Department of Biochemistry, Vanderbilt University School of Medicine, Nashville, TN 37232, USA.
Division of Medicinal Chemistry and Pharmacognosy, College of Pharmacy, The Ohio State University, Columbus, OH 43210, USA.
Int J Mol Sci. 2023 Jul 28;24(15):12107. doi: 10.3390/ijms241512107.
Novel bacterial topoisomerase inhibitors (NBTIs) are an emerging class of antibacterials that target gyrase and topoisomerase IV. A hallmark of NBTIs is their ability to induce gyrase/topoisomerase IV-mediated single-stranded DNA breaks and suppress the generation of double-stranded breaks. However, a previous study reported that some dioxane-linked amide NBTIs induced double-stranded DNA breaks mediated by gyrase. To further explore the ability of this NBTI subclass to increase double-stranded DNA breaks, we examined the effects of OSUAB-185 on DNA cleavage mediated by gyrase and topoisomerase IV. OSUAB-185 induced single-stranded and suppressed double-stranded DNA breaks mediated by gyrase. However, the compound stabilized both single- and double-stranded DNA breaks mediated by topoisomerase IV. The induction of double-stranded breaks does not appear to correlate with the binding of a second OSUAB-185 molecule and extends to fluoroquinolone-resistant topoisomerase IV, as well as type II enzymes from other bacteria and humans. The double-stranded DNA cleavage activity of OSUAB-185 and other dioxane-linked NBTIs represents a paradigm shift in a hallmark characteristic of NBTIs and suggests that some members of this subclass may have alternative binding motifs in the cleavage complex.
新型细菌拓扑异构酶抑制剂(NBTIs)是一类新兴的抗菌药物,针对拓扑异构酶 II 和拓扑异构酶 IV。NBTIs 的一个特点是能够诱导拓扑异构酶 II/IV 介导的单链 DNA 断裂,并抑制双链 DNA 断裂的产生。然而,先前的一项研究报告称,一些二恶烷连接酰胺 NBTIs 诱导拓扑异构酶 II 介导的双链 DNA 断裂。为了进一步探索这一类 NBTI 亚类增加双链 DNA 断裂的能力,我们研究了 OSUAB-185 对拓扑异构酶 II 和拓扑异构酶 IV 介导的 DNA 切割的影响。OSUAB-185 诱导单链并抑制拓扑异构酶 II 介导的双链 DNA 断裂。然而,该化合物稳定了拓扑异构酶 IV 介导的单链和双链 DNA 断裂。双链 DNA 断裂的诱导似乎与第二个 OSUAB-185 分子的结合无关,并扩展到氟喹诺酮耐药的拓扑异构酶 IV 以及来自其他细菌和人类的 II 型酶。OSUAB-185 和其他二恶烷连接的 NBTIs 的双链 DNA 切割活性代表了 NBTIs 的一个标志性特征的范式转变,并表明该亚类的一些成员在切割复合物中可能具有替代的结合基序。