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Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment

BACKGROUND: To solve the problem of liver transplantation donor insufficiency, an alternative cell transplantation therapy was investigated. We focused on amniotic epithelial cells (AECs) as a cell source because, unlike induced pluripotent stem cells, they are cost-effective and non-tumorigenic. Th...

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Autores principales: Furuya, Kinji, Zheng, Yun-Wen, Sako, Daisuke, Iwasaki, Kenichi, Zheng, Dong-Xu, Ge, Jian-Yun, Liu, Li-Ping, Furuta, Tomoaki, Akimoto, Kazunori, Yagi, Hiroya, Hamada, Hiromi, Isoda, Hiroko, Oda, Tatsuya, Ohkohchi, Nobuhiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Baishideng Publishing Group Inc 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6789189/
https://www.ncbi.nlm.nih.gov/pubmed/31616545
http://dx.doi.org/10.4252/wjsc.v11.i9.705
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author Furuya, Kinji
Zheng, Yun-Wen
Sako, Daisuke
Iwasaki, Kenichi
Zheng, Dong-Xu
Ge, Jian-Yun
Liu, Li-Ping
Furuta, Tomoaki
Akimoto, Kazunori
Yagi, Hiroya
Hamada, Hiromi
Isoda, Hiroko
Oda, Tatsuya
Ohkohchi, Nobuhiro
author_facet Furuya, Kinji
Zheng, Yun-Wen
Sako, Daisuke
Iwasaki, Kenichi
Zheng, Dong-Xu
Ge, Jian-Yun
Liu, Li-Ping
Furuta, Tomoaki
Akimoto, Kazunori
Yagi, Hiroya
Hamada, Hiromi
Isoda, Hiroko
Oda, Tatsuya
Ohkohchi, Nobuhiro
author_sort Furuya, Kinji
collection PubMed
description BACKGROUND: To solve the problem of liver transplantation donor insufficiency, an alternative cell transplantation therapy was investigated. We focused on amniotic epithelial cells (AECs) as a cell source because, unlike induced pluripotent stem cells, they are cost-effective and non-tumorigenic. The utilization of AECs in regenerative medicine, however, is in its infancy. A general profile for AECs has not been comprehensively analyzed. Moreover, no hepatic differentiation protocol for AECs has yet been established. To this end, we independently compiled human AEC libraries, purified amniotic stem cells (ASCs), and co-cultured them with mesenchymal stem cells (MSCs) and human umbilical vein endothelial cell (HUVECs) in a 3D system which induces functional hepatic organoids. AIM: To characterize AECs and generate functional hepatic organoids from ASCs and other somatic stem cells METHODS: AECs, MSCs, and HUVECs were isolated from the placentae and umbilical cords of cesarean section patients. Amnion and primary AEC stemness characteristics and heterogeneity were analyzed by immunocytochemistry, Alkaline phosphatase (AP) staining, and flow cytometry. An adherent AEC subpopulation was selected and evaluated for ASC purification quality by a colony formation assay. AEC transcriptomes were compared with those for other hepatocytes cell sources by bioinformatics. The 2D and 3D culture were compared by relative gene expression using several differentiation protocols. ASCs, MSCs, and HUVECs were combined in a 3D co-culture system to generate hepatic organoids whose structure was compared with a 3D AEC sphere and whose function was elucidated by immunofluorescence imaging, periodic acid Schiff, and an indocyanine green (ICG) test. RESULTS: AECs have certain stemness markers such as EPCAM, SSEA4, and E-cadherin. One AEC subpopulation was also either positive for AP staining or expressed the TRA-1-60 and TRA-1-81 stemness markers. Moreover, it could form colonies and its frequency was enhanced ten-fold in the adherent subpopulation after selective primary passage. Bioinformatics analysis of ribose nucleic acid sequencing revealed that the total AEC gene expression was distant from those of pluripotent stem cells and hepatocytes but some gene expression overlapped among these cells. TJP1, associated with epidermal growth factor receptor, and MET, associated with hepatocyte growth factor receptor, were upregulated and may be important for hepatic differentiation. In conventional flat culture, the cells turned unviable and did not readily differentiate into hepatocytes. In 3D culture, however, hepatic gene expression of the AEC sphere was elevated even under a two-step differentiation protocol. Furthermore, the organoids derived from the MSC and HUVEC co-culture showed 3D structure with polarity, hepatic-like glycogen storage, and ICG absorption/elimination. CONCLUSION: Human amniotic epithelial cells are heterogeneous and certain subpopulations have high stemness. Under a 3D co-culture system, functional hepatic organoids were generated in a multicellular microenvironment.
