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COQ7基因在酿酒酵母中编码一种泛醌生物合成所必需的蛋白质。

The COQ7 gene encodes a protein in saccharomyces cerevisiae necessary for ubiquinone biosynthesis.

作者信息

Marbois B N, Clarke C F

机构信息

Department of Chemistry and Biochemistry, School of Medicine, University of California, Los Angeles, 90095, USA.

出版信息

J Biol Chem. 1996 Feb 9;271(6):2995-3004. doi: 10.1074/jbc.271.6.2995.

DOI:10.1074/jbc.271.6.2995
PMID:8621692
Abstract

Ubiquinone (coenzyme Q) is a lipid that transports electrons in the respiratory chains of both prokaryotes and eukaryotes. Mutants of Saccharomyces cerevisiae deficient in ubiquinone biosynthesis fail to grow on nonfermentable carbon sources and have been classified into eight complementation groups (coq1 coq8; Tzagoloff, A., and Dieckmann, C. L.(1990) Microbiol. Rev. 54, 211-225). In this study we show that although yeast coq7 mutants lack detectable ubiquinone, the coq7 1 mutant does synthesize demethoxyubiquinone (2-hexaprenyl-3-methyl-6-methoxy-1,4-benzoquinone), a ubiquinone biosynthetic intermediate. The corresponding wild-type COQ7 gene was isolated, sequenced, and found to restore growth on nonfermentable carbon sources and the synthesis of ubiquinone. The sequence predicts a polypeptide of 272 amino acids which is 40% identical to a previously reported Caenorhabditis elegans open reading frame. Deletion of the chromosomal COQ7 gene generates respiration defective yeast mutants deficient in ubiquinone. Analysis of several coq7 deletion strains indicates that, unlike the coq7 1 mutant, demethoxyubiquinone is not produced. Both coq7 1 and coq7 deletion mutants, like other coq mutants, accumulate an early intermediate in the ubiquinone biosynthetic pathway, 3-hexaprenyl-4-hydroxybenzoate. The data suggest that the yeast COQ7 gene may encode a protein involved in one or more monoxygenase or hydroxylase steps of ubiquinone biosynthesis.

摘要

泛醌(辅酶Q)是一种脂质,在原核生物和真核生物的呼吸链中传递电子。缺乏泛醌生物合成的酿酒酵母突变体无法在非发酵碳源上生长,并已被分为八个互补组(coq1 - coq8;察戈洛夫,A.,和迪克曼,C. L.(1990年)《微生物学评论》54,211 - 225)。在本研究中,我们表明,尽管酵母coq7突变体缺乏可检测到的泛醌,但coq7 - 1突变体确实合成去甲氧基泛醌(2 - 六异戊二烯基 - 3 - 甲基 - 6 - 甲氧基 - 1,4 - 苯醌),一种泛醌生物合成中间体。相应的野生型COQ7基因被分离、测序,并发现其能恢复在非发酵碳源上的生长以及泛醌的合成。该序列预测了一个由272个氨基酸组成的多肽,与先前报道的秀丽隐杆线虫开放阅读框有40%的同一性。染色体COQ7基因的缺失产生了缺乏泛醌的呼吸缺陷型酵母突变体。对几个coq7缺失菌株的分析表明,与coq7 - 1突变体不同,去甲氧基泛醌未产生。coq7 - 1和coq7缺失突变体,与其他coq突变体一样,在泛醌生物合成途径中积累早期中间体3 - 六异戊二烯基 - 4 - 羟基苯甲酸。数据表明,酵母COQ7基因可能编码一种参与泛醌生物合成中一个或多个单加氧酶或羟化酶步骤的蛋白质。

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