Department of Molecular Biology and Institute of Genetics and Genomics of Geneva (iGE3), University of Geneva, 30 quai Ernest-Ansermet, 1211 Geneva 4, Switzerland.
Nucleic Acids Res. 2020 Nov 18;48(20):11408-11420. doi: 10.1093/nar/gkaa852.
While expression of ribosomal protein genes (RPGs) in the budding yeast has been extensively studied, a longstanding enigma persists regarding their co-regulation under fluctuating growth conditions. Most RPG promoters display one of two distinct arrangements of a core set of transcription factors (TFs) and are further differentiated by the presence or absence of the HMGB protein Hmo1. However, a third group of promoters appears not to be bound by any of these proteins, raising the question of how the whole suite of genes is co-regulated. We demonstrate here that all RPGs are regulated by two distinct, but complementary mechanisms driven by the TFs Ifh1 and Sfp1, both of which are required for maximal expression in optimal conditions and coordinated downregulation upon stress. At the majority of RPG promoters, Ifh1-dependent regulation predominates, whereas Sfp1 plays the major role at all other genes. We also uncovered an unexpected protein homeostasis-dependent binding property of Hmo1 at RPG promoters. Finally, we show that the Ifh1 paralog Crf1, previously described as a transcriptional repressor, can act as a constitutive RPG activator. Our study provides a more complete picture of RPG regulation and may serve as a paradigm for unravelling RPG regulation in multicellular eukaryotes.
虽然在 budding yeast 中核糖体蛋白基因 (RPGs) 的表达已被广泛研究,但在波动的生长条件下它们的共同调控仍然是一个长期存在的谜。大多数 RPG 启动子显示出核心转录因子 (TF) 集合的两种不同排列之一,并且进一步通过 HMGB 蛋白 Hmo1 的存在或不存在来区分。然而,第三组启动子似乎不受这些蛋白质中的任何一种的限制,这就提出了一个问题,即如何共同调控整套基因。我们在这里证明,所有的 RPG 都受到两种不同但互补的机制的调节,这些机制由 TF Ifh1 和 Sfp1 驱动,这两种 TF 在最佳条件下的最大表达和应激时的协调下调都是必需的。在大多数 RPG 启动子上,Ifh1 依赖性调节占主导地位,而 Sfp1 在所有其他基因上发挥主要作用。我们还发现了 Hmo1 在 RPG 启动子上的一种出乎意料的蛋白质平衡依赖性结合特性。最后,我们表明,先前被描述为转录抑制剂的 Ifh1 同源物 Crf1 可以作为组成型 RPG 激活剂发挥作用。我们的研究提供了一个更完整的 RPG 调控图景,并可能成为揭示多细胞真核生物中 RPG 调控的范例。