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spelling pubmed-67891892019-10-15 Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment Furuya, Kinji Zheng, Yun-Wen Sako, Daisuke Iwasaki, Kenichi Zheng, Dong-Xu Ge, Jian-Yun Liu, Li-Ping Furuta, Tomoaki Akimoto, Kazunori Yagi, Hiroya Hamada, Hiromi Isoda, Hiroko Oda, Tatsuya Ohkohchi, Nobuhiro World J Stem Cells Basic Study BACKGROUND: To solve the problem of liver transplantation donor insufficiency, an alternative cell transplantation therapy was investigated. We focused on amniotic epithelial cells (AECs) as a cell source because, unlike induced pluripotent stem cells, they are cost-effective and non-tumorigenic. The utilization of AECs in regenerative medicine, however, is in its infancy. A general profile for AECs has not been comprehensively analyzed. Moreover, no hepatic differentiation protocol for AECs has yet been established. To this end, we independently compiled human AEC libraries, purified amniotic stem cells (ASCs), and co-cultured them with mesenchymal stem cells (MSCs) and human umbilical vein endothelial cell (HUVECs) in a 3D system which induces functional hepatic organoids. AIM: To characterize AECs and generate functional hepatic organoids from ASCs and other somatic stem cells METHODS: AECs, MSCs, and HUVECs were isolated from the placentae and umbilical cords of cesarean section patients. Amnion and primary AEC stemness characteristics and heterogeneity were analyzed by immunocytochemistry, Alkaline phosphatase (AP) staining, and flow cytometry. An adherent AEC subpopulation was selected and evaluated for ASC purification quality by a colony formation assay. AEC transcriptomes were compared with those for other hepatocytes cell sources by bioinformatics. The 2D and 3D culture were compared by relative gene expression using several differentiation protocols. ASCs, MSCs, and HUVECs were combined in a 3D co-culture system to generate hepatic organoids whose structure was compared with a 3D AEC sphere and whose function was elucidated by immunofluorescence imaging, periodic acid Schiff, and an indocyanine green (ICG) test. RESULTS: AECs have certain stemness markers such as EPCAM, SSEA4, and E-cadherin. One AEC subpopulation was also either positive for AP staining or expressed the TRA-1-60 and TRA-1-81 stemness markers. Moreover, it could form colonies and its frequency was enhanced ten-fold in the adherent subpopulation after selective primary passage. Bioinformatics analysis of ribose nucleic acid sequencing revealed that the total AEC gene expression was distant from those of pluripotent stem cells and hepatocytes but some gene expression overlapped among these cells. TJP1, associated with epidermal growth factor receptor, and MET, associated with hepatocyte growth factor receptor, were upregulated and may be important for hepatic differentiation. In conventional flat culture, the cells turned unviable and did not readily differentiate into hepatocytes. In 3D culture, however, hepatic gene expression of the AEC sphere was elevated even under a two-step differentiation protocol. Furthermore, the organoids derived from the MSC and HUVEC co-culture showed 3D structure with polarity, hepatic-like glycogen storage, and ICG absorption/elimination. CONCLUSION: Human amniotic epithelial cells are heterogeneous and certain subpopulations have high stemness. Under a 3D co-culture system, functional hepatic organoids were generated in a multicellular microenvironment. Baishideng Publishing Group Inc 2019-09-26 2019-09-26 /pmc/articles/PMC6789189/ /pubmed/31616545 http://dx.doi.org/10.4252/wjsc.v11.i9.705 Text en ©The Author(s) 2019. Published by Baishideng Publishing Group Inc. All rights reserved. http://creativecommons.org/licenses/by-nc/4.0/ This article is an open-access article which was selected by an in-house editor and fully peer-reviewed by external reviewers. It is distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited and the use is non-commercial.
spellingShingle Basic Study
Furuya, Kinji
Zheng, Yun-Wen
Sako, Daisuke
Iwasaki, Kenichi
Zheng, Dong-Xu
Ge, Jian-Yun
Liu, Li-Ping
Furuta, Tomoaki
Akimoto, Kazunori
Yagi, Hiroya
Hamada, Hiromi
Isoda, Hiroko
Oda, Tatsuya
Ohkohchi, Nobuhiro
Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment
title Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment
title_full Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment
title_fullStr Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment
title_full_unstemmed Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment
title_short Enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3D multicellular microenvironment
title_sort enhanced hepatic differentiation in the subpopulation of human amniotic stem cells under 3d multicellular microenvironment
topic Basic Study
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6789189/
https://www.ncbi.nlm.nih.gov/pubmed/31616545
http://dx.doi.org/10.4252/wjsc.v11.i9.705
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