Literature DB >> 28966094

Elasticity-based development of functionally enhanced multicellular 3D liver encapsulated in hybrid hydrogel.

Ho-Joon Lee1, Myung Jin Son2, Jiwon Ahn1, Soo Jin Oh3, Mihee Lee1, Ansoon Kim4, Yun-Ji Jeung5, Han-Gyeul Kim6, Misun Won6, Jung Hwa Lim7, Nam-Soon Kim6, Cho-Rock Jung8, Kyung-Sook Chung9.   

Abstract

Current in vitro liver models provide three-dimensional (3-D) microenvironments in combination with tissue engineering technology and can perform more accurate in vivo mimicry than two-dimensional models. However, a human cell-based, functionally mature liver model is still desired, which would provide an alternative to animal experiments and resolve low-prediction issues on species differences. Here, we prepared hybrid hydrogels of varying elasticity and compared them with a normal liver, to develop a more mature liver model that preserves liver properties in vitro. We encapsulated HepaRG cells, either alone or with supporting cells, in a biodegradable hybrid hydrogel. The elastic modulus of the 3D liver dynamically changed during culture due to the combined effects of prolonged degradation of hydrogel and extracellular matrix formation provided by the supporting cells. As a result, when the elastic modulus of the 3D liver model converges close to that of the in vivo liver (≅ 2.3 to 5.9 kPa), both phenotypic and functional maturation of the 3D liver were realized, while hepatic gene expression, albumin secretion, cytochrome p450-3A4 activity, and drug metabolism were enhanced. Finally, the 3D liver model was expanded to applications with embryonic stem cell-derived hepatocytes and primary human hepatocytes, and it supported prolonged hepatocyte survival and functionality in long-term culture. Our model represents critical progress in developing a biomimetic liver system to simulate liver tissue remodeling, and provides a versatile platform in drug development and disease modeling, ranging from physiology to pathology. STATEMENT OF SIGNIFICANCE: We provide a functionally improved 3D liver model that recapitulates in vivo liver stiffness. We have experimentally addressed the issues of orchestrated effects of mechanical compliance, controlled matrix formation by stromal cells in conjunction with hepatic differentiation, and functional maturation of hepatocytes in a dynamic 3D microenvironment. Our model represents critical progress in developing a biomimetic liver system to simulate liver tissue remodeling, and provides a versatile platform in drug development and disease modeling, ranging from physiology to pathology. Additionally, recent advances in the stem-cell technologies have made the development of 3D organoid possible, and thus, our study also provides further contribution to the development of physiologically relevant stem-cell-based 3D tissues that provide an elasticity-based predefined biomimetic 3D microenvironment.
Copyright © 2017 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D culture; Biomimetic liver; Elastic modulus; Hepatocyte; Hybrid hydrogel; Semi-interpenetrating networks (Semi-IPNs)

Mesh:

Substances:

Year:  2017        PMID: 28966094     DOI: 10.1016/j.actbio.2017.09.041

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  6 in total

1.  DMSO-free highly differentiated HepaRG spheroids for chronic toxicity, liver functions and genotoxicity studies.

Authors:  Marie Cuvellier; Frédéric Ezan; Georges Baffet; Sophie Langouët; Sophie Rose; Jennifer Carteret; Arnaud Bruyère; Vincent Legagneux; Fabrice Nesslany
Journal:  Arch Toxicol       Date:  2021-11-11       Impact factor: 5.153

2.  Bioprinting Perfusion-Enabled Liver Equivalents for Advanced Organ-on-a-Chip Applications.

Authors:  Tobias Grix; Alicia Ruppelt; Alexander Thomas; Anna-Klara Amler; Benjamin P Noichl; Roland Lauster; Lutz Kloke
Journal:  Genes (Basel)       Date:  2018-03-22       Impact factor: 4.096

3.  Targeting CYP4A attenuates hepatic steatosis in a novel multicellular organotypic liver model.

Authors:  Minji Lee; Seon Ju Mun; Jae-Sung Ryu; Sin-Hyoung Hong; Ho-Joon Lee; Hyo-Suk Ahn; Kyung-Sook Chung; Gun-Hwa Kim; Myung Jin Son
Journal:  J Biol Eng       Date:  2019-08-08       Impact factor: 4.355

4.  Generation of proliferating human adult hepatocytes using optimized 3D culture conditions.

Authors:  Sophie Rose; Frédéric Ezan; Marie Cuvellier; Arnaud Bruyère; Vincent Legagneux; Sophie Langouët; Georges Baffet
Journal:  Sci Rep       Date:  2021-01-12       Impact factor: 4.379

Review 5.  Towards organoid culture without Matrigel.

Authors:  Mark T Kozlowski; Christiana J Crook; Hsun Teresa Ku
Journal:  Commun Biol       Date:  2021-12-10

Review 6.  Progressive 3D Printing Technology and Its Application in Medical Materials.

Authors:  Daoyang Fan; Yan Li; Xing Wang; Tengjiao Zhu; Qi Wang; Hong Cai; Weishi Li; Yun Tian; Zhongjun Liu
Journal:  Front Pharmacol       Date:  2020-03-20       Impact factor: 5.810

  6 in total

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