AI Article Synopsis

  • Primary human hepatocytes lose their advanced liver functions quickly in conventional 2D cultures, making it hard to study liver function and therapies.
  • The study presents a 3D lobular liver tissue model that mimics the liver's natural structure, demonstrating advanced functions like drug metabolism and viral infection support for over 5 months.
  • This model helps predict dangerous drug reactions and offers a promising platform for future liver-related research and cell replacement therapies.

Article Abstract

A major challenge for studying authentic liver cell function and cell replacement therapies is that primary human hepatocytes rapidly lose their advanced function in conventional, 2-dimensional culture platforms. Here, we describe the fabrication of 3-dimensional hexagonally arrayed lobular human liver tissues inspired by the liver's natural architecture. The engineered liver tissues exhibit key features of advanced differentiation, such as human-specific cytochrome P450-mediated drug metabolism and the ability to support efficient infection with patient-derived inoculums of hepatitis C virus. The tissues permit the assessment of antiviral agents and maintain their advanced functions for over 5 months in culture. This extended functionality enabled the prediction of a fatal human-specific hepatotoxicity caused by fialuridine (FIAU), which had escaped detection by preclinical models and short-term clinical studies. The results obtained with the engineered human liver tissue in this study provide proof-of-concept determination of human-specific drug metabolism, demonstrate the ability to support infection with human hepatitis virus derived from an infected patient and subsequent antiviral drug testing against said infection, and facilitate detection of human-specific drug hepatotoxicity associated with late-onset liver failure. Looking forward, the scalability and biocompatibility of the scaffold are also ideal for future cell replacement therapeutic strategies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5453699PMC
http://dx.doi.org/10.1172/jci.insight.90853DOI Listing

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