches reveal that loss of transporters involved with purine transport or inhibition of de novo purine synthesis lead to dysfunction of BRD4-dependent transcriptional regulation. Through mechanistic characterization of the metabolic circuitry, we elucidate the convergence of SLC-mediated purine uptake and de novo purine synthesis on BRD4-chromatin occupancy. Moreover, adenine-related metabolite supplementation effectively restores BRD4 functionality on purine impairment. Our study highlights the specific role of purine/adenine metabolism in modulating BRD4-dependent epigenetic states.
代谢物与周围环境协商以满足细胞内对能量、营养和构建模块的需求,从而实现各种过程,包括生长和分化。虽然代谢物与染色质之间的串扰的例子越来越多,但很少涉及外源性代谢物的摄取。溶质载体(SLCs)是人类基因组中最大的转运蛋白家族,负责运输各种底物,包括营养物和代谢物。我们旨在研究 SLC 介导的溶质摄取和细胞代谢可能在调节细胞表观遗传状态中的作用。在这里,我们针对人类髓性白血病细胞中 BRD4 依赖性染色质状态的调节进行了 CRISPR-Cas9 转运蛋白靶向基因敲除筛选和代谢化合物文库筛选。两种正交方法的交集表明,参与嘌呤转运的转运蛋白缺失或从头合成嘌呤的抑制会导致 BRD4 依赖性转录调控功能障碍。通过对代谢途径的机制特征进行分析,我们阐明了 SLC 介导的嘌呤摄取和从头嘌呤合成与 BRD4 染色质占有率的收敛。此外,腺嘌呤相关代谢物的补充可以有效地恢复嘌呤损伤时 BRD4 的功能。我们的研究强调了嘌呤/腺嘌呤代谢在调节 BRD4 依赖性表观遗传状态中的特定作用。