泼尼松龙和西罗莫司在肾上腺切除大鼠体内的药代动力学和药物免疫动力学相互作用。

G M Ferron, N A Pyszczynski, W J Jusko
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引用次数: 8

摘要

泼尼松龙(Pred)和西罗莫司(SIR)是通过不同机制作用的免疫抑制化合物,在体外发现了适度的协同作用。这两种药物都部分由CYP3A酶代谢。在肾上腺切除的雄性大鼠静脉注射安慰剂、Pred (5mg /kg)、SIR (1mg /kg)或Pred加SIR (5mg /kg和1mg /kg剂量)后,追踪Pred血浆和SIR全血浓度48小时,同时监测循环t辅助细胞和t细胞毒性细胞计数。体外全血淋巴细胞增殖标志着宿主的反应性。一个扩展的间接PK/PD模型用于描述对这些药物的反应,单独或联合。相互作用的两阶段人群分析显示药物PK没有改变。平均Pred血浆清除率为0.655 L/hr(组间变异性:11%),并且随着体重的增加而显著增加。平均SIR全血容量分布和清除率分别为5.6 L(62%)和0.28 L/hr(32%),动物标度呈重量-功率比例。体外代谢研究显示,SIR对Pred或泼尼松CYP3A代谢无显著抑制作用(50微米),但该途径占Pred代谢的比例不到5%。Pred减少t辅助淋巴细胞的数量,单独治疗的平均IC50为37.8 nM (21%), SIR治疗的平均IC50为12.3 nM(130%)。t细胞毒性淋巴细胞的结果相似。SIR增加淋巴细胞数量,t辅助细胞的平均IC50为52.2 nM (24%), t细胞毒性细胞的平均IC50为28.8 nM(51%)。考虑到药物对淋巴细胞运输的影响,Pred直接抑制体外淋巴细胞增殖,平均IC50为1.08 nM(38%)。经过一个转导步骤后,SIR抑制增殖,平均IC50为1.00 nM(26%)。通过添加单一药物效应,合理地量化药物共给药后的反应。由于,在大鼠的药理学浓度下,Pred和SIR在它们的PK中不相互作用,但在它们的动力学中协同或加性相互作用,它们的联合治疗应用是有希望的。肾上腺切除大鼠可能是表征药物对淋巴细胞运输和反应性影响的合适动物模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pharmacokinetic and pharmacoimmunodynamic interactions between prednisolone and sirolimus in adrenalectomized rats.

Prednisolone (Pred) and sirolimus (SIR) are immunosuppressive compounds acting through different mechanisms with moderate synergism found in vitro. Both drugs are metabolized partly by CYP3A enzymes. After i.v. administration of placebo, Pred (5 mg/kg), SIR (1 mg/kg), or Pred with SIR (5 and 1 mg/kg doses) to adrenalectomized male rats, Pred plasma and SIR whole blood concentrations were followed for 48 hr along with circulating T-helper and T-cytotoxic cell counts. Ex vivo whole blood lymphocyte proliferation marked host responsiveness. An extended indirect PK/PD model was used to describe responses to these drugs, alone or combined. An interactive two-stage population analysis showed no modification in drug PK. Mean Pred plasma clearance was 0.655 L/hr (interrat++ variability: 11%) and significantly increased with weight. Mean SIR whole blood volume of distribution and clearance were 5.6 L (62%) and 0.28 L/hr (32%), and animal scaling showed weight-power proportionality. In vitro metabolism studies showed no significant inhibition of Pred or prednisone CYP3A metabolism by SIR (50 microM), but this pathway accounted for less than 5% of Pred metabolism. Pred decreased numbers of T-helper lymphocytes with a mean IC50 of 37.8 nM (21%) alone or 12.3 nM (130%) with SIR. Results for T-cytotoxic lymphocytes were similar. SIR increased lymphocyte numbers with a mean IC50 of 52.2 nM (24%) for T-helper and 28.8 nM (51%) for T-cytotoxic cells. Taking into account drug effects on lymphocyte trafficking, Pred directly inhibited ex vivo lymphocyte proliferation with a mean IC50 of 1.08 nM (38%). SIR, after a transduction step, inhibited proliferation with a mean IC50 of 1.00 nM (26%). Responses measured after drug coadministration were reasonably quantitated by addition of single drug effects. Since, at pharmacologic concentrations in rats, Pred and SIR did not interact in their PK but synergistically or additively interact in their dynamics, their joint therapeutic use is promising. The adrenalectomized rat may be a suitable animal model to characterize drug effects on lymphocyte trafficking and reactivity.

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