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Scalable production of tissue-like vascularized liver organoids from human PSCs

The lack of physiological parity between 2D cell culture and in vivo culture has led to the development of more organotypic models, such as organoids. Organoid models have been developed for a number of tissues, including the liver. Current organoid protocols are characterized by a reliance on extra...

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Autores principales: Harrison, Sean P., Siller, Richard, Tanaka, Yoshiaki, Chollet, Maria Eugenia, de la Morena-Barrio, María Eugenia, Xiang, Yangfei, Patterson, Benjamin, Andersen, Elisabeth, Bravo-Pérez, Carlos, Kempf, Henning, Åsrud, Kathrine S., Lunov, Oleg, Dejneka, Alexandr, Mowinckel, Marie-Christine, Stavik, Benedicte, Sandset, Per Morten, Melum, Espen, Baumgarten, Saphira, Bonanini, Flavio, Kurek, Dorota, Mathapati, Santosh, Almaas, Runar, Sharma, Kulbhushan, Wilson, Steven R., Skottvoll, Frøydis S., Boger, Ida C., Bogen, Inger Lise, Nyman, Tuula A., Wu, Jun Jie, Bezrouk, Ales, Cizkova, Dana, Corral, Javier, Mokry, Jaroslav, Zweigerdt, Robert, Park, In-Hyun, Sullivan, Gareth J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10545717/
https://www.ncbi.nlm.nih.gov/pubmed/37653039
http://dx.doi.org/10.1038/s12276-023-01074-1
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author Harrison, Sean P.
Siller, Richard
Tanaka, Yoshiaki
Chollet, Maria Eugenia
de la Morena-Barrio, María Eugenia
Xiang, Yangfei
Patterson, Benjamin
Andersen, Elisabeth
Bravo-Pérez, Carlos
Kempf, Henning
Åsrud, Kathrine S.
Lunov, Oleg
Dejneka, Alexandr
Mowinckel, Marie-Christine
Stavik, Benedicte
Sandset, Per Morten
Melum, Espen
Baumgarten, Saphira
Bonanini, Flavio
Kurek, Dorota
Mathapati, Santosh
Almaas, Runar
Sharma, Kulbhushan
Wilson, Steven R.
Skottvoll, Frøydis S.
Boger, Ida C.
Bogen, Inger Lise
Nyman, Tuula A.
Wu, Jun Jie
Bezrouk, Ales
Cizkova, Dana
Corral, Javier
Mokry, Jaroslav
Zweigerdt, Robert
Park, In-Hyun
Sullivan, Gareth J.
author_facet Harrison, Sean P.
Siller, Richard
Tanaka, Yoshiaki
Chollet, Maria Eugenia
de la Morena-Barrio, María Eugenia
Xiang, Yangfei
Patterson, Benjamin
Andersen, Elisabeth
Bravo-Pérez, Carlos
Kempf, Henning
Åsrud, Kathrine S.
Lunov, Oleg
Dejneka, Alexandr
Mowinckel, Marie-Christine
Stavik, Benedicte
Sandset, Per Morten
Melum, Espen
Baumgarten, Saphira
Bonanini, Flavio
Kurek, Dorota
Mathapati, Santosh
Almaas, Runar
Sharma, Kulbhushan
Wilson, Steven R.
Skottvoll, Frøydis S.
Boger, Ida C.
Bogen, Inger Lise
Nyman, Tuula A.
Wu, Jun Jie
Bezrouk, Ales
Cizkova, Dana
Corral, Javier
Mokry, Jaroslav
Zweigerdt, Robert
Park, In-Hyun
Sullivan, Gareth J.
author_sort Harrison, Sean P.
collection PubMed
description The lack of physiological parity between 2D cell culture and in vivo culture has led to the development of more organotypic models, such as organoids. Organoid models have been developed for a number of tissues, including the liver. Current organoid protocols are characterized by a reliance on extracellular matrices (ECMs), patterning in 2D culture, costly growth factors and a lack of cellular diversity, structure, and organization. Current hepatic organoid models are generally simplistic and composed of hepatocytes or cholangiocytes, rendering them less physiologically relevant compared to native tissue. We have developed an approach that does not require 2D patterning, is ECM independent, and employs small molecules to mimic embryonic liver development that produces large quantities of liver-like organoids. Using single-cell RNA sequencing and immunofluorescence, we demonstrate a liver-like cellular repertoire, a higher order cellular complexity, presenting with vascular luminal structures, and a population of resident macrophages: Kupffer cells. The organoids exhibit key liver functions, including drug metabolism, serum protein production, urea synthesis and coagulation factor production, with preserved post-translational modifications such as N-glycosylation and functionality. The organoids can be transplanted and maintained long term in mice producing human albumin. The organoids exhibit a complex cellular repertoire reflective of the organ and have de novo vascularization and liver-like function. These characteristics are a prerequisite for many applications from cellular therapy, tissue engineering, drug toxicity assessment, and disease modeling to basic developmental biology.
