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首页> 外文期刊>The Journal of Pharmacology and Experimental Therapeutics: Official Publication of the American Society for Pharmacology and Experimental Therapeutics >Mechanism-Based Pharmacokinetic-Pharmacodynamic Modeling of the Respiratory-Depressant Effect of Buprenorphine and Fentanyl in Rats
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Mechanism-Based Pharmacokinetic-Pharmacodynamic Modeling of the Respiratory-Depressant Effect of Buprenorphine and Fentanyl in Rats

机译:基于机制的丁丙诺啡和芬太尼对大鼠呼吸抑制作用的药代动力学药效学模型

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The purpose of this investigation was to develop a mechanism-based pharmacokinetic/pharmacodynamic(PK/PD)model to predict the time course of respiratory depression following administration of opioids in rats.The proposed model is based on receptor theory and aims at the separate characterization of biophase distribution and receptor association/dissociation kinetics as determinants of hysteresis between plasma concentration and effect.Individual concentration time courses of buprenorphine and fentanyl were determined in conjunction with continuous monitoring of respiratory depression.Buprenorphine and fentanyl were administered intravenously in various doses.For buprenorphine hysteresis was best described by a combined biophase distribution-receptor association/dissociation model with a linear transducer function.The values of the parameter estimates of the rate constants for biophase distribution(k_(eo)),receptor association(k_(on)),and dissociation(k_(off))were 0.0348 min~(-1)[95% confidence interval(Cl),0.0193-0.0503 min~(-1)],0.57 mlg/min(95% Cl,0.38-0.76 mlg/min),and 0.0903 min~(-1)(95% Cl,0.035-0.196 min~(-1)),respectively.The values of the equilibrium dissociation constant and intrinsic activity were 0.16 ng/ml and 0.48(95% Cl,0.45-0.51),respectively.The value of the K_d is close to reported estimates of receptor affinity in vitro confirming the validity of the mechanism-based PK/PD model.For fentanyl,unrealistically high estimates of the rate constants for receptor association and dissociation were obtained,indicating that hysteresis is caused solely by biophase distribution kinetics.This is consistent with fentanyl's fast receptor association/ dissociation kinetics in vitro.As a result,the mechanism-based PK/PD model of fentanyl could be reduced to a biophase distribution model with fractional sigmoid E_(max)pharmacodynamic model.
机译:这项研究的目的是建立一种基于机制的药代动力学/药效学(PK / PD)模型来预测大鼠服用阿片类药物后呼吸抑制的时间过程。该模型基于受体理论,旨在进行单独表征以生物相分布和受体缔合/解离动力学作为确定血浆浓度和作用之间滞后的决定因素最好用具有线性换能器功能的生物相分布-受体缔合/解离模型组合来描述磁滞。生物相分布速率常数的参数估计值(k_(eo)),受体缔合(k_(on)),离解(k_(off))为0.0348 min〜(-1)[95%co可信区间(Cl),0.0193-0.0503 min〜(-1)],0.57 ml / ng / min(95%Cl,0.38-0.76 ml / ng / min),0.0903 min〜(-1)(95%Cl平衡解离常数和内在活性分别为0.035-0.196 min〜(-1).0.16 ng / ml和0.48(95%Cl,0.45-0.51).K_d值接近芬太尼对受体缔合和解离的速率常数进行了不切实际的高估计,表明滞后现象完全是由生物相分布动力学引起的。这与芬太尼的快速受体缔合/离解动力学在体外是一致的。因此,可以将基于机制的芬太尼的PK / PD模型简化为具有乙状乙状结肠E_(max)药效模型的生物相分布模型。

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