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大肠杆菌中所有硫代核苷生物合成对IscS的需求。

Requirement for IscS in biosynthesis of all thionucleosides in Escherichia coli.

作者信息

Lauhon Charles T

机构信息

School of Pharmacy, University of Wisconsin, Madison 53705, USA.

出版信息

J Bacteriol. 2002 Dec;184(24):6820-9. doi: 10.1128/JB.184.24.6820-6829.2002.

Abstract

Escherichia coli tRNA contains four naturally occurring nucleosides modified with sulfur. Cysteine is the intracellular sulfur source for each of these modified bases. We previously found that the iscS gene, a member of the nifS cysteine desulfurase gene family, is required for 4-thiouridine biosynthesis in E. coli. Since IscS does not bind tRNA, its role is the mobilization and distribution of sulfur to enzymes that catalyze the sulfur insertion steps. In addition to iscS, E. coli contains two other nifS homologs, csdA and csdB, each of which has cysteine desulfurase activity and could potentially donate sulfur for thionucleoside biosynthesis. Double csdA csdB and iscS csdA mutants were prepared or obtained, and all mutants were analyzed for thionucleoside content. It was found that unfractionated tRNA isolated from the iscS mutant strain contained <5% of the level of sulfur found in the parent strain. High-pressure liquid chromatography analysis of tRNA nuclease digests from the mutant strain grown in the presence of [(35)S]cysteine showed that only a small fraction of 2-thiocytidine was present, while the other thionucleosides were absent when cells were isolated during log phase. As expected, digests from the iscS mutant strain contained 6-N-dimethylallyl adenosine (i(6)A) in place of 6-N-dimethylallyl-2-methylthioadenosine and 5-methylaminomethyl uridine (mnm(5)U) instead of 5-methylaminomethyl-2-thiouridine. Prolonged growth of the iscS and iscS csdA mutant strains revealed a gradual increase in levels of 2-thiocytidine and 6-N-dimethylallyl-2-methylthioadenosine with extended incubation (>24 h), while the thiouridines remained absent. This may be due to a residual level of Fe-S cluster biosynthesis in iscS deletion strains. An overall scheme for thionucleoside biosynthesis in E. coli is discussed.

摘要

大肠杆菌转运RNA(tRNA)含有四种天然存在的经硫修饰的核苷。半胱氨酸是这些修饰碱基各自的细胞内硫源。我们之前发现,nifS半胱氨酸脱硫酶基因家族的成员iscS基因是大肠杆菌中4-硫尿苷生物合成所必需的。由于IscS不与tRNA结合,其作用是将硫动员并分配给催化硫插入步骤的酶。除了iscS,大肠杆菌还含有另外两个nifS同源物csdA和csdB,它们各自都具有半胱氨酸脱硫酶活性,并且有可能为硫代核苷生物合成提供硫。制备或获得了双突变体csdA csdB和iscS csdA,并对所有突变体的硫代核苷含量进行了分析。结果发现,从iscS突变菌株中分离出的未分级tRNA所含硫水平不到亲本菌株的5%。对在[(35)S]半胱氨酸存在下生长的突变菌株的tRNA核酸酶消化产物进行高压液相色谱分析表明,在对数生长期分离细胞时,仅存在一小部分2-硫代胞苷,而其他硫代核苷不存在。正如预期的那样,iscS突变菌株的消化产物中含有6-N-二甲基烯丙基腺苷(i(6)A),而不是6-N-二甲基烯丙基-2-甲硫基腺苷,以及5-甲基氨基甲基尿苷(mnm(5)U),而不是5-甲基氨基甲基-2-硫尿苷。iscS和iscS csdA突变菌株的长时间生长显示,随着孵育时间延长(>24小时),2-硫代胞苷和6-N-二甲基烯丙基-2-甲硫基腺苷的水平逐渐增加,而硫尿苷仍然不存在。这可能归因于iscS缺失菌株中残留水平的铁硫簇生物合成。本文讨论了大肠杆菌中硫代核苷生物合成的总体方案。

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