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A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression

Hematopoietic progenitors undergo differentiation while navigating several cell division cycles, but it is unknown whether these two processes are coupled. We addressed this question by studying erythropoiesis in mouse fetal liver in vivo. We found that the initial upregulation of cell surface CD71...

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Detalles Bibliográficos
Autores principales: Pop, Ramona, Shearstone, Jeffrey R., Shen, Qichang, Liu, Ying, Hallstrom, Kelly, Koulnis, Miroslav, Gribnau, Joost, Socolovsky, Merav
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2943437/
https://www.ncbi.nlm.nih.gov/pubmed/20877475
http://dx.doi.org/10.1371/journal.pbio.1000484
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author Pop, Ramona
Shearstone, Jeffrey R.
Shen, Qichang
Liu, Ying
Hallstrom, Kelly
Koulnis, Miroslav
Gribnau, Joost
Socolovsky, Merav
author_facet Pop, Ramona
Shearstone, Jeffrey R.
Shen, Qichang
Liu, Ying
Hallstrom, Kelly
Koulnis, Miroslav
Gribnau, Joost
Socolovsky, Merav
author_sort Pop, Ramona
collection PubMed
description Hematopoietic progenitors undergo differentiation while navigating several cell division cycles, but it is unknown whether these two processes are coupled. We addressed this question by studying erythropoiesis in mouse fetal liver in vivo. We found that the initial upregulation of cell surface CD71 identifies developmentally matched erythroblasts that are tightly synchronized in S-phase. We show that DNA replication within this but not subsequent cycles is required for a differentiation switch comprising rapid and simultaneous committal transitions whose precise timing was previously unknown. These include the onset of erythropoietin dependence, activation of the erythroid master transcriptional regulator GATA-1, and a switch to an active chromatin conformation at the β-globin locus. Specifically, S-phase progression is required for the formation of DNase I hypersensitive sites and for DNA demethylation at this locus. Mechanistically, we show that S-phase progression during this key committal step is dependent on downregulation of the cyclin-dependent kinase p57(KIP2) and in turn causes the downregulation of PU.1, an antagonist of GATA-1 function. These findings therefore highlight a novel role for a cyclin-dependent kinase inhibitor in differentiation, distinct to their known function in cell cycle exit. Furthermore, we show that a novel, mutual inhibition between PU.1 expression and S-phase progression provides a “synchromesh” mechanism that “locks” the erythroid differentiation program to the cell cycle clock, ensuring precise coordination of critical differentiation events.
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spelling pubmed-29434372010-09-28 A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression Pop, Ramona Shearstone, Jeffrey R. Shen, Qichang Liu, Ying Hallstrom, Kelly Koulnis, Miroslav Gribnau, Joost Socolovsky, Merav PLoS Biol Research Article Hematopoietic progenitors undergo differentiation while navigating several cell division cycles, but it is unknown whether these two processes are coupled. We addressed this question by studying erythropoiesis in mouse fetal liver in vivo. We found that the initial upregulation of cell surface CD71 identifies developmentally matched erythroblasts that are tightly synchronized in S-phase. We show that DNA replication within this but not subsequent cycles is required for a differentiation switch comprising rapid and simultaneous committal transitions whose precise timing was previously unknown. These include the onset of erythropoietin dependence, activation of the erythroid master transcriptional regulator GATA-1, and a switch to an active chromatin conformation at the β-globin locus. Specifically, S-phase progression is required for the formation of DNase I hypersensitive sites and for DNA demethylation at this locus. Mechanistically, we show that S-phase progression during this key committal step is dependent on downregulation of the cyclin-dependent kinase p57(KIP2) and in turn causes the downregulation of PU.1, an antagonist of GATA-1 function. These findings therefore highlight a novel role for a cyclin-dependent kinase inhibitor in differentiation, distinct to their known function in cell cycle exit. Furthermore, we show that a novel, mutual inhibition between PU.1 expression and S-phase progression provides a “synchromesh” mechanism that “locks” the erythroid differentiation program to the cell cycle clock, ensuring precise coordination of critical differentiation events. Public Library of Science 2010-09-21 /pmc/articles/PMC2943437/ /pubmed/20877475 http://dx.doi.org/10.1371/journal.pbio.1000484 Text en Pop et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Pop, Ramona
Shearstone, Jeffrey R.
Shen, Qichang
Liu, Ying
Hallstrom, Kelly
Koulnis, Miroslav
Gribnau, Joost
Socolovsky, Merav
A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression
title A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression
title_full A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression
title_fullStr A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression
title_full_unstemmed A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression
title_short A Key Commitment Step in Erythropoiesis Is Synchronized with the Cell Cycle Clock through Mutual Inhibition between PU.1 and S-Phase Progression
title_sort key commitment step in erythropoiesis is synchronized with the cell cycle clock through mutual inhibition between pu.1 and s-phase progression
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2943437/
https://www.ncbi.nlm.nih.gov/pubmed/20877475
http://dx.doi.org/10.1371/journal.pbio.1000484
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