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Predicting Hepatic Disposition Properties of Cationic Drugs Using a Physiologically Based, Agent-Oriented In Silico Liver

机译:在硅肝中使用生理学基于基于药剂的药物预测阳离子药物的肝化性质

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The In Silico Liver (ISL) plugs together autonomous software objects that represent hepatic components at different scales and levels of details. ISL parameters sensitive to drug-specific physicochemical properties (PCPs) were tuned so that ISL outflow profiles from a single ISL matched in situ perfused rat liver outflow profiles of sucrose and six cationic drugs. Antipyrine and diltiazem have the greatest degree of separation in PCP space of all pairs of the six compounds. Data for the other four, more closely spaced compounds comprised a training set for a simple artificial neural network (ANN) that was used to predict the PCP-sensitive, ISL parameter values for antipyrine and diltiazem given their PCPs. Those predicted parameter values were combined with the already-validated, drug-insensitive ISL parameter values. Simulation of the resulting ISLs gave expected liver perfusion outflow profiles for antipyrine and diltiazem that were within two-fold of the observed profiles.
机译:Silico肝脏(ISL)插入自动软件对象,代表不同尺度和细节水平的肝组件。调整对药物特异性物理化学性质(PCP)敏感的ISL参数,以便从蔗糖和六种阳离子药物的原位灌注大鼠肝外流谱匹配的单一ISL的ISL流出曲线。反紫贮和德尔蒂蒂姆在六种化合物的所有对PCP空间中具有最大程度的分离。其他四个,更紧密间隔的化合物的数据包括用于预测其PCP的简单人工神经网络(ANN)的简单人工神经网络(ANN),用于预测其PCP和DILTIAZEM的PCP敏感性的ISL参数值。这些预测的参数值与已经验证的药物不敏感的ISL参数值组合。所得ISL的模拟为检测到的型材的两倍内的反紫红油和达替替斯嗪进行了预期的肝灌注流出曲线。

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