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Engineered Livers for Infectious Diseases

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2018

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Elsevier
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Gural, Nil, Liliana Mancio-Silva, Jiang He, and Sangeeta N. Bhatia. 2018. “Engineered Livers for Infectious Diseases.” Cellular and Molecular Gastroenterology and Hepatology 5 (2): 131-144. doi:10.1016/j.jcmgh.2017.11.005. http://dx.doi.org/10.1016/j.jcmgh.2017.11.005.

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Abstract

Engineered liver systems come in a variety of platform models, from 2-dimensional cocultures of primary human hepatocytes and stem cell–derived progeny, to 3-dimensional organoids and humanized mice. Because of the species-specificity of many human hepatropic pathogens, these engineered systems have been essential tools for biologic discovery and therapeutic agent development in the context of liver-dependent infectious diseases. Although improvement of existing models is always beneficial, and the addition of a robust immune component is a particular need, at present, considerable progress has been made using this combination of research platforms. We highlight advances in the study of hepatitis B and C viruses and malaria-causing Plasmodium falciparum and Plasmodium vivax parasites, and underscore the importance of pairing the most appropriate model system and readout modality with the particular experimental question at hand, without always requiring a platform that recapitulates human physiology in its entirety.

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Liver, Liver Models, 3D, in vitro, in vivo, Hepatotropic, Pathogen, HBV, HCV, Malaria, Falciparum, Vivax, 2D, 2-dimensional, 3D, 3-dimensional, EBOV, Ebola virus, HBV, hepatitis B virus, HBC, hepatitis C virus, HLC, hepatocyte-like cells, iHLC, induced pluripotent stem cell–derived hepatocyte-like cells, LASV, Lassa virus, MPCC, micropatterned coculture system, PCR, polymerase chain reaction, SACC, self-assembling coculture

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