Institute of Biophysics of the Czech Academy of Sciences, Královopolská 135, 61200 Brno, Czech Republic.
Department of Food Chemistry and Biotechnology, Faculty of Chemistry, Brno University of Technology, Purkyňova 118, 61200 Brno, Czech Republic.
Biosci Rep. 2023 Dec 20;43(12). doi: 10.1042/BSR20231348.
Non-canonical secondary structures in DNA are increasingly being revealed as critical players in DNA metabolism, including modulating the accessibility and activity of promoters. These structures comprise the so-called G-quadruplexes (G4s) that are formed from sequences rich in guanine bases. Using a well-defined transcriptional reporter system, we sought to systematically investigate the impact of the presence of G4 structures on transcription in yeast Saccharomyces cerevisiae. To this aim, different G4 prone sequences were modeled to vary the chance of intramolecular G4 formation, analyzed in vitro by Thioflavin T binding test and circular dichroism and then placed at the yeast ADE2 locus on chromosome XV, downstream and adjacent to a P53 response element (RE) and upstream from a minimal CYC1 promoter and Luciferase 1 (LUC1) reporter gene in isogenic strains. While the minimal CYC1 promoter provides basal reporter activity, the P53 RE enables LUC1 transactivation under the control of P53 family proteins expressed under the inducible GAL1 promoter. Thus, the impact of the different G4 prone sequences on both basal and P53 family protein-dependent expression was measured after shifting cells onto galactose containing medium. The results showed that the presence of G4 prone sequences upstream of a yeast minimal promoter increased its basal activity proportionally to their potential to form intramolecular G4 structures; consequently, this feature, when present near the target binding site of P53 family transcription factors, can be exploited to regulate the transcriptional activity of P53, P63 and P73 proteins.
越来越多的研究表明,DNA 中的非规范二级结构是 DNA 代谢的关键参与者,包括调节启动子的可及性和活性。这些结构包括所谓的富含鸟嘌呤碱基的 G-四链体(G4s)。我们使用一个定义明确的转录报告系统,系统地研究了 G4 结构的存在对酵母酿酒酵母转录的影响。为此,我们构建了不同的易于形成 G4 的序列,以改变分子内 G4 形成的可能性,通过硫黄素 T 结合试验、圆二色性分析在体外进行分析,然后将其放置在酵母 ADE2 基因座上,位于 XV 号染色体上,紧邻 P53 反应元件(RE)下游和最小 CYC1 启动子上游,以及报告基因 Luciferase 1(LUC1)。虽然最小 CYC1 启动子提供基础报告活性,但 P53 RE 使 LUC1 在 P53 家族蛋白表达的诱导 GAL1 启动子控制下进行反式激活。因此,在将细胞转移到含半乳糖的培养基中后,测量了不同易于形成 G4 的序列对基础和 P53 家族蛋白依赖性表达的影响。结果表明,在酵母最小启动子上游存在易于形成 G4 的序列会与其形成分子内 G4 结构的潜力成比例地增加其基础活性;因此,当存在于 P53 家族转录因子的靶结合位点附近时,这一特征可用于调节 P53、P63 和 P73 蛋白的转录活性。