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首页> 外文期刊>Molecular Microbiology >Systematic mutagenesis of the DNA binding sites for SoxS in the Escherichia coli zwf and fpr promoters: identifying nucleotides required for DNA binding and transcription activation.
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Systematic mutagenesis of the DNA binding sites for SoxS in the Escherichia coli zwf and fpr promoters: identifying nucleotides required for DNA binding and transcription activation.

机译:大肠杆菌zwf和fpr启动子中SoxS的DNA结合位点的系统诱变:鉴定DNA结合和转录激活所需的核苷酸。

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摘要

SoxS is the direct transcriptional activator of at least 15 genes of the Escherichia coli superoxide regulon. SoxS is small (107 amino acids), binds DNA as a monomer and recognizes a highly degenerate DNA binding site, termed 'soxbox'. Like other members of the AraC/XylS family, SoxS has two putative helix-turn-helix (HTH) DNA-binding motifs, and it has been proposed that each HTH motif recognizes a highly conserved recognition element of the soxbox. To determine which nucleotides are important for SoxS binding, we conducted a systematic mutagenesis of the DNA binding sites for SoxS in the zwf and fpr promoters and determined the effect of the soxbox mutations on SoxS DNA binding and transcription activation in vivo by measuring beta-galactosidase activity in strains with fusions to lacZ. We found that the sequences GCAC and CAAA, termed recognition elements 1 and 2 (RE 1 and RE 2), respectively, are critical for SoxS binding, as mutations within these elements severely hinder or eliminate SoxS-dependent transcription activation; substitutions within RE 2 (CAAA), however, are tolerated better than changes within RE 1 (GCAC). Although substitutions at the seven positions separating the two REs had only a modest effect on SoxS binding, AT basepairs were favoured within this 'spacer' region, presumably because, by facilitating DNA bending, they help bring the two recognition elements into proper juxtaposition. We also found that the 'invariant A' present at position 1 of 14/15 functional soxboxes identified thus far is important for SoxS binding, as a change to any other nucleotide at this position reduced SoxS-dependent transcription by approximately 50%. In addition, positions surrounding the REs seem to show a context effect, in that certain substitutions there have little or no effect when the RE has the optimal binding sequence, but produce a pronounced effect when the RE has a suboptimal sequence. We propose that these nucleotides play an important role in effecting differential expression from the various promoters. Lastly, we used gel retardation assays to show that alterations in transcription activation in vivo are caused by effects on DNA binding. Based on this exhaustive mutagenesis, we propose the following optimal sequence for SoxS binding: AnVGCACWWWnKRHCAAAHn (n = A, C, G, T; V = A, C, G; W = A, T; K = G, T; R = A, G; H = A, C, T).
机译:SoxS是大肠杆菌超氧化物调节子的至少15个基因的直接转录激活因子。 SoxS很小(107个氨基酸),以单体形式结合DNA,并识别高度简并的DNA结合位点,称为“ soxbox”。像AraC / XylS家族的其他成员一样,SoxS具有两个推定的螺旋-转-螺旋(HTH)DNA结合基序,并且有人提出,每个HTH基序都可以识别soxbox的高度保守的识别元件。为了确定哪些核苷酸对SoxS结合很重要,我们对zwf和fpr启动子中SoxS的DNA结合位点进行了系统诱变,并通过测量β-半乳糖苷酶确定了soxbox突变对SoxS DNA结合和体内转录激活的影响。与lacZ融合的菌株的活性。我们发现,分别称为识别元件1和2(RE 1和RE 2)的序列GCAC和CAAA对SoxS结合至关重要,因为这些元件中的突变严重阻碍或消除了SoxS依赖性转录激活。但是,对RE 2(CAAA)中的取代的耐受性要比RE 1(GCAC)中的变更更好。尽管将两个RE分开的七个位置处的取代仅对SoxS结合产生适度影响,但AT碱基对在此“间隔区”内受青睐,可能是因为通过促进DNA弯曲,它们有助于将两个识别元件正确地并置。我们还发现,到目前为止确定的14/15功能soxbox的位置1处存在的“不变A”对于SoxS结合很重要,因为对该位置其他任何核苷酸的改变使SoxS依赖性转录降低了约50%。另外,围绕RE的位置似乎显示出上下文效应,因为当RE具有最佳结合序列时,某些取代几乎没有或没有影响,但是当RE具有次优序列时产生明显的影响。我们建议这些核苷酸在影响不同启动子的差异表达中起重要作用。最后,我们使用凝胶阻滞测定法来显示体内转录激活的改变是由对DNA结合的影响引起的。基于这种详尽的诱变,我们为SoxS结合提出了以下最佳序列:AnVGCACWWWnKRHCAAAHn(n = A,C,G,T; V = A,C,G; W = A,T; K = G,T; R = A,G; H = A,C,T)。

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