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Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size

Limitations in cell proliferation are important for normal function of differentiated tissues and essential for the safety of cell replacement products made from pluripotent stem cells, which have unlimited proliferative potential. To evaluate whether these limitations can be established pharmacolog...

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Autores principales: Sui, Lina, Xin, Yurong, Du, Qian, Georgieva, Daniela, Diedenhofen, Giacomo, Haataja, Leena, Su, Qi, Zuccaro, Michael V., Kim, Jinrang, Fu, Jiayu, Xing, Yuan, He, Yi, Baum, Danielle, Goland, Robin S., Wang, Yong, Oberholzer, Jose, Barbetti, Fabrizio, Arvan, Peter, Kleiner, Sandra, Egli, Dieter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8022502/
https://www.ncbi.nlm.nih.gov/pubmed/33529174
http://dx.doi.org/10.1172/jci.insight.141553
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author Sui, Lina
Xin, Yurong
Du, Qian
Georgieva, Daniela
Diedenhofen, Giacomo
Haataja, Leena
Su, Qi
Zuccaro, Michael V.
Kim, Jinrang
Fu, Jiayu
Xing, Yuan
He, Yi
Baum, Danielle
Goland, Robin S.
Wang, Yong
Oberholzer, Jose
Barbetti, Fabrizio
Arvan, Peter
Kleiner, Sandra
Egli, Dieter
author_facet Sui, Lina
Xin, Yurong
Du, Qian
Georgieva, Daniela
Diedenhofen, Giacomo
Haataja, Leena
Su, Qi
Zuccaro, Michael V.
Kim, Jinrang
Fu, Jiayu
Xing, Yuan
He, Yi
Baum, Danielle
Goland, Robin S.
Wang, Yong
Oberholzer, Jose
Barbetti, Fabrizio
Arvan, Peter
Kleiner, Sandra
Egli, Dieter
author_sort Sui, Lina
collection PubMed
description Limitations in cell proliferation are important for normal function of differentiated tissues and essential for the safety of cell replacement products made from pluripotent stem cells, which have unlimited proliferative potential. To evaluate whether these limitations can be established pharmacologically, we exposed pancreatic progenitors differentiating from human pluripotent stem cells to small molecules that interfere with cell cycle progression either by inducing G(1) arrest or by impairing S phase entry or S phase completion and determined growth potential, differentiation, and function of insulin-producing endocrine cells. We found that the combination of G(1) arrest with a compromised ability to complete DNA replication promoted the differentiation of pancreatic progenitor cells toward insulin-producing cells and could substitute for endocrine differentiation factors. Reduced replication fork speed during differentiation improved the stability of insulin expression, and the resulting cells protected mice from diabetes without the formation of cystic growths. The proliferative potential of grafts was proportional to the reduction of replication fork speed during pancreatic differentiation. Therefore, a compromised ability to enter and complete S phase is a functionally important property of pancreatic endocrine differentiation, can be achieved by reducing replication fork speed, and is an important determinant of cell-intrinsic limitations of growth.
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spelling pubmed-80225022021-04-08 Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size Sui, Lina Xin, Yurong Du, Qian Georgieva, Daniela Diedenhofen, Giacomo Haataja, Leena Su, Qi Zuccaro, Michael V. Kim, Jinrang Fu, Jiayu Xing, Yuan He, Yi Baum, Danielle Goland, Robin S. Wang, Yong Oberholzer, Jose Barbetti, Fabrizio Arvan, Peter Kleiner, Sandra Egli, Dieter JCI Insight Research Article Limitations in cell proliferation are important for normal function of differentiated tissues and essential for the safety of cell replacement products made from pluripotent stem cells, which have unlimited proliferative potential. To evaluate whether these limitations can be established pharmacologically, we exposed pancreatic progenitors differentiating from human pluripotent stem cells to small molecules that interfere with cell cycle progression either by inducing G(1) arrest or by impairing S phase entry or S phase completion and determined growth potential, differentiation, and function of insulin-producing endocrine cells. We found that the combination of G(1) arrest with a compromised ability to complete DNA replication promoted the differentiation of pancreatic progenitor cells toward insulin-producing cells and could substitute for endocrine differentiation factors. Reduced replication fork speed during differentiation improved the stability of insulin expression, and the resulting cells protected mice from diabetes without the formation of cystic growths. The proliferative potential of grafts was proportional to the reduction of replication fork speed during pancreatic differentiation. Therefore, a compromised ability to enter and complete S phase is a functionally important property of pancreatic endocrine differentiation, can be achieved by reducing replication fork speed, and is an important determinant of cell-intrinsic limitations of growth. American Society for Clinical Investigation 2021-03-08 /pmc/articles/PMC8022502/ /pubmed/33529174 http://dx.doi.org/10.1172/jci.insight.141553 Text en © 2021 Sui et al. http://creativecommons.org/licenses/by/4.0/ This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Research Article
Sui, Lina
Xin, Yurong
Du, Qian
Georgieva, Daniela
Diedenhofen, Giacomo
Haataja, Leena
Su, Qi
Zuccaro, Michael V.
Kim, Jinrang
Fu, Jiayu
Xing, Yuan
He, Yi
Baum, Danielle
Goland, Robin S.
Wang, Yong
Oberholzer, Jose
Barbetti, Fabrizio
Arvan, Peter
Kleiner, Sandra
Egli, Dieter
Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size
title Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size
title_full Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size
title_fullStr Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size
title_full_unstemmed Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size
title_short Reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size
title_sort reduced replication fork speed promotes pancreatic endocrine differentiation and controls graft size
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8022502/
https://www.ncbi.nlm.nih.gov/pubmed/33529174
http://dx.doi.org/10.1172/jci.insight.141553
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