Molecular Biology Division, Bhabha Atomic Research Centre, Mumbai, India.
Life Sciences, Homi Bhabha National Institute, Mumbai, India.
J Bacteriol. 2019 Aug 8;201(17). doi: 10.1128/JB.00154-19. Print 2019 Sep 1.
Guanine quadruplex (G4) DNA/RNA are secondary structures that regulate the various cellular processes in both eukaryotes and bacteria. , a Gram-positive bacterium known for its extraordinary radioresistance, shows a genomewide occurrence of putative G4 DNA-forming motifs in its GC-rich genome. -Methyl mesoporphyrin (NMM), a G4 DNA structure-stabilizing drug, did not affect bacterial growth under normal conditions but inhibited the postirradiation recovery of gamma-irradiated cells. Transcriptome sequencing analysis of cells treated with both radiation and NMM showed repression of gamma radiation-responsive gene expression, which was observed in the absence of NMM. Notably, this effect of NMM on the expression of housekeeping genes involved in other cellular processes was not observed. Stabilization of G4 DNA structures mapped at the upstream of and in the encoding region of DR_2199 had negatively affected promoter activity , DNA synthesis and protein translation in host. These results suggested that G4 DNA plays an important role in DNA damage response and in the regulation of expression of the DNA repair proteins required for radioresistance in can recover from extensive DNA damage caused by many genotoxic agents. It lacks LexA/RecA-mediated canonical SOS response. Therefore, the molecular mechanisms underlying the regulation of DNA damage response would be worth investigating in this bacterium. genome is GC-rich and contains numerous islands of putative guanine quadruplex (G4) DNA structure-forming motifs. Here, we showed that stabilization of G4 DNA structures can impair DNA damage response processes in Essential cellular processes such as transcription, DNA synthesis, and protein translation, which are also an integral part of the double-strand DNA break repair pathway, are affected by the arrest of G4 DNA structure dynamics. Thus, the role of DNA secondary structures in DNA damage response and radioresistance is demonstrated.
鸟嘌呤四链体 (G4) DNA/RNA 是调节真核生物和细菌中各种细胞过程的二级结构。一种革兰氏阳性菌,以其非凡的耐辐射性而闻名,其富含 GC 的基因组中存在广泛的推定 G4 DNA 形成基序。-甲基甲川叶绿素 (NMM),一种 G4 DNA 结构稳定药物,在正常条件下不会影响细菌生长,但会抑制γ辐射后细胞的恢复。用辐射和 NMM 处理的细胞的转录组测序分析表明,γ辐射反应基因的表达受到抑制,即使没有 NMM 也是如此。值得注意的是,NMM 对涉及其他细胞过程的管家基因表达的这种影响在没有 NMM 的情况下没有观察到。G4 DNA 结构的稳定映射在上游的 和编码区的 DR_2199 对 宿主中的启动子活性、DNA 合成 和蛋白质翻译产生负面影响。这些结果表明 G4 DNA 在 DNA 损伤反应和调节与耐辐射相关的 DNA 修复蛋白的表达中发挥重要作用,而 则可以从许多遗传毒性剂引起的广泛 DNA 损伤中恢复。它缺乏 LexA/RecA 介导的典型 SOS 反应。因此,在这种细菌中,调节 DNA 损伤反应的分子机制值得研究。 基因组富含 GC,并且包含许多推定的鸟嘌呤四链体 (G4) DNA 结构形成基序的岛。在这里,我们表明 G4 DNA 结构的稳定会损害 中 DNA 损伤反应过程,这些过程对于转录、DNA 合成和蛋白质翻译等基本细胞过程至关重要,这些过程也是双链 DNA 断裂修复途径的一部分,受 G4 DNA 结构动力学的阻滞影响。因此,证明了 DNA 二级结构在 DNA 损伤反应和耐辐射性中的作用。