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Mutations Affecting Potassium Import Restore the Viability of the Escherichia coli DNA Polymerase III holD Mutant

机译:影响钾输入的突变可恢复大肠杆菌DNA聚合酶III holD突变体的活力。

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摘要

Mutants lacking the ψ (HolD) subunit of the Escherichia coli DNA Polymerase III holoenzyme (Pol III HE) have poor viability, but a residual growth allows the isolation of spontaneous suppressor mutations that restore ΔholD mutant viability. Here we describe the isolation and characterization of two suppressor mutations in the trkA and trkE genes, involved in the main E. coli potassium import system. Viability of ΔholD trk mutants is abolished on media with low or high K+ concentrations, where alternative K+ import systems are activated, and is restored on low K+ concentrations by the inactivation of the alternative Kdp system. These findings show that the ΔholD mutant is rescued by a decrease in K+ import. The effect of trk inactivation is additive with the previously identified ΔholD suppressor mutation lexAind that blocks the SOS response indicating an SOS-independent mechanism of suppression. Accordingly, although lagging-strand synthesis is still perturbed in holD trkA mutants, the trkA mutation allows HolD-less Pol III HE to resist increased levels of the SOS-induced bypass polymerase DinB. trk inactivation is also partially additive with an ssb gene duplication, proposed to stabilize HolD-less Pol III HE by a modification of the single-stranded DNA binding protein (SSB) binding mode. We propose that lowering the intracellular K+ concentration stabilizes HolD-less Pol III HE on DNA by increasing electrostatic interactions between Pol III HE subunits, or between Pol III and DNA, directly or through a modification of the SSB binding mode; these three modes of action are not exclusive and could be additive. To our knowledge, the holD mutant provides the first example of an essential protein-DNA interaction that strongly depends on K+ import in vivo.
机译:缺少大肠杆菌DNA聚合酶III全酶(Pol III HE)的ψ(HolD)亚基的突变体,其生存力较差,但残留的生长可分离自发的抑制突变,从而恢复ΔholD突变体的生存力。在这里,我们描述了tkA和trkE基因中两个抑制子突变的分离和特征,它们参与了主要的大肠杆菌钾输入系统。在低或高K + 浓度的培养基上消除了ΔholDtrk突变体的活力,其中激活了替代K + 导入系统,并在低K +时恢复浓度通过替代Kdp系统的失活来实现。这些发现表明,ΔholD突变体通过减少K + 的导入而得以挽救。 trk失活的作用与先前确定的ΔholD抑制子突变lexAind相加,该突变阻止SOS反应,表明SOS独立的抑制机制。因此,尽管在holD trkA突变体中仍然滞后链合成,但是trkA突变使无HolD的Pol III HE抵抗SOS诱导的旁路聚合酶DinB水平的提高。 trk灭活还与ssb基因重复部分加在一起,提出通过修饰单链DNA结合蛋白(SSB)结合模式来稳定无HolD的Pol III HE。我们建议降低细胞内K + 的浓度可通过直接或通过对SSB进行修饰来增加Pol III HE亚基之间或Pol III与DNA之间的静电相互作用来稳定DNA上无HolD的Pol III HE。绑定模式;这三种作用方式不是排他的,可以加和。据我们所知,holD突变体提供了必需的蛋白质-DNA相互作用的第一个例子,该相互作用强烈依赖于体内K + 导入

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