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研究酿酒酵母中Rox1对缺氧基因抑制作用的方法。

Approaches to the study of Rox1 repression of the hypoxic genes in the yeast Saccharomyces cerevisiae.

作者信息

Zitomer R S, Limbach M P, Rodriguez-Torres A M, Balasubramanian B, Deckert J, Snow P M

机构信息

Department of Biological Sciences, University at Albany/State University of New York 12222, USA.

出版信息

Methods. 1997 Mar;11(3):279-88. doi: 10.1006/meth.1996.0422.

Abstract

The yeast Saccharomyces cerevisiae is a facultative aerobe that responds to changes in oxygen tension by changing patterns of gene expression. One set of genes that responds to this environmental cue is the hypoxic genes. Oxygen levels are sensed by changes in heme biosynthesis, which controls the transcription of the ROX1 gene, encoding a protein that binds to the regulatory region of each hypoxic gene to repress transcription. Several experimental molecular and genetic approaches are described here to study Rox1 repression. Derepression of the hypoxic genes is rapid, and one model for such a response requires that Rox1 have a short half-life. This was demonstrated to be the case by immunoblotting using a c-myc epitope-tagged protein. Rox1 repression is mediated through the general repressors Ssn6 and Tup1. To explore possible interactions among these proteins, all three were expressed and partially purified using a baculovirus expression system and histidine-tagged proteins. The effect of Ssn6 and Tup1 on the formation of Rox1-DNA complexes was explored using these purified proteins by both electrophoretic mobility shift and DNase I protection assays. We found that Rox1 DNA-binding activity decayed rapidly and that Ssn6 could stabilize and restore lost activity. Finally, genetic selections are described for the isolation of loss-of-function mutations in Rox1. Also, schemes are proposed for the reversion of such mutations. These selections have been extended to genetic analyses of the TUP1 and SSN6 genes.

摘要

酿酒酵母是一种兼性需氧菌,它通过改变基因表达模式来响应氧张力的变化。一组对这种环境信号作出反应的基因是低氧基因。氧水平通过血红素生物合成的变化来感知,血红素生物合成控制ROX1基因的转录,ROX1基因编码一种与每个低氧基因的调控区域结合以抑制转录的蛋白质。本文描述了几种用于研究Rox1抑制作用的实验性分子和遗传学方法。低氧基因的去抑制作用迅速,一种针对这种反应的模型要求Rox1具有较短的半衰期。使用c-myc表位标签蛋白进行免疫印迹证明了情况确实如此。Rox1抑制作用是通过一般阻遏物Ssn6和Tup1介导的。为了探索这些蛋白质之间可能的相互作用,使用杆状病毒表达系统和组氨酸标签蛋白表达并部分纯化了所有三种蛋白质。通过电泳迁移率变动分析和DNase I保护分析,使用这些纯化的蛋白质探索了Ssn6和Tup1对Rox1-DNA复合物形成的影响。我们发现Rox1的DNA结合活性迅速衰减,并且Ssn6可以稳定并恢复丧失的活性。最后,描述了用于分离Rox1功能丧失突变的遗传筛选方法。此外,还提出了使此类突变回复的方案。这些筛选方法已扩展到对TUP1和SSN6基因的遗传分析。

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