-
1
-
-
33847298936
-
Xenopus as a model system for vertebrate heart development
-
Warkman AS, Krieg PA. Xenopus as a model system for vertebrate heart development. Semin Cell Dev Biol 2007;18:46-53.
-
(2007)
Semin Cell Dev Biol
, vol.18
, pp. 46-53
-
-
Warkman, A.S.1
Krieg, P.A.2
-
2
-
-
0023395841
-
Fates of the blastomeres of the 32-cell-stage Xenopus embryo
-
Moody SA. Fates of the blastomeres of the 32-cell-stage Xenopus embryo. Dev Biol 1987;122:300-319.
-
(1987)
Dev Biol
, vol.122
, pp. 300-319
-
-
Moody, S.A.1
-
3
-
-
0024549827
-
The specification of heart mesoderm occurs during gastrulation in Xenopus laevis
-
Sater AK, Jacobson AG. The specification of heart mesoderm occurs during gastrulation in Xenopus laevis. Development 1989;105:821-830.
-
(1989)
Development
, vol.105
, pp. 821-830
-
-
Sater, A.K.1
Jacobson, A.G.2
-
4
-
-
33644680809
-
Building the mammalian heart from two sources of myocardial cells
-
Buckingham M, Meilhac S, Zaffran S. Building the mammalian heart from two sources of myocardial cells. Nat Rev Genet 2005;6:826-835.
-
(2005)
Nat Rev Genet
, vol.6
, pp. 826-835
-
-
Buckingham, M.1
Meilhac, S.2
Zaffran, S.3
-
5
-
-
70349287525
-
Comparative gene expression analysis and fate mapping studies suggest an early segregation of cardiogenic lineages in Xenopus laevis
-
Gessert S, Kühl M. Comparative gene expression analysis and fate mapping studies suggest an early segregation of cardiogenic lineages in Xenopus laevis. Dev Biol 2009; 334:395-408.
-
(2009)
Dev Biol
, vol.334
, pp. 395-408
-
-
Gessert, S.1
Kühl, M.2
-
6
-
-
0033836865
-
MesP1 and MesP2 are essential for the development of cardiac mesoderm
-
Kitajima S, Takagi A, Inoue T, Saga Y. MesP1 and MesP2 are essential for the development of cardiac mesoderm. Development 2000;127:3215-3226.
-
(2000)
Development
, vol.127
, pp. 3215-3226
-
-
Kitajima, S.1
Takagi, A.2
Inoue, T.3
Saga, Y.4
-
7
-
-
0034449141
-
Mesp1 expression is the earliest sign of cardiovascular development
-
Saga Y, Kitajima S, Miyagawa-Tomita S. Mesp1 expression is the earliest sign of cardiovascular development. Trends Cardiovasc Med 2000;10:345-352.
-
(2000)
Trends Cardiovasc Med
, vol.10
, pp. 345-352
-
-
Saga, Y.1
Kitajima, S.2
Miyagawa-Tomita, S.3
-
8
-
-
40249093060
-
MesP1 drives vertebrate cardiovascular differentiation through Dkk-1-mediated blockade of Wnt-signalling
-
David R, Brenner C, Stieber J, Schwarz F, Brunner S, Vollmer M et al. MesP1 drives vertebrate cardiovascular differentiation through Dkk-1-mediated blockade of Wnt-signalling. Nat Cell Biol 2008;10:338-345.
-
(2008)
Nat Cell Biol
, vol.10
, pp. 338-345
-
-
David, R.1
Brenner, C.2
Stieber, J.3
Schwarz, F.4
Brunner, S.5
Vollmer, M.6
-
9
-
-
48649087364
-
Mesp1 acts as a master regulator of multipotent cardiovascular progenitor specification
-
Bondue A, Lapouge G, Paulissen C, Semeraro C, Iacovino M, Kyba M et al. Mesp1 acts as a master regulator of multipotent cardiovascular progenitor specification. Cell Stem Cell 2008;3:69-84.
-
(2008)
Cell Stem Cell
, vol.3
, pp. 69-84
-
-
Bondue, A.1
Lapouge, G.2
Paulissen, C.3
Semeraro, C.4
Iacovino, M.5
Kyba, M.6
-
10
-
-
71549150302
-
Forward programming of pluripotent stem cells towards distinct cardiovascular cell types
-
David R, Stieber J, Fischer E, Brunner S, Brenner C, Pfeiler S et al. Forward programming of pluripotent stem cells towards distinct cardiovascular cell types. Cardiovasc Res 2009;84:263-272.
