Xie Xiao-Jun, Hsu Fu-Ning, Gao Xinsheng, Xu Wu, Ni Jian-Quan, Xing Yue, Huang Liying, Hsiao Hao-Ching, Zheng Haiyan, Wang Chenguang, Zheng Yani, Xiaoli Alus M, Yang Fajun, Bondos Sarah E, Ji Jun-Yuan
Department of Molecular and Cellular Medicine, College of Medicine, Texas A&M University Health Science Center, College Station, Texas, United States of America.
Department of Chemistry, University of Louisiana at Lafayette, Lafayette, Los Angeles, United States of America.
PLoS Biol. 2015 Jul 29;13(7):e1002207. doi: 10.1371/journal.pbio.1002207. eCollection 2015 Jul.
The steroid hormone ecdysone and its receptor (EcR) play critical roles in orchestrating developmental transitions in arthropods. However, the mechanism by which EcR integrates nutritional and developmental cues to correctly activate transcription remains poorly understood. Here, we show that EcR-dependent transcription, and thus, developmental timing in Drosophila, is regulated by CDK8 and its regulatory partner Cyclin C (CycC), and the level of CDK8 is affected by nutrient availability. We observed that cdk8 and cycC mutants resemble EcR mutants and EcR-target genes are systematically down-regulated in both mutants. Indeed, the ability of the EcR-Ultraspiracle (USP) heterodimer to bind to polytene chromosomes and the promoters of EcR target genes is also diminished. Mass spectrometry analysis of proteins that co-immunoprecipitate with EcR and USP identified multiple Mediator subunits, including CDK8 and CycC. Consistently, CDK8-CycC interacts with EcR-USP in vivo; in particular, CDK8 and Med14 can directly interact with the AF1 domain of EcR. These results suggest that CDK8-CycC may serve as transcriptional cofactors for EcR-dependent transcription. During the larval-pupal transition, the levels of CDK8 protein positively correlate with EcR and USP levels, but inversely correlate with the activity of sterol regulatory element binding protein (SREBP), the master regulator of intracellular lipid homeostasis. Likewise, starvation of early third instar larvae precociously increases the levels of CDK8, EcR and USP, yet down-regulates SREBP activity. Conversely, refeeding the starved larvae strongly reduces CDK8 levels but increases SREBP activity. Importantly, these changes correlate with the timing for the larval-pupal transition. Taken together, these results suggest that CDK8-CycC links nutrient intake to developmental transitions (EcR activity) and fat metabolism (SREBP activity) during the larval-pupal transition.
类固醇激素蜕皮激素及其受体(EcR)在节肢动物发育转变的协调过程中发挥着关键作用。然而,EcR整合营养和发育信号以正确激活转录的机制仍知之甚少。在这里,我们表明,果蝇中依赖EcR的转录以及发育时间受CDK8及其调节伴侣细胞周期蛋白C(CycC)调控,并且CDK8的水平受营养可利用性的影响。我们观察到,cdk8和cycC突变体类似于EcR突变体,并且EcR靶基因在这两种突变体中均系统性下调。实际上,EcR - 超气门蛋白(USP)异二聚体与多线染色体和EcR靶基因启动子结合的能力也减弱。对与EcR和USP共免疫沉淀的蛋白质进行质谱分析,鉴定出多个中介体亚基,包括CDK8和CycC。一致地,CDK8 - CycC在体内与EcR - USP相互作用;特别是,CDK8和Med14可以直接与EcR的AF1结构域相互作用。这些结果表明,CDK8 - CycC可能作为依赖EcR转录的转录辅因子。在幼虫 - 蛹转变期间,CDK8蛋白水平与EcR和USP水平呈正相关,但与细胞内脂质稳态的主要调节因子固醇调节元件结合蛋白(SREBP)的活性呈负相关。同样,早三龄幼虫饥饿会过早增加CDK8、EcR和USP的水平,但下调SREBP活性。相反,给饥饿幼虫重新喂食会强烈降低CDK8水平但增加SREBP活性。重要的是,这些变化与幼虫 - 蛹转变的时间相关。综上所述,这些结果表明,CDK8 - CycC在幼虫 - 蛹转变期间将营养摄入与发育转变(EcR活性)和脂肪代谢(SREBP活性)联系起来。