Early activation of FGF and nodal pathways mediates cardiac specification independently of Wnt/beta-catenin signaling.

PubWeight™: 0.95‹?› | Rank: Top 15%

🔗 View Article (PMC 2763344)

Published in PLoS One on October 28, 2009

Authors

Lee J Samuel1, Branko V Latinkić

Author Affiliations

1: School of Biosciences, Cardiff University, Cardiff, United Kingdom.

Articles cited by this

Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal Biochem (1987) 281.19

Identification of a novel inhibitor of mitogen-activated protein kinase kinase. J Biol Chem (1998) 13.93

XTcf-3 transcription factor mediates beta-catenin-induced axis formation in Xenopus embryos. Cell (1996) 11.70

A molecular mechanism for the effect of lithium on development. Proc Natl Acad Sci U S A (1996) 11.37

SB-431542 is a potent and specific inhibitor of transforming growth factor-beta superfamily type I activin receptor-like kinase (ALK) receptors ALK4, ALK5, and ALK7. Mol Pharmacol (2002) 8.89

Dickkopf-1 is a member of a new family of secreted proteins and functions in head induction. Nature (1998) 8.02

Structures of the tyrosine kinase domain of fibroblast growth factor receptor in complex with inhibitors. Science (1997) 4.70

GSK-3-selective inhibitors derived from Tyrian purple indirubins. Chem Biol (2003) 4.60

Inhibition of Wnt activity induces heart formation from posterior mesoderm. Genes Dev (2001) 4.41

Expression of a dominant negative mutant of the FGF receptor disrupts mesoderm formation in Xenopus embryos. Cell (1991) 4.31

Wnt antagonism initiates cardiogenesis in Xenopus laevis. Genes Dev (2001) 3.98

MAPK signal specificity: the right place at the right time. Trends Biochem Sci (2006) 3.96

Biphasic role for Wnt/beta-catenin signaling in cardiac specification in zebrafish and embryonic stem cells. Proc Natl Acad Sci U S A (2007) 3.90

Developmental stage-specific biphasic roles of Wnt/beta-catenin signaling in cardiomyogenesis and hematopoiesis. Proc Natl Acad Sci U S A (2006) 3.54

A truncated activin receptor inhibits mesoderm induction and formation of axial structures in Xenopus embryos. Nature (1992) 3.23

The head inducer Cerberus is a multifunctional antagonist of Nodal, BMP and Wnt signals. Nature (1999) 3.19

Synergistic induction of mesoderm by FGF and TGF-beta and the identification of an mRNA coding for FGF in the early Xenopus embryo. Cell (1987) 3.17

The EGF-CFC protein one-eyed pinhead is essential for nodal signaling. Cell (1999) 3.15

Interactions between Xwnt-8 and Spemann organizer signaling pathways generate dorsoventral pattern in the embryonic mesoderm of Xenopus. Genes Dev (1993) 2.63

Cerberus is a head-inducing secreted factor expressed in the anterior endoderm of Spemann's organizer. Nature (1996) 2.54

Nodal is a novel TGF-beta-like gene expressed in the mouse node during gastrulation. Nature (1993) 2.45

Studies with a Xenopus BMP receptor suggest that ventral mesoderm-inducing signals override dorsal signals in vivo. Cell (1994) 2.12

Genetic dissection of nodal function in patterning the mouse embryo. Development (2001) 2.07

Xsox17alpha and -beta mediate endoderm formation in Xenopus. Cell (1997) 1.97

Endodermal Nodal-related signals and mesoderm induction in Xenopus. Development (2000) 1.97

Induction of avian cardiac myogenesis by anterior endoderm. Development (1995) 1.85

Mesp1 expression is the earliest sign of cardiovascular development. Trends Cardiovasc Med (2000) 1.81

Induction and differentiation of the zebrafish heart requires fibroblast growth factor 8 (fgf8/acerebellar). Development (2000) 1.78

The ALK-5 inhibitor A-83-01 inhibits Smad signaling and epithelial-to-mesenchymal transition by transforming growth factor-beta. Cancer Sci (2005) 1.67

