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Probing the Differential Interactions of Quinazolinedione PD 0305970 and Quinolones with Gyrase and Topoisomerase IV

机译:探究喹唑啉二酮PD 0305970和喹诺酮类与促旋酶和拓扑异构酶IV的相互作用

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摘要

Quinazoline-2,4-diones, such as PD 0305970, are new DNA gyrase and topoisomerase IV (topo IV) inhibitors with potent activity against gram-positive pathogens, including quinolone-resistant isolates. The mechanistic basis of dione activity vis-à-vis quinolones is not understood. We present evidence for Streptococcus pneumoniae gyrase and topo IV that PD 0305970 and quinolones interact differently with the enzyme breakage-reunion and Toprim domains, DNA, and Mg2+-four components that are juxtaposed in the topoisomerase cleavage complex to effect DNA scission. First, PD 0305970 targets primarily gyrase in Streptococcus pneumoniae. However, unlike quinolones, which select predominantly for gyrA (or topo IV parC) mutations in the breakage-reunion domain, unusually the dione selected for novel mutants with alterations that map to a region of the Toprim domain of GyrB (R456H and E474A or E474D) or ParE (D435H and E475A). This “dione resistance-determining region” overlaps the GyrB quinolone resistance-determining region and the region that binds essential Mg2+ ions, each function involving conserved EGDSA and PLRGK motifs. Second, dione-resistant gyrase and topo IV were inhibited by ciprofloxacin, whereas quinolone-resistant enzymes (GyrA S81F and ParC S79F) remained susceptible to PD 0305970. Third, dione-promoted DNA cleavage by gyrase occurred at a distinct repertoire of sites, implying that structural differences with quinolones are sensed at the DNA level. Fourth, unlike the situation with quinolones, the Mg2+ chelator EDTA did not reverse dione-induced gyrase cleavage nor did the dione promote Mg2+-dependent DNA unwinding. It appears that PD 0305970 interacts uniquely to stabilize the cleavage complex of gyrase/topo IV perhaps via an altered orientation directed by the bidentate 3-amino-2,4-dione moiety.
机译:喹唑啉-2,4-二酮,例如PD 0305970,是新型的DNA促旋酶和拓扑异构酶IV(topo IV)抑制剂,具有对革兰氏阳性病原体(包括耐喹诺酮类)的有效活性。相对于喹诺酮,二酮活性的机理基础尚不清楚。我们为肺炎链球菌促旋酶和topo IV提供了证据,证明PD 0305970和喹诺酮与酶断裂-团聚和Toprim结构域,DNA和Mg 2 + -在拓扑异构酶裂解中并列的四个组分相互作用不同复杂的影响DNA的分裂。首先,PD 0305970主要针对肺炎链球菌中的促旋酶。但是,与喹诺酮类药物主要选择断裂-团聚结构域中的gyrA(或topo IV parC)突变不同,喹诺酮类化合物通常不同于为突变体选择的二酮,这些突变体具有映射到GyrB Toprim域的区域(R456H和E474A或E474D )或ParE(D435H和E475A)。此“二酮抗性决定区”与GyrB喹诺酮抗性决定区和结合必需Mg 2 + 离子的区域重叠,每种功能均涉及保守的EGDSA和PLRGK基序。其次,环丙沙星可抑制二酮抗性促旋酶和topo IV,而喹诺酮抗性酶(GyrA S81F和ParC S79F)仍然易受PD 0305970的影响。第三,二酮促进DNA裂解的促旋酶作用是在不同的位点库中进行,这意味着喹诺酮类在结构上的差异是在DNA水平上检测到的。第四,与喹诺酮类药物不同,Mg 2 + 螯合剂EDTA不会逆转二酮诱导的促旋酶裂解,二酮也不会促进Mg 2 + 依赖的DNA解旋。似乎PD 0305970可能通过由双齿3-氨基-2,4-二酮部分指导的方向改变而独特地相互作用以稳定促旋酶/拓扑IV的裂解复合物。

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