-
(2009)
Cardiovasc Res
, vol.84
, pp. 263-272
-
-
David, R.1
Stieber, J.2
Fischer, E.3
Brunner, S.4
Brenner, C.5
Pfeiler, S.6
-
11
-
-
48649106835
-
Mesp1 coordinately regulates cardiovascular fate restriction and epithelial-mesenchymal transition in differentiating ESCs
-
Lindsley RC, Gill JG, Murphy TL, Langer EM, Cai M, Mashayekhi M et al. Mesp1 coordinately regulates cardiovascular fate restriction and epithelial-mesenchymal transition in differentiating ESCs. Cell Stem Cell 2008;3:55-68.
-
(2008)
Cell Stem Cell
, vol.3
, pp. 55-68
-
-
Lindsley, R.C.1
Gill, J.G.2
Murphy, T.L.3
Langer, E.M.4
Cai, M.5
Mashayekhi, M.6
-
12
-
-
3042854055
-
The ascidian Mesp gene specifies heart precursor cells
-
Satou Y, Imai KS, Satoh N. The ascidian Mesp gene specifies heart precursor cells. Development 2004;131:2533-2541.
-
(2004)
Development
, vol.131
, pp. 2533-2541
-
-
Satou, Y.1
Imai, K.S.2
Satoh, N.3
-
15
-
-
34247200413
-
CHD4/Mi-2beta activity is required for the positioning of the mesoderm/neuroectoderm boundary in Xenopus
-
Linder B, Mentele E, Mansperger K, Straub T, Kremmer E, Rupp RA. CHD4/Mi-2beta activity is required for the positioning of the mesoderm/neuroectoderm boundary in Xenopus. Genes Dev 2007;21:973-983.
-
(2007)
Genes Dev
, vol.21
, pp. 973-983
-
-
Linder, B.1
Mentele, E.2
Mansperger, K.3
Straub, T.4
Kremmer, E.5
Rupp, R.A.6
-
16
-
-
0031860576
-
Thylacine 1 is expressed segmentally within the paraxial mesoderm of the Xenopus embryo and interacts with the Notch pathway
-
Sparrow DB, Jen WC, Kotecha S, Towers N, Kintner C, Mohun TJ. Thylacine 1 is expressed segmentally within the paraxial mesoderm of the Xenopus embryo and interacts with the Notch pathway. Development 1998;125:2041-2051.
-
(1998)
Development
, vol.125
, pp. 2041-2051
-
-
Sparrow, D.B.1
Jen, W.C.2
Kotecha, S.3
Towers, N.4
Kintner, C.5
Mohun, T.J.6
-
17
-
-
39949083204
-
Retinoic acid regulation of the Mesp-Ripply feedback loop during vertebrate segmental patterning
-
Moreno TA, Jappelli R, Izpisua Belmonte JC, Kintner C. Retinoic acid regulation of the Mesp-Ripply feedback loop during vertebrate segmental patterning. Dev Biol 2008; 315:317-330.
-
(2008)
Dev Biol
, vol.315
, pp. 317-330
-
-
Moreno, T.A.1
Jappelli, R.2
Izpisua Belmonte, J.C.3
Kintner, C.4
-
18
-
-
0033015917
-
Mespo: A novel basic helix-loop-helix gene expressed in the presomitic mesoderm and posterior tailbud of Xenopus embryos
-
Joseph EM, Cassetta LA. Mespo: a novel basic helix-loop-helix gene expressed in the presomitic mesoderm and posterior tailbud of Xenopus embryos. Mech Dev 1999;82: 191-194.
-
(1999)
Mech Dev
, vol.82
, pp. 191-194
-
-
Joseph, E.M.1
Cassetta, L.A.2
-
19
-
-
0034671579
-
The bHLH regulator pMesogenin1 is required for maturation and segmentation of paraxial mesoderm
-
Yoon JK, Wold B. The bHLH regulator pMesogenin1 is required for maturation and segmentation of paraxial mesoderm. Genes Dev 2000;14:3204-3214.
-
(2000)
Genes Dev
, vol.14
, pp. 3204-3214
-
-
Yoon, J.K.1
Wold, B.2
-
20
-
-
34047256824
-
Wnt/beta-catenin signaling controls Mespo expression to regulate segmentation during Xenopus somitogenesis
-
Wang J, Li S, Chen Y, Ding X. Wnt/beta-catenin signaling controls Mespo expression to regulate segmentation during Xenopus somitogenesis. Dev Biol 2007;304:836-847.
