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首页> 外文期刊>Pharmaceutical research >Exploration of optimal dosing regimens of haloperidol, a D2 Antagonist, via modeling and simulation analysis in a D2 receptor occupancy study.
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Exploration of optimal dosing regimens of haloperidol, a D2 Antagonist, via modeling and simulation analysis in a D2 receptor occupancy study.

机译:通过D2受体占用研究中的建模和仿真分析,探索D2拮抗剂氟哌啶醇的最佳给药方案。

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摘要

To evaluate the potential usage of D(2) receptor occupancy (D2RO) measured by positron emission tomography (PET) in antipsychotic development.In this randomized, parallel group study, eight healthy male volunteers received oral doses of 0.5 (n?=?3), 1 (n?=?2), or 3?mg (n?=?3) of haloperidol once daily for 7?days. PET's were scanned before haloperidol, and on days 8, 12, with serial pharmacokinetic sampling on day 7. Pharmacokinetics and binding potential to D(2) receptor in putamen and caudate nucleus over time were analyzed using NONMEM, and simulations for the profiles of D2RO over time on various regimens of haloperidol were conducted to find the optimal dosing regimens.One compartment model with a saturable binding compartment, and inhibitory E(max) model in the effect compartment best described the data. Plasma haloperidol concentrations at half-maximal inhibition were 0.791 and 0.650?ng/ml, in putamen and caudate nucleus. Simulation suggested haloperidol 2?mg every 12?h is near the optimal dose.This study showed that sparse D2RO measurements in steady state pharmacodynamic design after multiple dosing could reveal the possibility of treatment effect of D(2) antagonist, and could identify the potential optimal doses for later clinical studies by modeling and simulation.
机译:为了评估通过正电子发射断层扫描(PET)测量的D(2)受体占有率(D2RO)在抗精神病药物发展中的潜在用途。在这项随机平行小组研究中,八名健康男性志愿者接受0.5的口服剂量(n?=?3 ),氟哌啶醇1(n?=?2)或3?mg(n?=?3)每天一次,共7天。在氟哌啶醇之前和第8、12天对PET进行扫描,第7天进行系列药代动力学采样。使用NONMEM分析了随时间变化的壳聚糖和尾状核中D(2)受体的药代动力学和结合潜力,并模拟了D2RO的概况随着时间的流逝,对氟哌啶醇的各种方案进行了研究,以找到最佳剂量方案。具有饱和结合区室的一个区室模型和效果区室中的抑制性E(max)模型最能说明数据。在壳核和尾状核中,氟哌啶醇的半数最大抑制浓度为0.791和0.650?ng / ml。模拟表明氟哌啶醇每12?h 2?mg接近最佳剂量。这项研究表明,多次给药后稳态药效学设计中稀疏的D2RO测量可以揭示D(2)拮抗剂治疗效果的可能性,并可以确定潜在的通过建模和仿真为以后的临床研究选择最佳剂量。

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