Investigation of Clinical Safety of Human iPS Cell-Derived Liver Organoid Transplantation to Infantile Patients in Porcine Model.


Journal

Cell transplantation
ISSN: 1555-3892
Titre abrégé: Cell Transplant
Pays: United States
ID NLM: 9208854

Informations de publication

Date de publication:
Historique:
entrez: 26 10 2020
pubmed: 27 10 2020
medline: 20 7 2021
Statut: ppublish

Résumé

Transplantation of liver organoids has been investigated as a treatment alternative to liver transplantation for chronic liver disease. Transportal approach can be considered as a method of delivering organoids to the liver. It is important to set the allowable organoid amount and verify translocation by intraportal transplantation. We first examined the transplantation tolerance and translocation of porcine fetal liver-derived allogeneic organoids using piglets. Fetal liver-derived organoids generated from the Kusabira Orange-transduced pig were transplanted to the 10-day-old piglet liver through the left branch of the portal vein. All recipients survived without any observable adverse events. In contrast, both local and main portal pressures increased transiently during transplantation. In necropsy samples, Kusabira Orange-positive donor cells were detected primarily in the target lobe of the liver and partly in other areas, including the lungs and brain. As we confirmed the transplantation allowance by porcine fetal liver-derived organoids, we performed intraportal transplantation of human-induced pluripotent stem cell (iPSC)-derived liver organoid, which we plan to use in clinical trials, and portal pressure and translocation were investigated. Human iPSC-derived liver organoids were transplanted into the same 10-day-old piglet. Portal hypertension and translocation of human iPSC-derived liver organoids to the lungs were observed in one of two transplanted animals. Translocation occurred in the piglet in which patent ductus venosus (PDV) was observed. Therefore, a 28-day-old piglet capable of surgically ligating PDV was used, and after the PDV was ligated, human iPSC-derived liver organoids with the amount of which is scheduled in clinical trials were transplanted. This procedure inhibited the translocation of human iPSC-derived liver organoids to extrahepatic sites without no portal hypertension. In conclusion, human iPSC-derived liver organoids can be safely transplanted through the portal vein. Ligation of the ductus venosus prior to transplantation was effective in inhibiting extrahepatic translocation in newborns and infants.

Identifiants

pubmed: 33103476
doi: 10.1177/0963689720964384
pmc: PMC7784600
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

963689720964384

Références

Arch Dis Child. 1966 Dec;41(220):597-605
pubmed: 5951573
Cell Med. 2012 May 14;3(1-3):13-18
pubmed: 28058176
Biomaterials. 2014 Mar;35(8):2499-506
pubmed: 24388386
PLoS One. 2015 Sep 16;10(9):e0137999
pubmed: 26375957
Surgery. 2018 Sep;164(3):473-481
pubmed: 29884476
Stem Cells Transl Med. 2016 Aug;5(8):1117-25
pubmed: 27245366
AJR Am J Roentgenol. 1999 Jan;172(1):227-9
pubmed: 9888772
J Hepatol. 2016 May;64(5):1068-1075
pubmed: 26778754
Arch Dis Child Fetal Neonatal Ed. 2001 Jul;85(1):F57-9
pubmed: 11420325
Cell Transplant. 2015;24(8):1639-52
pubmed: 24849807
Liver Transpl. 2000 Jan;6(1):32-40
pubmed: 10648575
Hepatology. 2009 Feb;49(2):578-86
pubmed: 19085959
Cell Rep. 2017 Dec 5;21(10):2661-2670
pubmed: 29212014
Nature. 2013 Jul 25;499(7459):481-4
pubmed: 23823721
Liver Transpl. 2014 Mar;20(3):391-3
pubmed: 24273015
Nat Protoc. 2014 Feb;9(2):396-409
pubmed: 24457331
Cell Transplant. 2009;18(12):1281-7
pubmed: 20003757
PLoS One. 2012;7(9):e44912
pubmed: 23028675
Transplantation. 2012 Feb 27;93(4):342-7
pubmed: 22082820
Transplantation. 2002 Mar 27;73(6):890-6
pubmed: 11930976
Cell Stem Cell. 2015 May 7;16(5):556-65
pubmed: 25891906
Pediatr Transplant. 2008 Feb;12(1):6-13
pubmed: 18186884
Science. 2014 Jul 18;345(6194):1247125
pubmed: 25035496
Biomaterials. 2015 Feb;41:15-25
pubmed: 25522961
Int J Mol Sci. 2019 Dec 26;21(1):
pubmed: 31887985
Clin Nucl Med. 2000 Jun;25(6):447-50
pubmed: 10836694
Eur Surg Res. 2015;54(3-4):162-77
pubmed: 25633583
J Anat. 1956 Jan;90(1):143-52
pubmed: 13295159
Cloning Stem Cells. 2008 Sep;10(3):313-23
pubmed: 18729767
Arch Dis Child Fetal Neonatal Ed. 2006 May;91(3):F175-9
pubmed: 16449256
Philos Trans R Soc Lond B Biol Sci. 2018 Jul 5;373(1750):
pubmed: 29786563
J Control Release. 2014 Jan 10;173:119-24
pubmed: 24184345
J Inherit Metab Dis. 2008 Apr;31(2):164-72
pubmed: 18392744
Hepatology. 2016 Nov;64(5):1743-1756
pubmed: 27532775
J Pharm Biomed Anal. 2014 Nov;100:145-149
pubmed: 25165010

Auteurs

Tomonori Tsuchida (T)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Soichiro Murata (S)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Shunsuke Hasegawa (S)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Satoshi Mikami (S)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Shin Enosawa (S)

Division for Advanced Medical Sciences, National Center for Child Health and Development, Tokyo, Japan.

Huai-Che Hsu (HC)

Division for Advanced Medical Sciences, National Center for Child Health and Development, Tokyo, Japan.

Akinari Fukuda (A)

Department of Transplantation Surgery, Organ Transplantation Center, National Center for Child Health and Development, Tokyo, Japan.

Satoshi Okamoto (S)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Akihiro Mori (A)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Megumi Matsuo (M)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Yumi Kawakatsu (Y)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.

Hitomi Matsunari (H)

Laboratory of Developmental Engineering, Department of Life Sciences, School of Agriculture, Meiji University International Institute for Bio-Resource Research, Meiji University, Kawasaki, Japan.

Kazuaki Nakano (K)

Laboratory of Developmental Engineering, Department of Life Sciences, School of Agriculture, Meiji University International Institute for Bio-Resource Research, Meiji University, Kawasaki, Japan.

Hiroshi Nagashima (H)

Laboratory of Developmental Engineering, Department of Life Sciences, School of Agriculture, Meiji University International Institute for Bio-Resource Research, Meiji University, Kawasaki, Japan.

Hideki Taniguchi (H)

Department of Regenerative Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.
Division of Regenerative Medicine, University of Tokyo, Tokyo, Japan.

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Classifications MeSH