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

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 potentia...

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Veröffentlicht in:ACS biomaterials science & engineering 2017-06, Vol.3 (6), p.951-959
Hauptverfasser: Pocock, Kyall, Delon, Ludivine, Bala, Vaskor, Rao, Shasha, Priest, Craig, Prestidge, Clive, Thierry, Benjamin
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container_issue 6
container_start_page 951
container_title ACS biomaterials science & engineering
container_volume 3
creator Pocock, Kyall
Delon, Ludivine
Bala, Vaskor
Rao, Shasha
Priest, Craig
Prestidge, Clive
Thierry, Benjamin
description 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.
doi_str_mv 10.1021/acsbiomaterials.7b00023
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