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Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction

The generation of human pluripotent stem cell (hPSC)-derived ventricular progenitors and their assembly into a 3-dimensional in vivo functional ventricular heart patch has remained an elusive goal. Herein, we report the generation of an enriched pool of hPSC-derived ventricular progenitors (HVPs), w...

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Autores principales: Foo, Kylie S., Lehtinen, Miia L., Leung, Chuen Yan, Lian, Xiaojun, Xu, Jiejia, Keung, Wendy, Geng, Lin, Kolstad, Terje R.S., Thams, Sebastian, Wong, Andy On-tik, Wong, Nicodemus, Bylund, Kristine, Zhou, Chikai, He, Xiaobing, Jin, Shao-Bo, Clarke, Jonathan, Lendahl, Urban, Li, Ronald A., Louch, William E., Chien, Kenneth R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6035340/
https://www.ncbi.nlm.nih.gov/pubmed/29606507
http://dx.doi.org/10.1016/j.ymthe.2018.02.012
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author Foo, Kylie S.
Lehtinen, Miia L.
Leung, Chuen Yan
Lian, Xiaojun
Xu, Jiejia
Keung, Wendy
Geng, Lin
Kolstad, Terje R.S.
Thams, Sebastian
Wong, Andy On-tik
Wong, Nicodemus
Bylund, Kristine
Zhou, Chikai
He, Xiaobing
Jin, Shao-Bo
Clarke, Jonathan
Lendahl, Urban
Li, Ronald A.
Louch, William E.
Chien, Kenneth R.
author_facet Foo, Kylie S.
Lehtinen, Miia L.
Leung, Chuen Yan
Lian, Xiaojun
Xu, Jiejia
Keung, Wendy
Geng, Lin
Kolstad, Terje R.S.
Thams, Sebastian
Wong, Andy On-tik
Wong, Nicodemus
Bylund, Kristine
Zhou, Chikai
He, Xiaobing
Jin, Shao-Bo
Clarke, Jonathan
Lendahl, Urban
Li, Ronald A.
Louch, William E.
Chien, Kenneth R.
author_sort Foo, Kylie S.
collection PubMed
description The generation of human pluripotent stem cell (hPSC)-derived ventricular progenitors and their assembly into a 3-dimensional in vivo functional ventricular heart patch has remained an elusive goal. Herein, we report the generation of an enriched pool of hPSC-derived ventricular progenitors (HVPs), which can expand, differentiate, self-assemble, and mature into a functional ventricular patch in vivo without the aid of any gel or matrix. We documented a specific temporal window, in which the HVPs will engraft in vivo. On day 6 of differentiation, HVPs were enriched by depleting cells positive for pluripotency marker TRA-1-60 with magnetic-activated cell sorting (MACS), and 3 million sorted cells were sub-capsularly transplanted onto kidneys of NSG mice where, after 2 months, they formed a 7 mm × 3 mm × 4 mm myocardial patch resembling the ventricular wall. The graft acquired several features of maturation: expression of ventricular marker (MLC2v), desmosomes, appearance of T-tubule-like structures, and electrophysiological action potential signature consistent with maturation, all this in a non-cardiac environment. We further demonstrated that HVPs transplanted into un-injured hearts of NSG mice remain viable for up to 8 months. Moreover, transplantation of 2 million HVPs largely preserved myocardial contractile function following myocardial infarction. Taken together, our study reaffirms the promising idea of using progenitor cells for regenerative therapy.
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spelling pubmed-60353402019-07-05 Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction Foo, Kylie S. Lehtinen, Miia L. Leung, Chuen Yan Lian, Xiaojun Xu, Jiejia Keung, Wendy Geng, Lin Kolstad, Terje R.S. Thams, Sebastian Wong, Andy On-tik Wong, Nicodemus Bylund, Kristine Zhou, Chikai He, Xiaobing Jin, Shao-Bo Clarke, Jonathan Lendahl, Urban Li, Ronald A. Louch, William E. Chien, Kenneth R. Mol Ther Original Article The generation of human pluripotent stem cell (hPSC)-derived ventricular progenitors and their assembly into a 3-dimensional in vivo functional ventricular heart patch has remained an elusive goal. Herein, we report the generation of an enriched pool of hPSC-derived ventricular progenitors (HVPs), which can expand, differentiate, self-assemble, and mature into a functional ventricular patch in vivo without the aid of any gel or matrix. We documented a specific temporal window, in which the HVPs will engraft in vivo. On day 6 of differentiation, HVPs were enriched by depleting cells positive for pluripotency marker TRA-1-60 with magnetic-activated cell sorting (MACS), and 3 million sorted cells were sub-capsularly transplanted onto kidneys of NSG mice where, after 2 months, they formed a 7 mm × 3 mm × 4 mm myocardial patch resembling the ventricular wall. The graft acquired several features of maturation: expression of ventricular marker (MLC2v), desmosomes, appearance of T-tubule-like structures, and electrophysiological action potential signature consistent with maturation, all this in a non-cardiac environment. We further demonstrated that HVPs transplanted into un-injured hearts of NSG mice remain viable for up to 8 months. Moreover, transplantation of 2 million HVPs largely preserved myocardial contractile function following myocardial infarction. Taken together, our study reaffirms the promising idea of using progenitor cells for regenerative therapy. American Society of Gene & Cell Therapy 2018-07-05 2018-02-17 /pmc/articles/PMC6035340/ /pubmed/29606507 http://dx.doi.org/10.1016/j.ymthe.2018.02.012 Text en © 2018 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Foo, Kylie S.
Lehtinen, Miia L.
Leung, Chuen Yan
Lian, Xiaojun
Xu, Jiejia
Keung, Wendy
Geng, Lin
Kolstad, Terje R.S.
Thams, Sebastian
Wong, Andy On-tik
Wong, Nicodemus
Bylund, Kristine
Zhou, Chikai
He, Xiaobing
Jin, Shao-Bo
Clarke, Jonathan
Lendahl, Urban
Li, Ronald A.
Louch, William E.
Chien, Kenneth R.
Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction
title Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction
title_full Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction
title_fullStr Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction
title_full_unstemmed Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction
title_short Human ISL1(+) Ventricular Progenitors Self-Assemble into an In Vivo Functional Heart Patch and Preserve Cardiac Function Post Infarction
title_sort human isl1(+) ventricular progenitors self-assemble into an in vivo functional heart patch and preserve cardiac function post infarction
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6035340/
https://www.ncbi.nlm.nih.gov/pubmed/29606507
http://dx.doi.org/10.1016/j.ymthe.2018.02.012
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