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A Diffusion-Based and Dynamic 3D-Printed Device That Enables Parallel in Vitro Pharmacokinetic Profiling of Molecules

机译:基于扩散的动态3D打印设备,可实现分子的体外药代动力学分析

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The process of bringing a drug to market involves many steps, including the preclinical stage, where various properties of the drug candidate molecule are determined. These properties, which include drug absorption, distribution, metabolism, and excretion, are often displayed in a pharmacokinetic (PK) profile. While PK profiles are determined in animal models, in vitro systems that model in vivo processes are available, although each possesses shortcomings. Here, we present a 3D-printed, diffusion-based, and dynamic in vitro PK device. The device contains six flow channels, each with integrated porous membrane-based insert wells. The pores of these membranes enable drugs to freely diffuse back and forth between the flow channels and the inserts, thus enabling both loading and clearance portions of a standard PK curve to be generated. The device is designed to work with 96-well plate technology and consumes single digit milliliter volumes to generate multiple PK profiles, simultaneously. Generation of PK profiles by use of the device was initially performed with fluorescein as a test molecule. Effects of such parameters as flow rate, loading time, volume in the insert well, and initial concentration of the test molecule were investigated. A prediction model was generated from this data, enabling the user to predict the concentration of the test molecule at any point along the PK profile within a coefficient of variation of similar to 5%. Depletion of the analyte from the well was characterized and was determined to follow first-order rate kinetics, indicated by statistically equivalent (p > 0.05) depletion half-lives that were independent of the starting concentration. A PK curve for an approved antibiotic, levofloxacin, was generated to show utility beyond the fluorescein test molecule.
机译:将药物推向市场的过程涉及许多步骤,包括临床前阶段,在该阶段中确定候选药物分子的各种特性。这些特性(包括药物吸收,分布,代谢和排泄)通常显示在药代动力学(PK)曲线中。虽然在动物模型中确定了PK谱,但可以使用模拟体内过程的体外系统,尽管每个系统都有缺点。在这里,我们介绍一种3D打印的,基于扩散的动态体外PK设备。该设备包含六个流道,每个流道带有集成的基于多孔膜的插入孔。这些膜的孔使药物能够在流动通道和插入物之间自由地来回扩散,从而能够生成标准PK曲线的上样部分和清除部分。该设备设计用于96孔板技术,消耗单位体积的毫升以同时生成多个PK曲线。首先使用荧光素作为测试分子,通过使用该装置来生成PK曲线。研究了诸如流速,加载时间,插入孔中的体积以及测试分子的初始浓度等参数的影响。根据该数据生成了预测模型,使用户能够预测在PK曲线内任意点的测试分子浓度,其变化系数接近5%。表征了从孔中分析物的消耗,并确定其遵循一级速率动力学,这由统计学上等价的(p> 0.05)消耗半衰期表示,该半衰期与起始浓度无关。产生了一种批准的抗生素左氧氟沙星的PK曲线,显示出超出荧光素测试分子的效用。

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