Kenta Shinha, Hiroko Nakamura, Hiroshi Arakawa, Masaki Nishikawa, Yukio Kato, Yasuyuki Sakai, Hiroshi Kimura
Reducing reliance on animal studies while improving human relevance requires new approach methodologies (NAMs) that reproduce dynamic biological interactions and metabolism-dependent drug exposure. Microphysiological systems (MPSs) are promising NAMs that can recapitulate selected human organ functions in vitro. However, the advantages of multi-organ MPSs over conventional culture methods have not been sufficiently validated because direct comparisons between these systems are difficult. Here, we constructed a liver-cancer MPS using a Kinetic-pump integrated microfluidic plate (KIM-Plate) containing two open, standard-well-compatible culture chambers connected by recirculating microchannels. PXB human hepatocytes and MCF7 breast cancer cells were evaluated using well-plate monoculture, conditioned-medium transfer, KIM-Plate monoculture, and dynamic KIM-Plate coculture. Dynamic coculture significantly increased MCF7 proliferation relative to KIM-Plate monoculture, whereas conditioned-medium transfer did not significantly increase proliferation relative to well-plate monoculture. PXB cells produced the active CPT-11 metabolite SN-38 and SN-38 glucuronide under both static and perfusion conditions, demonstrating sequential CPT-11-metabolizing activity in the MPS. MCF7 cells showed greater apparent sensitivity to SN-38 under perfusion than under static conditions. During CPT-11 exposure, the dynamic liver-cancer coculture was estimated to generate a gradually increasing SN-38 exposure profile and a lower SN-38 area under the concentration-time curve than conditioned-medium exposure. Nevertheless, observed MCF7 viability was higher than predicted from cumulative SN-38 exposure alone, suggesting that the temporal exposure profile may also have contributed to the drug response. The KIM-Plate therefore provides a tractable human cell-based NAM for investigating how continuous intercellular interactions, perfusion, and time-dependent metabolism collectively influence drug responses, thereby providing mechanistically informative evidence for metabolism-dependent drug assessment.