Institute of Translational Medicine, Shanghai General Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 201620, China.
Shanghai Key Laboratory of Regulatory Biology, Institute of Biomedical Sciences, East China Normal University, Shanghai 200241, China.
Nat Commun. 2016 Aug 11;7:12497. doi: 10.1038/ncomms12497.
Maintenance of energy homeostasis is essential for cell survival. Here, we report that the ATP- and ubiquitin-independent REGγ-proteasome system plays a role in maintaining energy homeostasis and cell survival during energy starvation via repressing rDNA transcription, a major intracellular energy-consuming process. Mechanistically, REGγ-proteasome limits cellular rDNA transcription and energy consumption by targeting the rDNA transcription activator SirT7 for ubiquitin-independent degradation under normal conditions. Moreover, energy starvation induces an AMPK-directed SirT7 phosphorylation and subsequent REGγ-dependent SirT7 subcellular redistribution and degradation, thereby further reducing rDNA transcription to save energy to overcome cell death. Energy starvation is a promising strategy for cancer therapy. Our report also shows that REGγ knockdown markedly improves the anti-tumour activity of energy metabolism inhibitors in mice. Our results underscore a control mechanism for an ubiquitin-independent process in maintaining energy homeostasis and cell viability under starvation conditions, suggesting that REGγ-proteasome inhibition has a potential to provide tumour-starving benefits.
维持能量平衡对于细胞存活至关重要。在这里,我们报告说,ATP 和泛素非依赖性 REGγ-蛋白酶体系统通过抑制 rDNA 转录(一种主要的细胞内耗能过程),在能量饥饿期间发挥作用,以维持能量平衡和细胞存活。在机制上,REGγ-蛋白酶体通过靶向 rDNA 转录激活因子 SirT7 进行泛素非依赖性降解,在正常条件下限制细胞 rDNA 转录和能量消耗。此外,能量饥饿诱导 AMPK 介导的 SirT7 磷酸化,随后 REGγ 依赖性 SirT7 亚细胞重分布和降解,从而进一步降低 rDNA 转录以节省能量来克服细胞死亡。能量饥饿是癌症治疗的一种有前途的策略。我们的报告还表明,REGγ 敲低显著提高了能量代谢抑制剂在小鼠中的抗肿瘤活性。我们的研究结果强调了在饥饿条件下维持能量平衡和细胞活力的非泛素依赖性过程的控制机制,表明 REGγ-蛋白酶体抑制具有提供肿瘤饥饿益处的潜力。