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Antimicrobial Susceptibility and SOS-Dependent Increase in Mutation Frequency Are Impacted by Escherichia coli Topoisomerase I C-Terminal Point Mutation

机译:抗菌药物敏感性和SOS依赖的突变频率增加受到大肠杆菌拓扑异构酶I C末端点突变的影响

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摘要

Topoisomerase functions are required in all organisms for many vital cellular processes, including transcription elongation. The C terminus domains (CTD) of Escherichia coli topoisomerase I interact directly with RNA polymerase to remove transcription-driven negative supercoiling behind the RNA polymerase complex. This interaction prevents inhibition of transcription elongation from hypernegative supercoiling and R-loop accumulation. The physiological function of bacterial topoisomerase I in transcription is especially important for a rapid network response to an antibiotic challenge. In this study, Escherichia coli with a topA66 single nucleotide deletion mutation, which results in a frameshift in the TopA CTD, was shown to exhibit increased sensitivity to trimethoprim and quinolone antimicrobials. The topoisomerase I-RNA polymerase interaction and the SOS response to the antimicrobial agents were found to be significantly reduced by this topA66 mutation. Consequently, the mutation frequency measured by rifampin selection following SOS induction was diminished in the topA66 mutant. The increased antibiotic sensitivity for the topA66 mutant can be reversed by the expression of recombinant E. coli topoisomerase I but not by the expression of recombinant Mycobacterium tuberculosis topoisomerase I that has a nonhomologous CTD even though the recombinant M. tuberculosis topoisomerase I can restore most of the plasmid DNA linking number deficiency caused by the topA66 mutation. Direct interactions of E. coli topoisomerase I as part of transcription complexes are likely to be required for the rapid network response to an antibiotic challenge. Inhibitors of bacterial topoisomerase I functions and interactions may sensitize pathogens to antibiotic treatment and limit the mutagenic response.
机译:所有生物都需要拓扑异构酶功能来完成许多重要的细胞过程,包括转录延伸。大肠杆菌拓扑异构酶I的C末端结构域(CTD)直接与RNA聚合酶相互作用,以去除RNA聚合酶复合物后面的转录驱动的负超螺旋。这种相互作用防止了来自超负超螺旋和R环积累的转录延伸的抑制。细菌拓扑异构酶I在转录中的生理功能对于对抗生素激发的快速网络反应特别重要。在这项研究中,显示具有topA66单核苷酸缺失突变的大肠杆菌(导致TopA CTD移码)显示出对甲氧苄啶和喹诺酮类抗生素的敏感性增加。发现拓扑异构酶I-RNA聚合酶的相互作用和SOS对抗菌剂的反应被topA66突变显着降低。因此,在topA66突变体中,在SOS诱导后通过利福平选择测得的突变频率降低了。对topA66突变体增加的抗生素敏感性可以通过重组大肠杆菌拓扑异构酶I的表达来逆转,但不能通过具有非同源CTD的重组结核分枝杆菌拓扑异构酶I的表达来逆转,即使重组结核分枝杆菌拓扑异构酶I可以恢复大部分由topA66突变引起的质粒DNA连接数缺乏。 E. coli拓扑异构酶I作为转录复合物的一部分,可能需要快速的网络相互作用才能快速应对抗生素攻击。细菌拓扑异构酶I功能和相互作用的抑制剂可能会使病原体对抗生素治疗敏感,并限制诱变反应。

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