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Growth Rate Toxicity Phenotypes and Homeostatic Supercoil Control Differentiate Escherichia coli from Salmonella enterica Serovar Typhimurium▿ †

机译:增长率毒性表型和稳态超螺旋控制将大肠杆菌从肠炎沙门氏菌血清鼠伤寒沙门氏菌中区分出来†

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摘要

Escherichia coli and Salmonella enterica serovar Typhimurium share high degrees of DNA and amino acid identity for 65% of the homologous genes shared by the two genomes. Yet, there are different phenotypes for null mutants in several genes that contribute to DNA condensation and nucleoid formation. The mutant R436-S form of the GyrB protein has a temperature-sensitive phenotype in Salmonella, showing disruption of supercoiling near the terminus and replicon failure at 42°C. But this mutation in E. coli is lethal at the permissive temperature. A unifying hypothesis for why the same mutation in highly conserved homologous genes of different species leads to different physiologies focuses on homeotic supercoil control. During rapid growth in mid-log phase, E. coli generates 15% more negative supercoils in pBR322 DNA than Salmonella. Differences in compaction and torsional strain on chromosomal DNA explain a complex set of single-gene phenotypes and provide insight into how supercoiling may modulate epigenetic effects on chromosome structure and function and on prophage behavior in vivo.
机译:大肠杆菌和鼠伤寒沙门氏菌鼠伤寒沙门氏菌在两个基因组共有的同源基因的65%中共享高度的DNA和氨基酸同一性。然而,在几个基因中存在无效突变体的不同表型,这些突变体有助于DNA缩合和类核苷酸形成。 GyrB蛋白的突变型R436-S形式在沙门氏菌中具有温度敏感性表型,显示在末端附近的超螺旋被破坏,在42°C时复制子失败。但是大肠杆菌的这种突变在允许的温度下是致命的。关于为什么不同物种的高度保守同源基因中的相同突变导致不同生理机制的统一假设集中在同源超螺旋控制上。在对数中期的快速生长期间,大肠杆菌在pBR322 DNA中产生的负超螺旋比沙门氏菌多15%。染色体DNA的紧实度和扭转应变的差异解释了一组复杂的单基因表型,并提供了关于超螺旋如何调节表观遗传效应对染色体结构和功能以及体内前噬行为的见解。

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