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Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration

Runx1 is a transcription factor that plays a key role in determining the proliferative and differential state of multiple cell types, during both development and adulthood. Here, we report how Runx1 is specifically upregulated at the injury site during zebrafish heart regeneration, and that absence...

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Autores principales: Koth, Jana, Wang, Xiaonan, Killen, Abigail C., Stockdale, William T., Potts, Helen G., Jefferson, Andrew, Bonkhofer, Florian, Riley, Paul R., Patient, Roger K., Göttgens, Berthold, Mommersteeg, Mathilda T. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7197712/
https://www.ncbi.nlm.nih.gov/pubmed/32341028
http://dx.doi.org/10.1242/dev.186569
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author Koth, Jana
Wang, Xiaonan
Killen, Abigail C.
Stockdale, William T.
Potts, Helen G.
Jefferson, Andrew
Bonkhofer, Florian
Riley, Paul R.
Patient, Roger K.
Göttgens, Berthold
Mommersteeg, Mathilda T. M.
author_facet Koth, Jana
Wang, Xiaonan
Killen, Abigail C.
Stockdale, William T.
Potts, Helen G.
Jefferson, Andrew
Bonkhofer, Florian
Riley, Paul R.
Patient, Roger K.
Göttgens, Berthold
Mommersteeg, Mathilda T. M.
author_sort Koth, Jana
collection PubMed
description Runx1 is a transcription factor that plays a key role in determining the proliferative and differential state of multiple cell types, during both development and adulthood. Here, we report how Runx1 is specifically upregulated at the injury site during zebrafish heart regeneration, and that absence of runx1 results in increased myocardial survival and proliferation, and overall heart regeneration, accompanied by decreased fibrosis. Using single cell sequencing, we found that the wild-type injury site consists of Runx1-positive endocardial cells and thrombocytes that induce expression of smooth muscle and collagen genes. Both these populations cannot be identified in runx1 mutant wounds that contain less collagen and fibrin. The reduction in fibrin in the mutant is further explained by reduced myofibroblast formation and upregulation of components of the fibrin degradation pathway, including plasminogen receptor annexin 2A as well as downregulation of plasminogen activator inhibitor serpine1 in myocardium and endocardium, resulting in increased levels of plasminogen. Our findings suggest that Runx1 controls the regenerative response of multiple cardiac cell types and that targeting Runx1 is a novel therapeutic strategy for inducing endogenous heart repair.
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spelling pubmed-71977122020-05-14 Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration Koth, Jana Wang, Xiaonan Killen, Abigail C. Stockdale, William T. Potts, Helen G. Jefferson, Andrew Bonkhofer, Florian Riley, Paul R. Patient, Roger K. Göttgens, Berthold Mommersteeg, Mathilda T. M. Development Stem Cells and Regeneration Runx1 is a transcription factor that plays a key role in determining the proliferative and differential state of multiple cell types, during both development and adulthood. Here, we report how Runx1 is specifically upregulated at the injury site during zebrafish heart regeneration, and that absence of runx1 results in increased myocardial survival and proliferation, and overall heart regeneration, accompanied by decreased fibrosis. Using single cell sequencing, we found that the wild-type injury site consists of Runx1-positive endocardial cells and thrombocytes that induce expression of smooth muscle and collagen genes. Both these populations cannot be identified in runx1 mutant wounds that contain less collagen and fibrin. The reduction in fibrin in the mutant is further explained by reduced myofibroblast formation and upregulation of components of the fibrin degradation pathway, including plasminogen receptor annexin 2A as well as downregulation of plasminogen activator inhibitor serpine1 in myocardium and endocardium, resulting in increased levels of plasminogen. Our findings suggest that Runx1 controls the regenerative response of multiple cardiac cell types and that targeting Runx1 is a novel therapeutic strategy for inducing endogenous heart repair. The Company of Biologists Ltd 2020-04-27 /pmc/articles/PMC7197712/ /pubmed/32341028 http://dx.doi.org/10.1242/dev.186569 Text en © 2020. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/4.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Stem Cells and Regeneration
Koth, Jana
Wang, Xiaonan
Killen, Abigail C.
Stockdale, William T.
Potts, Helen G.
Jefferson, Andrew
Bonkhofer, Florian
Riley, Paul R.
Patient, Roger K.
Göttgens, Berthold
Mommersteeg, Mathilda T. M.
Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration
title Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration
title_full Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration
title_fullStr Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration
title_full_unstemmed Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration
title_short Runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration
title_sort runx1 promotes scar deposition and inhibits myocardial proliferation and survival during zebrafish heart regeneration
topic Stem Cells and Regeneration
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7197712/
https://www.ncbi.nlm.nih.gov/pubmed/32341028
http://dx.doi.org/10.1242/dev.186569
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