-
(2007)
Dev Biol
, vol.304
, pp. 836-847
-
-
Wang, J.1
Li, S.2
Chen, Y.3
Ding, X.4
-
21
-
-
0034090969
-
Zebrafish Mesp family genes, mesp-A and mesp-b are segmentally expressed in the presomitic mesoderm, and Mesp-b confers the anterior identity to the developing somites
-
Sawada A, Fritz A, Jiang YJ, Yamamoto A, Yamasu K, Kuroiwa A et al. Zebrafish Mesp family genes, mesp-a and mesp-b are segmentally expressed in the presomitic mesoderm, and Mesp-b confers the anterior identity to the developing somites. Development 2000;127:1691-1702.
-
(2000)
Development
, vol.127
, pp. 1691-1702
-
-
Sawada, A.1
Fritz, A.2
Jiang, Y.J.3
Yamamoto, A.4
Yamasu, K.5
Kuroiwa, A.6
-
22
-
-
33645293208
-
Transgenic analysis of the medaka mesp-b enhancer in somitogenesis
-
Terasaki H, Murakami R, Yasuhiko Y, Shin IT, Kohara Y, Saga Y et al. Transgenic analysis of the medaka mesp-b enhancer in somitogenesis. Dev Growth Differ 2006;48: 153-168.
-
(2006)
Dev Growth Differ
, vol.48
, pp. 153-168
-
-
Terasaki, H.1
Murakami, R.2
Yasuhiko, Y.3
Shin, I.T.4
Kohara, Y.5
Saga, Y.6
-
23
-
-
79960075548
-
Molecular analyses of Xenopus laevis Mesp-related genes
-
Hitachi K, Kondow A, Danno H, Nishimura Y, Okabayashi K, Asashima M. Molecular analyses of Xenopus laevis Mesp-related genes. Integr Zool 2009;4:387-394.
-
(2009)
Integr Zool
, vol.4
, pp. 387-394
-
-
Hitachi, K.1
Kondow, A.2
Danno, H.3
Nishimura, Y.4
Okabayashi, K.5
Asashima, M.6
-
24
-
-
0042328106
-
Left and right contributions to the Xenopus heart: Implications for asymmetric morphogenesis
-
Gormley JP, Nascone-Yoder NM. Left and right contributions to the Xenopus heart: implications for asymmetric morphogenesis. Dev Genes Evol 2003;213:390-398.
-
(2003)
Dev Genes Evol
, vol.213
, pp. 390-398
-
-
Gormley, J.P.1
Nascone-Yoder, N.M.2
-
25
-
-
0035164395
-
A morphogen gradient of Wnt/beta-catenin signalling regulates anteroposterior neural patterning in Xenopus
-
Kiecker C, Niehrs C. A morphogen gradient of Wnt/beta-catenin signalling regulates anteroposterior neural patterning in Xenopus. Development 2001;128:4189-4201.
-
(2001)
Development
, vol.128
, pp. 4189-4201
-
-
Kiecker, C.1
Niehrs, C.2
-
26
-
-
78650681563
-
Mesp1: A key regulator of cardiovascular lineage commitment
-
Bondue A, Blanpain C. Mesp1: a key regulator of cardiovascular lineage commitment. Circ Res 2010;107:1414-1427.
-
(2010)
Circ Res
, vol.107
, pp. 1414-1427
-
-
Bondue, A.1
Blanpain, C.2
-
27
-
-
66349096033
-
In vitro organogenesis from undifferentiated cells in Xenopus
-
Asashima M, Ito Y, Chan T, Michiue T, Nakanishi M, Suzuki K et al. In vitro organogenesis from undifferentiated cells in Xenopus. Dev Dyn 2009;238:1309-1320.
-
(2009)
Dev Dyn
, vol.238
, pp. 1309-1320
-
-
Asashima, M.1
Ito, Y.2
Chan, T.3
Michiue, T.4
Nakanishi, M.5
Suzuki, K.6
-
28
-
-
70449589301
-
Early activation of FGF and nodal pathways mediates cardiac specification independently of Wnt/beta-catenin signaling
-
Samuel LJ, Latinkic BV. Early activation of FGF and nodal pathways mediates cardiac specification independently of Wnt/beta-catenin signaling. PLoS One 2009;4:e7650.
-
(2009)
PLoS One
, vol.4
-
-
Samuel, L.J.1
Latinkic, B.V.2
-
29
-
-
0028352113
-
Xenopus embryos regulate the nuclear localization of XMyoD
-
Rupp RA, Snider L, Weintraub H. Xenopus embryos regulate the nuclear localization of XMyoD. Genes Dev 1994;8:1311-1323.
