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用于口腔化疗药物摄取高效体外筛选的芯片肠道微流控模型

Intestine-on-a-Chip Microfluidic Model for Efficient in Vitro Screening of Oral Chemotherapeutic Uptake.

作者信息

Pocock Kyall, Delon Ludivine, Bala Vaskor, Rao Shasha, Priest Craig, Prestidge Clive, Thierry Benjamin

机构信息

Future Industries Institute, University of South Australia, Mawson Lakes Campus, Mawson Lakes, Adelaide, South Australia 5095, Australia.

School of Pharmacy and Medical Sciences, University of South Australia, City East Campus, Adelaide, South Australia 5000, Australia.

出版信息

ACS Biomater Sci Eng. 2017 Jun 12;3(6):951-959. doi: 10.1021/acsbiomaterials.7b00023. Epub 2017 May 30.

Abstract

Many highly effective chemotherapeutic agents can only be administered intravenously as their oral delivery is compromised by low gastro-intestinal solubility and permeability. SN-38 (7-ethyl-10-hydroxycamptothecin) is one such drug; however, recently synthesized lipophilic prodrugs offer a potential solution to the low oral bioavailability issue. Here we introduce a microfluidic-based intestine-on-a-chip (IOAC) model, which has the potential to provide new insight into the structure-permeability relationship for lipophilic prodrugs. More specifically, the IOAC model utilizes external mechanical cues that induce specific differentiation of an epithelial cell monolayer to provide a barrier function that exhibits an undulating morphology with microvilli expression on the cell surface; this is more biologically relevant than conventional Caco-2 Transwell models. IOAC permeability data for SN38 modified with fatty acid esters of different chain lengths and at different molecular positions correlate excellently with water-lipid partitioning data and have the potential to significantly advance their preclinical development. In addition to advancing mechanistic insight into the permeability of many challenging drug candidates, we envisage the IOAC model to also be applicable to nanoparticle and biological entities.

摘要

许多高效化疗药物只能通过静脉给药,因为它们的口服给药会因胃肠道溶解度和渗透性低而受到影响。SN-38(7-乙基-10-羟基喜树碱)就是这样一种药物;然而,最近合成的亲脂性前药为低口服生物利用度问题提供了一种潜在的解决方案。在这里,我们介绍一种基于微流控的肠道芯片(IOAC)模型,它有可能为亲脂性前药的结构-渗透性关系提供新的见解。更具体地说,IOAC模型利用外部机械信号诱导上皮细胞单层的特定分化,以提供一种屏障功能,该屏障功能呈现出具有细胞表面微绒毛表达的起伏形态;这比传统的Caco-2 Transwell模型在生物学上更相关。用不同链长和不同分子位置的脂肪酸酯修饰的SN38的IOAC渗透性数据与水-脂分配数据高度相关,并且有可能显著推进其临床前开发。除了深入了解许多具有挑战性的候选药物的渗透性机制外,我们设想IOAC模型也适用于纳米颗粒和生物实体。

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