A microfluidic device for a pharmacokinetic–pharmacodynamic (PK–PD) model on a chip

Микрофлюидное устройство для реализации фармакокинетико-фармакодинамической (PK–PD) модели на чипе
Jong Hwan Sung, Carrie Kam, Michael L. Shuler
2010-01-01

5-fluorouracil toxicitymicrofluidic cell culture analogmulti-organ interactionspharmacokinetic–pharmacodynamic modelingpumpless gravity-induced flow
Drug discovery is often impeded by the poor predictability of in vitro assays for drug toxicity. One primary reason for this observation is the inability to reproduce the pharmacokinetics (PK) of drugs in vitro. Mathematical models to predict the pharmacokinetics-pharmacodynamics (PK-PD) of drugs are available, but have several limitations, preventing broader application. A microscale cell culture analog (microCCA) is a microfluidic device based on a PK-PD model, where multiple cell culture chambers are connected with fluidic channels to mimic multi-organ interactions and test drug toxicity in a pharmacokinetic-based manner. One critical issue with microfluidics, including the microCCA, is that specialized techniques are required for assembly and operation, limiting its usability to non-experts. Here, we describe a novel design, with enhanced usability while allowing hydrogel-cell cultures of multiple types. Gravity-induced flow enables pumpless operation and prevents bubble formation. Three cell lines representing the liver, tumor and marrow were cultured in the three-chamber microCCA to test the toxicity of an anticancer drug, 5-fluorouracil. The result was analyzed with a PK-PD model of the device, and compared with the result in static conditions. Each cell type exhibited differential responses to 5-FU, and the responses in the microfluidic environment were different from those in static environment. Combination of a mathematical modeling approach (PK-PD modeling) and an in vitro experimental approach (microCCA) provides a novel platform with improved predictability for testing drug toxicity and can help researchers gain a better insight into the drug's mechanism of action.
1
A novel microfluidic cell culture analog integrates PK–PD modeling with multi-organ cell cultures to improve in vitro drug-toxicity prediction.
2
A three-chamber system successfully cultured liver, tumor, and marrow cell lines to evaluate the anticancer drug 5-fluorouracil.
3
Combining microCCA experiments with device-specific PK–PD modeling provides mechanistic insight into drug action and a more pharmacokinetically relevant toxicity-testing platform.
4
The redesigned device enhances usability, supports multiple hydrogel-based cell cultures, operates without pumps through gravity-induced flow, and prevents bubble formation.
5
The three cell types showed differential responses to 5-fluorouracil, and microfluidic responses differed from those observed under static culture conditions.

the three-chamber microfluidic cell culture analog (microCCA) containing liver, tumor, and marrow cell cultures for testing 5-fluorouracil toxicity

pharmacokinetic–pharmacodynamic drug-toxicity responses and differential cell-type effects under microfluidic versus static culture conditions

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2010-01-01
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Jong Hwan Sung
Carrie Kam
Michael L. Shuler
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