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通过质子核磁共振光谱研究抗菌氟喹诺酮类药物与纯化大鼠肝脏CYP1A2的分子间相互作用。

Intermolecular interactions of antimicrobial fluoroquinolones with purified rat liver CYP1A2 studied by proton nuclear magnetic resonance spectroscopy.

作者信息

Mizuki Y, Yamamoto K, Yamaguchi T, Fujii T, Miyazaki H, Ohmori H

机构信息

Developmental Research Laboratories, Dainippon Pharmaceutical Co. Ltd., Osaka, Japan.

出版信息

Xenobiotica. 1996 Oct;26(10):1057-66. doi: 10.3109/00498259609167422.

DOI:10.3109/00498259609167422
PMID:8905919
Abstract
  1. Binding and inhibition of antimicrobial fluoroquinolones towards liver CYP1A2 purified from 3-methylcholanthrene-treated rats were investigated using proton nuclear magnetic resonance (nmr) and phenacetin metabolism. 2. The proton nmr longitudinal relaxation rate study indicated that the paramagnetic effects of the haem iron of CYP1A2 were observed in protons of enoxacin with a 1,8-naphthyridine skeleton and its 4'-nitrogen atom on the 7-piperazine ring probably participated in specific binding to the haem iron. These data suggest a facile accessibility and strong binding of enoxacin to the active site of the enzyme. On the contrary, the binding region of norfloxacin with a quinoline skeleton could not be specified, and an 8-fluorinated derivative (AT-3970) had much lower paramagnetic effects and no specific binding region. 3. In a reconstituted CYP1A2 system, enoxacin exhibited the most potent inhibition of phenacetin O-deethylation. The metabolism was less inhibited by norfloxacin, and AT-3970 had a weak inhibitory activity. 4. The binding ability of the fluoroquinolones to the CYP1A2 active site is likely to determine their inhibitory activity against phenacetin metabolism.
摘要
  1. 使用质子核磁共振(nmr)和非那西丁代谢研究了抗菌氟喹诺酮类药物对从3-甲基胆蒽处理的大鼠中纯化的肝脏CYP1A2的结合和抑制作用。2. 质子nmr纵向弛豫率研究表明,在具有1,8-萘啶骨架的依诺沙星的质子中观察到CYP1A2血红素铁的顺磁效应,并且其7-哌嗪环上的4'-氮原子可能参与了与血红素铁的特异性结合。这些数据表明依诺沙星易于接近并与酶的活性位点紧密结合。相反,具有喹啉骨架的诺氟沙星的结合区域无法确定,并且一种8-氟代衍生物(AT-3970)具有低得多的顺磁效应且没有特异性结合区域。3. 在重组的CYP1A2系统中,依诺沙星对非那西丁O-去乙基化表现出最有效的抑制作用。诺氟沙星对代谢的抑制作用较小,而AT-3970具有较弱的抑制活性。4. 氟喹诺酮类药物与CYP1A2活性位点的结合能力可能决定它们对非那西丁代谢的抑制活性。

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