在人体和各种实验动物的肝脏显微体中的In Vitro Ciclopirox糖化
Wenjing Li1, Yufan Xue1, Feng Zhang2
1School of Life Science, Innovation Center of Targeted Development of Medicinal Resources (iCTM), Anqing Normal University, 1318 Jixianbei Road, Anqing, 246133, People's Republic of China.
European journal of drug metabolism and pharmacokinetics
|July 11, 2024
概括
在人类中主要由UGT1A9驱动的Ciclopirox葡萄化,显示出显著的物种依赖的变化. 了解这些差异对于预测循环氧非常重要.
科学领域:
- 药理学 药理学是指药理学的学科.
- 药物新陈代谢 药物新陈代谢
- 生物化学 生物化学
背景情况:
- 作为一种常见的抗真菌药物,西克洛皮洛克斯经历了广泛的葡萄化,这是一个鲜为人知的过程,阻碍了新的应用.
- 葡萄糖化显著影响洛皮洛克斯的处置和潜在活动.
研究的目的:
- 为了表型化循环皮洛克斯的葡萄糖化途径.
- 为了研究克洛皮洛克斯糖化中的物种特异性差异.
主要方法:
- 在人类肝脏显微体 (HLM) 和动物模型中研究了环洛皮洛克斯葡萄糖化.
- 使用了复合尿素二酸糖转移酶 (UGT),酶动力学和选择性抑制剂.
- 确定了个体UGT异型在代谢途径中的作用.
主要成果:
- HLM表现出高的葡萄化活性,其中UGT1A9是主要的异型.
- UGT1A9的动力学与HLM相似,其选择性抑制剂马格诺洛尔 (magnolol) 强烈抑制了葡萄糖化.
- 在各种动物模型中观察到环皮洛克斯葡萄化中的显著物种差异.
结论:
- UGT1A9是主要的酶,负责人类的循环氧糖化.
- 西克洛皮洛克斯的药理和毒理效应可能取决于UGT1A9的活性和物种.
- 特定物种的代谢特征需要在药物开发和风险评估中仔细考虑.
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