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Systematic Production of Inactivating and Non-Inactivating Suppressor Mutations at the relA Locus That Compensate the Detrimental Effects of Complete spoT Loss and Affect Glycogen Content in Escherichia coli

机译:在relA位点系统产生失活和非失活的抑制子突变该突变可补偿完全spoT丢失的有害影响和影响大肠杆菌中糖原含量

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摘要

In Escherichia coli, ppGpp is a major determinant of growth and glycogen accumulation. Levels of this signaling nucleotide are controlled by the balanced activities of the ppGpp RelA synthetase and the dual-function hydrolase/synthetase SpoT. Here we report the construction of spoT null (ΔspoT) mutants obtained by transducing a ΔspoT allele from ΔrelAΔspoT double mutants into relA+ cells. Iodine staining of randomly selected transductants cultured on a rich complex medium revealed differences in glycogen content among them. Sequence and biochemical analyses of 8 ΔspoT clones displaying glycogen-deficient phenotypes revealed different inactivating mutations in relA and no detectable ppGpp when cells were cultured on a rich complex medium. Remarkably, although the co-existence of ΔspoT with relA proficient alleles has generally been considered synthetically lethal, we found that 11 ΔspoT clones displaying high glycogen phenotypes possessed relA mutant alleles with non-inactivating mutations that encoded stable RelA proteins and ppGpp contents reaching 45–85% of those of wild type cells. None of the ΔspoT clones, however, could grow on M9-glucose minimal medium. Both Sanger sequencing of specific genes and high-throughput genome sequencing of the ΔspoT clones revealed that suppressor mutations were restricted to the relA locus. The overall results (a) defined in around 4 nmoles ppGpp/g dry weight the threshold cellular levels that suffice to trigger net glycogen accumulation, (b) showed that mutations in relA, but not necessarily inactivating mutations, can be selected to compensate total SpoT function(s) loss, and (c) provided useful tools for studies of the in vivo regulation of E. coli RelA ppGpp synthetase.
机译:在大肠杆菌中,ppGpp是生长和糖原积累的主要决定因素。该信号核苷酸的水平受ppGpp RelA合成酶和双功能水解酶/合成酶SpoT平衡活性的控制。在这里,我们报道了通过将ΔrelAΔspoT双重突变体的ΔspoT等位基因转导到relA + 细胞中而获得的spoT null(ΔspoT)突变体的构建。在丰富的复杂培养基上培养的随机选择的转导子的碘染色显示了它们之间糖原含量的差异。对显示糖原缺陷表型的8个ΔspoT克隆进行的序列和生化分析显示,当在丰富的复杂培养基上培养细胞时,relA的失活突变不同,并且没有可检测的ppGpp。值得注意的是,尽管通常认为ΔspoT与relA熟练等位基因共存具有致命性,但我们发现显示高糖原表型的11个ΔspoT克隆具有relA突变等位基因,这些非等位基因突变编码的稳定RelA蛋白和ppGpp含量达到45–野生型细胞的85%。但是,ΔspoT克隆均不能在M9-葡萄糖基本培养基上生长。特定基因的Sanger测序和ΔspoT克隆的高通量基因组测序均显示,抑制子突变仅限于relA基因座。总体结果(a)定义为足以触发净糖原积累的阈值细胞水平(约4 nmoles ppGpp / g干重),(b)表明 relA 中的突变,但不一定使突变灭活,可以选择以补偿SpoT的全部功能损失,并且(c)为研究 E的 in vivo 调节提供了有用的工具。大肠杆菌RelA ppGpp合成酶。

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