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spelling pubmed-105457172023-10-04 Scalable production of tissue-like vascularized liver organoids from human PSCs Harrison, Sean P. Siller, Richard Tanaka, Yoshiaki Chollet, Maria Eugenia de la Morena-Barrio, María Eugenia Xiang, Yangfei Patterson, Benjamin Andersen, Elisabeth Bravo-Pérez, Carlos Kempf, Henning Åsrud, Kathrine S. Lunov, Oleg Dejneka, Alexandr Mowinckel, Marie-Christine Stavik, Benedicte Sandset, Per Morten Melum, Espen Baumgarten, Saphira Bonanini, Flavio Kurek, Dorota Mathapati, Santosh Almaas, Runar Sharma, Kulbhushan Wilson, Steven R. Skottvoll, Frøydis S. Boger, Ida C. Bogen, Inger Lise Nyman, Tuula A. Wu, Jun Jie Bezrouk, Ales Cizkova, Dana Corral, Javier Mokry, Jaroslav Zweigerdt, Robert Park, In-Hyun Sullivan, Gareth J. Exp Mol Med Article The lack of physiological parity between 2D cell culture and in vivo culture has led to the development of more organotypic models, such as organoids. Organoid models have been developed for a number of tissues, including the liver. Current organoid protocols are characterized by a reliance on extracellular matrices (ECMs), patterning in 2D culture, costly growth factors and a lack of cellular diversity, structure, and organization. Current hepatic organoid models are generally simplistic and composed of hepatocytes or cholangiocytes, rendering them less physiologically relevant compared to native tissue. We have developed an approach that does not require 2D patterning, is ECM independent, and employs small molecules to mimic embryonic liver development that produces large quantities of liver-like organoids. Using single-cell RNA sequencing and immunofluorescence, we demonstrate a liver-like cellular repertoire, a higher order cellular complexity, presenting with vascular luminal structures, and a population of resident macrophages: Kupffer cells. The organoids exhibit key liver functions, including drug metabolism, serum protein production, urea synthesis and coagulation factor production, with preserved post-translational modifications such as N-glycosylation and functionality. The organoids can be transplanted and maintained long term in mice producing human albumin. The organoids exhibit a complex cellular repertoire reflective of the organ and have de novo vascularization and liver-like function. These characteristics are a prerequisite for many applications from cellular therapy, tissue engineering, drug toxicity assessment, and disease modeling to basic developmental biology. Nature Publishing Group UK 2023-09-01 /pmc/articles/PMC10545717/ /pubmed/37653039 http://dx.doi.org/10.1038/s12276-023-01074-1 Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Harrison, Sean P.
Siller, Richard
Tanaka, Yoshiaki
Chollet, Maria Eugenia
de la Morena-Barrio, María Eugenia
Xiang, Yangfei
Patterson, Benjamin
Andersen, Elisabeth
Bravo-Pérez, Carlos
Kempf, Henning
Åsrud, Kathrine S.
Lunov, Oleg
Dejneka, Alexandr
Mowinckel, Marie-Christine
Stavik, Benedicte
Sandset, Per Morten
Melum, Espen
Baumgarten, Saphira
Bonanini, Flavio
Kurek, Dorota
Mathapati, Santosh
Almaas, Runar
Sharma, Kulbhushan
Wilson, Steven R.
Skottvoll, Frøydis S.
Boger, Ida C.
Bogen, Inger Lise
Nyman, Tuula A.
Wu, Jun Jie
Bezrouk, Ales
Cizkova, Dana
Corral, Javier
Mokry, Jaroslav
Zweigerdt, Robert
Park, In-Hyun
Sullivan, Gareth J.
Scalable production of tissue-like vascularized liver organoids from human PSCs
title Scalable production of tissue-like vascularized liver organoids from human PSCs
title_full Scalable production of tissue-like vascularized liver organoids from human PSCs
title_fullStr Scalable production of tissue-like vascularized liver organoids from human PSCs
title_full_unstemmed Scalable production of tissue-like vascularized liver organoids from human PSCs
title_short Scalable production of tissue-like vascularized liver organoids from human PSCs
title_sort scalable production of tissue-like vascularized liver organoids from human pscs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10545717/
https://www.ncbi.nlm.nih.gov/pubmed/37653039
http://dx.doi.org/10.1038/s12276-023-01074-1
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