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衣藻中铜和氧响应的Cyc6和Cpx1表达的协调由同一元件介导。

Coordinate copper- and oxygen-responsive Cyc6 and Cpx1 expression in Chlamydomonas is mediated by the same element.

作者信息

Quinn J M, Barraco P, Eriksson M, Merchant S

机构信息

Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, California 90095-1569, USA.

出版信息

J Biol Chem. 2000 Mar 3;275(9):6080-9. doi: 10.1074/jbc.275.9.6080.

Abstract

Chlamydomonas reinhardtii activates the transcription of the Cyc6 and the Cpx1 genes (encoding cytochrome c(6) and coprogen oxidase) in response to copper deficiency. Mutational analysis of promoter regions of the Cyc6 and Cpx1 genes revealed a four nucleotide sequence, GTAC, which was absolutely essential for copper responsiveness. The Cyc6 promoter contains two copper response elements, each with a functionally important GTAC sequence, whereas the Cpx1 promoter contains only one. This may contribute to the stronger and more tightly regulated expression of the Cyc6 gene. Mutation or deletion of sequences flanking the GTACs implicates additional nucleotides contributing to copper-responsive expression, but none are absolutely essential. Metal ion selectivity of Cpx1 expression is identical to that described previously for Cyc6 and is restricted to the copper deficiency-induced Cpx1 transcript. The Cyc6 and Cpx1 genes are also induced by oxygen deficiency. Reporter gene constructs indicate that the induction occurs at the level of transcription and requires the same GTAC sequence that is critical for copper responsiveness. We suggest that components of the copper-responsive signal transduction pathway are used for some of the changes in gene expression in hypoxic cells.

摘要

莱茵衣藻在铜缺乏时会激活Cyc6和Cpx1基因(分别编码细胞色素c6和粪卟啉原氧化酶)的转录。对Cyc6和Cpx1基因启动子区域的突变分析揭示了一个四核苷酸序列GTAC,它对于铜响应性是绝对必需的。Cyc6启动子包含两个铜响应元件,每个元件都有一个功能重要的GTAC序列,而Cpx1启动子仅包含一个。这可能有助于Cyc6基因更强且调控更严格的表达。GTAC侧翼序列的突变或缺失表明还有其他核苷酸对铜响应性表达有贡献,但没有一个是绝对必需的。Cpx1表达的金属离子选择性与先前描述的Cyc6相同,并且仅限于铜缺乏诱导的Cpx1转录本。Cyc6和Cpx1基因也会被缺氧诱导。报告基因构建体表明这种诱导发生在转录水平,并且需要与铜响应性关键的相同GTAC序列。我们认为铜响应信号转导途径的成分被用于缺氧细胞中基因表达的一些变化。

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