BMP2 is required for early heart development during a distinct time period. Mech Dev (2000) 1.67

Integration of TGF-beta and Ras/MAPK signaling through p53 phosphorylation. Science (2007) 1.65

Regulation of avian cardiogenesis by Fgf8 signaling. Development (2002) 1.55

Nodal-dependent Cripto signaling promotes cardiomyogenesis and redirects the neural fate of embryonic stem cells. J Cell Biol (2003) 1.52

Endoderm and heart development. Dev Dyn (2000) 1.52

BMP signaling is required for heart formation in vertebrates. Dev Biol (2000) 1.46

An inductive role for the endoderm in Xenopus cardiogenesis. Development (1995) 1.45

Role of MAP kinase in mesoderm induction and axial patterning during Xenopus development. Development (1995) 1.34

Induction of cardiomyocytes by GATA4 in Xenopus ectodermal explants. Development (2003) 1.34

Activation of muscle-specific actin genes in Xenopus development by an induction between animal and vegetal cells of a blastula. Cell (1985) 1.33

Reiterative roles for FGF signaling in the establishment of size and proportion of the zebrafish heart. Dev Biol (2008) 1.33

Combined BMP-2 and FGF-4, but neither factor alone, induces cardiogenesis in non-precardiac embryonic mesoderm. Dev Biol (1996) 1.32

The RSRF/MEF2 protein SL1 regulates cardiac muscle-specific transcription of a myosin light-chain gene in Xenopus embryos. Genes Dev (1994) 1.27

Mesoderm formation in response to Brachyury requires FGF signalling. Curr Biol (1995) 1.23

Cardiac troponin I is a heart-specific marker in the Xenopus embryo: expression during abnormal heart morphogenesis. Dev Biol (1994) 1.20

Regulation of avian cardiac myogenesis by activin/TGFbeta and bone morphogenetic proteins. Dev Biol (1998) 1.16

The ALK-2 and ALK-4 activin receptors transduce distinct mesoderm-inducing signals during early Xenopus development but do not co-operate to establish thresholds. Development (1997) 1.14

A novel Cripto-related protein reveals an essential role for EGF-CFCs in Nodal signalling in Xenopus embryos. Dev Biol (2006) 1.12

Bmp2b and Oep promote early myocardial differentiation through their regulation of gata5. Dev Biol (2001) 1.11

Induction of cardiac myogenesis in avian pregastrula epiblast: the role of the hypoblast and activin. Development (1997) 1.08

Induction of cardiac muscle differentiation in isolated animal pole explants of Xenopus laevis embryos. Development (1993) 1.08

The Wnt/beta-catenin pathway posteriorizes neural tissue in Xenopus by an indirect mechanism requiring FGF signalling. Dev Biol (2001) 1.07

Murine cardiac progenitor cells require visceral embryonic endoderm and primitive streak for terminal differentiation. Dev Dyn (1997) 1.04

Bone morphogenetic protein function is required for terminal differentiation of the heart but not for early expression of cardiac marker genes. Mech Dev (2001) 1.01

A novel activity of the Dickkopf-1 amino terminal domain promotes axial and heart development independently of canonical Wnt inhibition. Dev Biol (2008) 0.96

An anterior signalling centre in Xenopus revealed by the homeobox gene XHex. Curr Biol (1999) 0.93

Localization of MAP kinase activity in early Xenopus embryos: implications for endogenous FGF signaling. Dev Biol (1997) 0.93

Induction of chick cardiac myogenesis by bone morphogenetic proteins. Cold Spring Harb Symp Quant Biol (1997) 0.93

FGF is a prospective competence factor for early activin-type signals in Xenopus mesoderm induction. Development (1995) 0.92

Cardiac differentiation in Xenopus requires the cyclin-dependent kinase inhibitor, p27Xic1. Cardiovasc Res (2008) 0.92

In vitro organogenesis from undifferentiated cells in Xenopus. Dev Dyn (2009) 0.82

Articles by these authors

Dissociation of cardiogenic and postnatal myocardial activities of GATA4. Mol Cell Biol (2012) 0.88