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Layers of regulation of cell-cycle gene expression in the budding yeast Saccharomyces cerevisiae

机译:调控发芽酵母中细胞周期基因表达的层次酿酒酵母

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摘要

In the budding yeast Saccharomyces cerevisiae, transcription factors (TFs) regulate the periodic expression of many genes during the cell cycle, including gene products required for progression through cell-cycle events. Experimental evidence coupled with quantitative models suggests that a network of interconnected TFs is capable of regulating periodic genes over the cell cycle. Importantly, these dynamical models were built on transcriptomics data and assumed that TF protein levels and activity are directly correlated with mRNA abundance. To ask whether TF transcripts match protein expression levels as cells progress through the cell cycle, we applied a multiplexed targeted mass spectrometry approach (parallel reaction monitoring) to synchronized populations of cells. We found that protein expression of many TFs and cell-cycle regulators closely followed their respective mRNA transcript dynamics in cycling wild-type cells. Discordant mRNA/protein expression dynamics was also observed for a subset of cell-cycle TFs and for proteins targeted for degradation by E3 ubiquitin ligase complexes such as SCF (Skp1/Cul1/F-box) and APC/C (anaphase-promoting complex/cyclosome). We further profiled mutant cells lacking B-type cyclin/CDK activity (clb1-6) where oscillations in ubiquitin ligase activity, cyclin/CDKs, and cell-cycle progression are halted. We found that a number of proteins were no longer periodically degraded in clb1-6 mutants compared with wild type, highlighting the importance of posttranscriptional regulation. Finally, the TF complexes responsible for activating G1/S transcription (SBF and MBF) were more constitutively expressed at the protein level than at periodic mRNA expression levels in both wild-type and mutant cells. This comprehensive investigation of cell-cycle regulators reveals that multiple layers of regulation (transcription, protein stability, and proteasome targeting) affect protein expression dynamics during the cell cycle.
机译:在出芽的酿酒酵母中,转录因子(TF)调节细胞周期中许多基因的周期性表达,包括通过细胞周期事件发展所需的基因产物。结合定量模型的实验证据表明,相互连接的TFs网络能够在细胞周期内调控周期基因。重要的是,这些动力学模型基于转录组学数据,并假定TF蛋白水平和活性与mRNA丰度直接相关。为了问问TF转录物是否随着细胞在细胞周期中的前进与蛋白质表达水平相匹配,我们对同步化细胞群体应用了多重靶向质谱方法(平行反应监测)。我们发现,在循环野生型细胞中,许多TF和细胞周期调节剂的蛋白质表达密切遵循它们各自的mRNA转录动力学。还观察到了一部分细胞周期TFs和靶向被E3泛素连接酶复合物(例如SCF(Skp1 / Cul1 / F-box)和APC / C(后期促进复合物/环状体)。我们进一步剖析了缺乏B型细胞周期蛋白/ CDK活性(clb1-6)的突变细胞,其中泛素连接酶活性,细胞周期蛋白/ CDKs和细胞周期进程的振荡被停止了。我们发现,与野生型相比,clb1-6突变体中的许多蛋白质不再定期降解,从而突出了转录后调控的重要性。最后,在野生型和突变型细胞中,负责激活G1 / S转录的TF复合物(SBF和MBF)在蛋白质水平上比在周期性mRNA表达水平上更具组成性表达。对细胞周期调节剂的全面研究表明,多层调节(转录,蛋白质稳定性和蛋白酶体靶向)会影响细胞周期中蛋白质表达的动态。

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