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裂殖酵母铜感应转录因子Cuf1通过Ace1/Amt1样识别序列调控铜转运蛋白基因的表达。

The fission yeast copper-sensing transcription factor Cuf1 regulates the copper transporter gene expression through an Ace1/Amt1-like recognition sequence.

作者信息

Beaudoin J, Labbé S

机构信息

Département de Biochimie, Université de Sherbrooke, Sherbrooke, Québec, J1H 5N4, Canada.

出版信息

J Biol Chem. 2001 May 4;276(18):15472-80. doi: 10.1074/jbc.M011256200. Epub 2001 Jan 26.

DOI:10.1074/jbc.M011256200
PMID:11278870
Abstract

Transcriptional regulation of genes encoding critical components of copper transport is essential for copper homeostasis and growth in yeast. Analysis of regulatory regions in the promoter of the ctr4(+) copper transporter gene in fission yeast Schizosaccharomyces pombe reveals the identity of a conserved copper-signaling element (CuSE), which is recognized by the transcription factor Cuf1. We demonstrate that CuSE is necessary for transcriptional activation in response to copper deprivation conditions. Interestingly, the CuSE element bears a strong sequence similarity to the recognition site, denoted MRE (metal regulatory element), which is recognized by a distinct class of copper sensors required for copper detoxification, including Ace1 from Saccharomyces cerevisiae and Amt1 from Candida glabrata. When a consensus MRE from S. cerevisiae is introduced into S. pombe, transcription is induced by copper deprivation in a Cuf1-dependent manner, similar to regulation by Mac1, the nuclear sensor for regulating the expression of genes encoding components involved in copper transport in S. cerevisiae. UV-cross-linking experiments show that the Cuf1 protein directly binds the CuSE. These results demonstrate that the Cuf1 nutritional copper-sensing factor possesses a module that functions similarly to domains found in the Ace1/Amt1 class of metalloregulatory factors, which allows the protein to act through a closely related MRE-like sequence to regulate copper transport gene expression in S. pombe.

摘要

对酵母中铜转运关键成分进行基因转录调控对于铜稳态和生长至关重要。对裂殖酵母粟酒裂殖酵母中ctr4(+)铜转运蛋白基因启动子调控区域的分析揭示了一种保守的铜信号元件(CuSE)的身份,该元件被转录因子Cuf1识别。我们证明,CuSE对于在铜缺乏条件下的转录激活是必需的。有趣的是,CuSE元件与识别位点具有很强的序列相似性,该识别位点称为MRE(金属调控元件),被一类不同的铜解毒所需的铜传感器识别,包括酿酒酵母的Ace1和光滑念珠菌的Amt1。当将来自酿酒酵母的共有MRE引入粟酒裂殖酵母时,转录在铜缺乏条件下以Cuf1依赖的方式被诱导,类似于酿酒酵母中调控铜转运相关成分编码基因表达的核传感器Mac1的调控方式。紫外线交联实验表明,Cuf1蛋白直接结合CuSE。这些结果表明,Cuf1营养铜感应因子拥有一个与Ace1/Amt1类金属调控因子中发现的结构域功能相似的模块,这使得该蛋白能够通过一个密切相关的类MRE序列来调控粟酒裂殖酵母中铜转运基因的表达。

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The fission yeast copper-sensing transcription factor Cuf1 regulates the copper transporter gene expression through an Ace1/Amt1-like recognition sequence.裂殖酵母铜感应转录因子Cuf1通过Ace1/Amt1样识别序列调控铜转运蛋白基因的表达。
J Biol Chem. 2001 May 4;276(18):15472-80. doi: 10.1074/jbc.M011256200. Epub 2001 Jan 26.
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