Department of Genetics, Blavatnik Institute, Harvard Medical School, Boston, MA, 02115, USA.
Department of Cancer Biology, Dana-Farber Cancer Institute, Boston, MA, 02115, USA.
Nat Commun. 2023 Aug 15;14(1):4943. doi: 10.1038/s41467-023-40595-1.
Metabolic flexibility of muscle tissue describes the adaptive capacity to use different energy substrates according to their availability. The disruption of this ability associates with metabolic disease. Here, using a Drosophila model of systemic metabolic dysfunction triggered by yorkie-induced gut tumors, we show that the transcription factor REPTOR is an important regulator of energy metabolism in muscles. We present evidence that REPTOR is activated in muscles of adult flies with gut yorkie-tumors, where it modulates glucose metabolism. Further, in vivo studies indicate that sustained activity of REPTOR is sufficient in wildtype muscles to repress glycolysis and increase tricarboxylic acid (TCA) cycle metabolites. Consistent with the fly studies, higher levels of CREBRF, the mammalian ortholog of REPTOR, reduce glycolysis in mouse myotubes while promoting oxidative metabolism. Altogether, our results define a conserved function for REPTOR and CREBRF as key regulators of muscle energy metabolism.
肌肉组织的代谢灵活性描述了根据其可用性利用不同能量底物的适应能力。这种能力的破坏与代谢疾病有关。在这里,我们使用一种由 yorkie 诱导的肠道肿瘤引发的系统性代谢功能障碍的果蝇模型,表明转录因子 REPTOR 是肌肉中能量代谢的重要调节剂。我们提供的证据表明,在成年果蝇的具有肠道 yorkie 肿瘤的肌肉中,REPTOR 被激活,在那里它调节葡萄糖代谢。此外,体内研究表明,在野生型肌肉中持续激活 REPTOR 足以抑制糖酵解并增加三羧酸 (TCA) 循环代谢物。与果蝇研究一致的是,REPTOR 的哺乳动物同源物 CREBRF 的水平升高可降低小鼠肌管中的糖酵解作用,同时促进氧化代谢。总的来说,我们的研究结果定义了 REPTOR 和 CREBRF 的保守功能,作为肌肉能量代谢的关键调节剂。