» Articles » PMID: 21750034

Fgf Differentially Controls Cross-antagonism Between Cardiac and Haemangioblast Regulators

Overview
Journal Development
Specialty Biology
Date 2011 Jul 14
PMID 21750034
Citations 29
Authors
Affiliations
Soon will be listed here.
Abstract

Fibroblast growth factor (Fgf) has been implicated in the control of heart size during development, although whether this is by controlling cell fate, survival or proliferation has not been clear. Here, we show that Fgf, without affecting survival or proliferation, acts during gastrulation to drive cardiac fate and restrict anterior haemangioblast fate in zebrafish embryos. The haemangioblast programme was thought to be activated before the cardiac programme and is repressive towards it, suggesting that activation by Fgf of the cardiac programme might be via suppression of the haemangioblast programme. However, we show that the cardiac regulator nkx2.5 can also repress the haemangioblast programme and, furthermore, that cardiac specification still requires Fgf signalling even when haemangioblast regulators are independently suppressed. We further show that nkx2.5 and the cloche candidate gene lycat are expressed during gastrulation and regulated by Fgf, and that nkx2.5 overexpression, together with loss of the lycat targets etsrp and scl can stably induce expansion of the heart. We conclude that Fgf controls cardiac and haemangioblast fates by the simultaneous regulation of haemangioblast and cardiac regulators. We propose that elevation of Fgf signalling in the anterior haemangioblast territory could have led to its recruitment into the heart field during evolution, increasing the size of the heart.

Citing Articles

Endocardial identity is established during early somitogenesis by Bmp signalling acting upstream of npas4l and etv2.

Capon S, Uribe V, Dominado N, Ehrlich O, Smith K Development. 2022; 149(9).

PMID: 35531980 PMC: 9148566. DOI: 10.1242/dev.190421.


From Stripes to a Beating Heart: Early Cardiac Development in Zebrafish.

Kemmler C, Riemslagh F, Moran H, Mosimann C J Cardiovasc Dev Dis. 2021; 8(2).

PMID: 33578943 PMC: 7916704. DOI: 10.3390/jcdd8020017.


Pathways Regulating Establishment and Maintenance of Cardiac Chamber Identity in Zebrafish.

Yao Y, Marra A, Yelon D J Cardiovasc Dev Dis. 2021; 8(2).

PMID: 33572830 PMC: 7912383. DOI: 10.3390/jcdd8020013.


Activating transcription factor 3 coordinates differentiation of cardiac and hematopoietic progenitors by regulating glucose metabolism.

Yin H, Yan L, Liu Q, Peng Z, Zhang C, Xia Y Sci Adv. 2020; 6(19):eaay9466.

PMID: 32494702 PMC: 7202888. DOI: 10.1126/sciadv.aay9466.


The roles and controls of GATA factors in blood and cardiac development.

Dobrzycki T, Lalwani M, Telfer C, Monteiro R, Patient R IUBMB Life. 2019; 72(1):39-44.

PMID: 31778014 PMC: 6973044. DOI: 10.1002/iub.2178.


References
1.
Faloon P, Arentson E, Kazarov A, Deng C, Porcher C, Orkin S . Basic fibroblast growth factor positively regulates hematopoietic development. Development. 2000; 127(9):1931-41. DOI: 10.1242/dev.127.9.1931. View

2.
Peterkin T, Gibson A, Patient R . Common genetic control of haemangioblast and cardiac development in zebrafish. Development. 2009; 136(9):1465-74. PMC: 2730399. DOI: 10.1242/dev.032748. View

3.
Gering M, Yamada Y, Rabbitts T, Patient R . Lmo2 and Scl/Tal1 convert non-axial mesoderm into haemangioblasts which differentiate into endothelial cells in the absence of Gata1. Development. 2003; 130(25):6187-99. DOI: 10.1242/dev.00875. View

4.
Roehl H, Nusslein-Volhard C . Zebrafish pea3 and erm are general targets of FGF8 signaling. Curr Biol. 2001; 11(7):503-7. DOI: 10.1016/s0960-9822(01)00143-9. View

5.
Yamashita M . Apoptosis in zebrafish development. Comp Biochem Physiol B Biochem Mol Biol. 2003; 136(4):731-42. DOI: 10.1016/j.cbpc.2003.08.013. View