Lee M, Struhl K
Department Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts 02115, USA.
Mol Cell Biol. 1995 Oct;15(10):5461-9. doi: 10.1128/MCB.15.10.5461.
The TATA-binding protein (TBP) contains a concave surface that interacts specifically with TATA promoter elements and a convex surface that mediates protein-protein interactions with general and gene-specific transcription factors. Biochemical experiments suggest that interactions between activator proteins and TBP are important in stimulating transcription by the RNA polymerase II machinery. To gain insight into the role of TBP in mediating transcriptional activation in vivo, we implemented a genetic strategy in Saccharomyces cerevisiae that involved the use of a TBP derivative with altered specificity for TATA elements. By genetically screening a set of TBP mutant libraries that were biased to the convex surface that mediates protein-protein interactions, we identified TBP derivatives that are impaired in the response to three acidic activators (Gcn4, Gal4, and Ace1) but appear normal for constitutive polymerase II transcription. A genetic complementation assay indicates that the activation-defective phenotypes reflect specific functional properties of the TBP derivatives rather than an indirect effect on transcription. Surprisingly, three of the four activation-defective mutants affect residues that directly contact DNA. Moreover, all four mutants are defective for TATA element binding, but they interact normally with an acidic activation domain and TFIIB. In addition, we show that a subset of TBP derivatives with mutations on the DNA-binding surface of TBP are also compromised in their responses to acidic activators in vivo. These observations suggest that interactions at the TBP-TATA element interface can specifically affect the response to acidic activator proteins in vivo.
TATA结合蛋白(TBP)包含一个与TATA启动子元件特异性相互作用的凹面以及一个介导与通用转录因子和基因特异性转录因子进行蛋白质-蛋白质相互作用的凸面。生化实验表明,激活蛋白与TBP之间的相互作用对于RNA聚合酶II机制刺激转录很重要。为了深入了解TBP在体内介导转录激活中的作用,我们在酿酒酵母中实施了一种遗传策略,该策略涉及使用对TATA元件特异性改变的TBP衍生物。通过对一组偏向于介导蛋白质-蛋白质相互作用的凸面的TBP突变文库进行遗传筛选,我们鉴定出了对三种酸性激活剂(Gcn4、Gal4和Ace1)反应受损但对于组成型聚合酶II转录看起来正常的TBP衍生物。遗传互补分析表明,激活缺陷表型反映了TBP衍生物的特定功能特性,而不是对转录的间接影响。令人惊讶的是,四个激活缺陷突变体中的三个影响直接接触DNA的残基。此外,所有四个突变体在TATA元件结合方面都有缺陷,但它们与酸性激活域和TFIIB正常相互作用。另外,我们表明,在TBP的DNA结合表面具有突变的一部分TBP衍生物在体内对酸性激活剂的反应中也受到损害。这些观察结果表明,TBP-TATA元件界面处的相互作用可以在体内特异性地影响对酸性激活蛋白的反应。