-
(1994)
Genes Dev
, vol.8
, pp. 1311-1323
-
-
Rupp, R.A.1
Snider, L.2
Weintraub, H.3
-
30
-
-
49949086671
-
Controlling morpholino experiments: Don't stop making antisense
-
Eisen JS, Smith JC. Controlling morpholino experiments: don't stop making antisense. Development 2008;135:1735-1743.
-
(2008)
Development
, vol.135
, pp. 1735-1743
-
-
Eisen, J.S.1
Smith, J.C.2
-
31
-
-
33645944976
-
Mxi1 is essential for neurogenesis in Xenopus and acts by bridging the pan-neural and proneural genes
-
Klisch TJ, Souopgui J, Juergens K, Rust B, Pieler T, Henningfeld KA. Mxi1 is essential for neurogenesis in Xenopus and acts by bridging the pan-neural and proneural genes. Dev Biol 2006;292:470-485.
-
(2006)
Dev Biol
, vol.292
, pp. 470-485
-
-
Klisch, T.J.1
Souopgui, J.2
Juergens, K.3
Rust, B.4
Pieler, T.5
Henningfeld, K.A.6
-
33
-
-
0035252543
-
Wnt antagonism initiates cardiogenesis in Xenopus laevis
-
Schneider VA, Mercola M. Wnt antagonism initiates cardiogenesis in Xenopus laevis. Genes Dev 2001;15:304-315.
-
(2001)
Genes Dev
, vol.15
, pp. 304-315
-
-
Schneider, V.A.1
Mercola, M.2
-
34
-
-
35748933898
-
The amphibian second heart field: Xenopus islet-1 is required for cardiovascular development
-
Brade T, Gessert S, Kuhl M, Pandur P. The amphibian second heart field: Xenopus islet-1 is required for cardiovascular development. Dev Biol 2007;311:297-310.
-
(2007)
Dev Biol
, vol.311
, pp. 297-310
-
-
Brade, T.1
Gessert, S.2
Kuhl, M.3
Pandur, P.4
-
35
-
-
0029955134
-
Overexpression of the tinman-related genes XNkx-2.5 and XNkx-2.3 in Xenopus embryos results in myocardial hyperplasia
-
Cleaver OB, Patterson KD, Krieg PA. Overexpression of the tinman-related genes XNkx-2.5 and XNkx-2.3 in Xenopus embryos results in myocardial hyperplasia. Development 1996;122:3549-3556.
-
(1996)
Development
, vol.122
, pp. 3549-3556
-
-
Cleaver, O.B.1
Patterson, K.D.2
Krieg, P.A.3
-
36
-
-
14044260623
-
Tbx5 and Tbx20 act synergistically to control vertebrate heart morphogenesis
-
Brown DD, Martz SN, Binder O, Goetz SC, Price BM, Smith JC et al. Tbx5 and Tbx20 act synergistically to control vertebrate heart morphogenesis. Development 2005;132: 553-563.
-
(2005)
Development
, vol.132
, pp. 553-563
-
-
Brown, D.D.1
Martz, S.N.2
Binder, O.3
Goetz, S.C.4
Price, B.M.5
Smith, J.C.6
-
37
-
-
64149104894
-
Nkx2.7 and Nkx2.5 function redundantly and are required for cardiac morphogenesis of zebrafish embryos
-
Tu CT, Yang TC, Tsai HJ. Nkx2.7 and Nkx2.5 function redundantly and are required for cardiac morphogenesis of zebrafish embryos. PLoS One 2009;4:e4249.
-
(2009)
PLoS One
, vol.4
-
-
Tu, C.T.1
Yang, T.C.2
Tsai, H.J.3
-
38
-
-
0035891429
-
The combinatorial activities of Nkx2.5 and dHAND are essential for cardiac ventricle formation
-
Yamagishi H, Yamagishi C, Nakagawa O, Harvey RP, Olson EN, Srivastava D. The combinatorial activities of Nkx2.5 and dHAND are essential for cardiac ventricle formation. Dev Biol 2001;239:190-203.
-
(2001)
Dev Biol
, vol.239
, pp. 190-203
-
-
Yamagishi, H.1
Yamagishi, C.2
Nakagawa, O.3
Harvey, R.P.4
Olson, E.N.5
Srivastava, D.6
-
39
-
-
79951637914
-
Different requirements for GATA factors in cardiogenesis are mediated by non-canonical Wnt signaling
-
Afouda BA, Hoppler S. Different requirements for GATA factors in cardiogenesis are mediated by non-canonical Wnt signaling. Dev Dyn 2011;240:649-662.
-
(2011)
Dev Dyn
, vol.240
, pp. 649-662
-
-
Afouda, B.A.1
Hoppler, S.2
|