3D microperfusion of mesoscale human microphysiological liver models improves functionality and recapitulates hepatic zonation
Date
01/11/2023Author
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Abstract
Hepatic in vitro models that accurately replicate phenotypes and functionality of the human liver are needed for applications in toxicology, pharmacology and biomedicine. Notably, it has become clear that liver function can only be sustained in 3D culture systems at physiologically relevant cell densities. Additionally, drug metabolism and drug-induced cellular toxicity often follow distinct spatial micropatterns of the metabolic zones in the liver acinus, calling for models that capture this zonation. We demonstrate the manufacture of accurate liver microphysiological systems (MPS) via engineering of 3D stereolithography printed hydrogel chips with arrays of diffusion open synthetic vasculature channels at spacings approaching in vivo capillary distances. Chip designs are compatible with seeding of cell suspensions or preformed liver cell spheroids. Importantly, primary human hepatocytes (PHH) and hiPSC-derived hepatocyte-like cells remain viable, exhibit improved molecular phenotypes compared to isogenic monolayer and static spheroid cultures and form interconnected tissue structures over the course of multiple weeks in perfused culture. 3D optical oxygen mapping of embedded sensor beads shows that the liver MPS recapitulates oxygen gradients found in the acini, which translates into zone-specific acet-ami-no-phen toxicity patterns. Zonation, here naturally generated by high cell densities and associated oxygen and nutrient utilization along the flow path, is also documented by spatial proteomics showing increased concentration of periportal- versus perivenous-associated proteins at the inlet region and vice versa at the outlet region. The presented microperfused liver MPS provides a promising platform for the mesoscale culture of human liver cells at phenotypically relevant densities and oxygen exposures.
Citation
Wesseler , M F , Taebnia , N , Harrison , S , Youhanna , S , Preiss , L C , Kemas , A M , Vegvari , A , Mokry , J , Sullivan , G J , Lauschke , V M & Larsen , N B 2023 , ' 3D microperfusion of mesoscale human microphysiological liver models improves functionality and recapitulates hepatic zonation ' , Acta Biomaterialia , vol. 171 , pp. 336-349 . https://doi.org/10.1016/j.actbio.2023.09.022
Publication
Acta Biomaterialia
Status
Peer reviewed
ISSN
1742-7061Type
Journal article
Rights
© 2023 The Author(s). This is an open access article distributed under the terms of the Creative Commons CC-BY license (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Description
Funding: The work was funded by Independent Research Fund Denmark (grant number 7017–00366B and 2035-00186B), the Novo Nordisk Foundation (grant number NNF16OC0022166), the Technical University of Denmark, Department of Health Technology, the Swedish Research Council (grant agreement numbers: 2016–01153, 2016–01154 and 2019–01837), by the EU/EFPIA/OICR/McGill/KTH/Diamond Innovative Medicines Initiative 2 Joint Undertaking (EUbOPEN grant number 875510) and by the Robert Bosch Foundation, Stuttgart, Germany. This work was partly supported by the Research Council of Norway through its Centres of Excellence funding scheme (project number 262613 to GS), and FRIPRO grants (project number 247624 to GS).Collections
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