通过控制释放开发高肝清除药物的潜力:基尔霍夫定律的教训
Leslie Z Benet1, Markus Ville Tiitto1, Jasleen K Sodhi1
1Department of Bioengineering and Therapeutic Sciences, Schools of Pharmacy and Medicine, University of California San Francisco, San Francisco, CA, USA.
概括
控制释放配方为高清除药物提供了显著的优势,使药物清除能够独立于患者的药理动力学而可预测. 这种方法使具有挑战性的高清除化合物更适合开发.
科学领域:
- 药理动力学 药理动力学
- 药物开发 药物开发
- 配方科学科学 配方科学
背景情况:
- 清除率高的药物通常会因为快速消除而带来发展挑战.
- 制药赞助商通常会为这些实体寻求低清除的备用化合物.
- 现有的药理动力学原理表明,药物递送速度不会影响测量清除.
研究的目的:
- 质疑药物递送率与药物清除无关的原则.
- 为了证明控制释放配方对高清除药物的优势.
- 通过配方设计,提出一种新的方法来开发高清除化合物.
主要方法:
- 从物理中利用Kirchhoff定律来推导药物清除和消除过程.
- 研究了受控药物递送率对体内清除的影响.
- 专注于高肝清除药物及其配方特征.
主要成果:
- 药物输送速度 *可以 *影响测量的药物清除,这与既定原则相反.
- 控制释放配方可以使药物的清除取决于剂型的释放速度,而不是固有的药物特性.
- 这种配方控制的清除绕过了诸如非线性动力学,药物基因组变异性和药物相互作用等问题.
结论:
- 使用可控释放策略,可以成功开发高清药物.
- 剂型设计可以决定药物的清除,为药物开发提供了一个新的范式.
- 控制释放配方在管理高清除药物方面具有未知的优势.
相关概念视频
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