DNA旋转酶
赫尔格
化学
细菌
拓扑异构酶
抗菌活性
抗生素
药理学
抗生素耐药性
体内
抗菌剂
多重耐药
拓扑异构酶
抗菌剂
左氧氟沙星
体外
微生物学
药代动力学
流出
拓扑异构酶抑制剂
生物化学
抗药性
大肠杆菌
酶
氧氟沙星
舒巴坦钠
药物发现
结构-活动关系
生物活性
作者
Yuzhi Liu,Xin-Yu Leng,Haiqiao Wang,Shanghan Ruan,Xin Meng,Tiansong Li,Haifeng Cao,Ying Fu,Yushe Yang
标识
DOI:10.1021/acs.jmedchem.6c00278
摘要
The escalating crisis of antimicrobial resistance (AMR), particularly multidrug-resistant (MDR) Gram-negative bacterial infections, presents a grave threat to global public health. This urgent unmet medical need underscores the demand for novel antibiotics capable of overcoming existing resistance mechanisms. The ATP-binding sites of bacterial type II topoisomerases represent promising therapeutic targets against MDR Gram-negative pathogens. Pyrimido[4,5- b ]indole-based compounds (GP-1) are the first reported ATPase inhibitors of DNA gyrase with potent and broad-spectrum antibacterial activity against both MDR Gram-positive and Gram-negative pathogens; however, they are associated with hERG inhibition and suboptimal pharmacokinetic profiles. To overcome these limitations, we designed a new series of pyrimido[4,5- b ]indole-based derivatives using structure-based scaffold modification and CADD-guided optimization. This campaign culminated in the discovery of compound 65, which exhibited potent broad-spectrum antibacterial activity against MDR Gram-negative bacteria without detectable hERG liability. Moreover, 65 demonstrated improved pharmacokinetic properties, leading to enhanced in vivo efficacy compared to levofloxacin in a murine infection model.
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