-
1
-
-
33845418131
-
A common progenitor at the heart of development
-
Garry DJ , Olson EN. A common progenitor at the heart of development. Cell. 2006;127:1101-1104.
-
(2006)
Cell
, vol.127
, pp. 1101-1104
-
-
Garry, D.J.1
Olson, E.N.2
-
2
-
-
34247243159
-
Sox17 is essential for the specification of cardiac mesoderm in embryonic stem cells
-
Liu Y, Asakura M, Inoue H, Nakamura T, Sano M, Niu Z, Chen M, Schwartz RJ, Schneider MD. Sox17 is essential for the specification of cardiac mesoderm in embryonic stem cells. Proc Natl Acad Sci U S A. 2007;104:3859-3864.
-
(2007)
Proc Natl Acad Sci U S A
, vol.104
, pp. 3859-3864
-
-
Liu, Y.1
Asakura, M.2
Inoue, H.3
Nakamura, T.4
Sano, M.5
Niu, Z.6
Chen, M.7
Schwartz, R.J.8
Schneider, M.D.9
-
3
-
-
14644414788
-
Unchain my heart: The scientific foundations of cardiac repair
-
Dimmeler S, Zeiher AM, Schneider MD. Unchain my heart: the scientific foundations of cardiac repair. J Clin Invest. 2005;115:572-583.
-
(2005)
J Clin Invest
, vol.115
, pp. 572-583
-
-
Dimmeler, S.1
Zeiher, A.M.2
Schneider, M.D.3
-
4
-
-
43749100265
-
Stem-cell-based therapy and lessons from the heart
-
Passier R, van Laake LW, Mummery CL. Stem-cell-based therapy and lessons from the heart. Nature . 2008;453:322-329.
-
(2008)
Nature
, vol.453
, pp. 322-329
-
-
Passier, R.1
Van Laake, L.W.2
Mummery, C.L.3
-
5
-
-
0042161933
-
Sizing up the heart: Development redux in disease
-
Olson EN, Schneider MD. Sizing up the heart: development redux in disease. Genes Dev. 2003;17:1937-1956.
-
(2003)
Genes Dev
, vol.17
, pp. 1937-1956
-
-
Olson, E.N.1
Schneider, M.D.2
-
6
-
-
2342644037
-
Heart induction: Embryology to cardiomyocyte regeneration
-
Foley A, Mercola M. Heart induction: embryology to cardiomyocyte regeneration. Trends Cardiovasc Med. 2004;1:121-125.
-
(2004)
Trends Cardiovasc Med
, vol.1
, pp. 121-125
-
-
Foley, A.1
Mercola, M.2
-
7
-
-
41449094683
-
Lives of a heart cell: Tracing the origins of cardiac progenitors
-
Martin-Puig S, Wang Z, Chien KR. Lives of a heart cell: tracing the origins of cardiac progenitors. Cell Stem Cell. 2008;2:320-331.
-
(2008)
Cell Stem Cell
, vol.2
, pp. 320-331
-
-
Martin-Puig, S.1
Wang, Z.2
Chien, K.R.3
-
8
-
-
24644458873
-
Nodal-dependant Cripto signaling in ES cells: From stem cells to tumor biology
-
Minchiotti G. Nodal-dependant Cripto signaling in ES cells: from stem cells to tumor biology. Oncogene. 2005;24:5668-5675.
-
(2005)
Oncogene
, vol.24
, pp. 5668-5675
-
-
Minchiotti, G.1
-
9
-
-
24644493315
-
Cripto-1: A multifunctional modulator during embryogenesis and oncogenesis
-
Strizzi L, Bianco C, Normanno N, Salomon D. Cripto-1: a multifunctional modulator during embryogenesis and oncogenesis. Oncogene. 2005;24:5731-5741.
-
(2005)
Oncogene
, vol.24
, pp. 5731-5741
-
-
Strizzi, L.1
Bianco, C.2
Normanno, N.3
Salomon, D.4
-
10
-
-
0037229696
-
EGF-CFC proteins are essential coreceptors for the TGF-beta signals Vg1 and GDF1
-
Cheng SK, Olale F, Bennett JT, Brivanlou AH, Schier AF. EGF-CFC proteins are essential coreceptors for the TGF-beta signals Vg1 and GDF1. Genes Dev. 2003;17:31-36.
-
(2003)
Genes Dev
, vol.17
, pp. 31-36
-
-
Cheng, S.K.1
Olale, F.2
Bennett, J.T.3
Brivanlou, A.H.4
Schier, A.F.5
-
11
-
-
32244439642
-
The Vg1-related protein Gdf3 acts in a Nodal signaling pathway in the pre-gastrulation mouse embryo
-
Chen C, Ware SM, Sato A, Houston-Hawkins DE, Habas R, Matzuk MM, Shen MM, Brown CW. The Vg1-related protein Gdf3 acts in a Nodal signaling pathway in the pre-gastrulation mouse embryo. Development. 2006;133:319-329.
-
(2006)
Development
, vol.133
, pp. 319-329
-
-
Chen, C.1
Ware, S.M.2
Sato, A.3
Houston-Hawkins, D.E.4
Habas, R.5
Matzuk, M.M.6
Shen, M.M.7
Brown, C.W.8
-
12
-
-
0035425463
-
The orphan receptor ALK7 and the Activin receptor ALK4 mediate signaling by Nodal proteins during vertebrate development
-
Reissmann E, Jornvall H, Blokzijl A, Andersson O, Chang C, Minchiotti G, Persico MG, Ibanez CF, Brivanlou AH. The orphan receptor ALK7 and the Activin receptor ALK4 mediate signaling by Nodal proteins during vertebrate development. Genes Dev. 2001;15:2010-2022.
-
(2001)
Genes Dev
, vol.15
, pp. 2010-2022
-
-
Reissmann, E.1
Jornvall, H.2
Blokzijl, A.3
Andersson, O.4
Chang, C.5
Minchiotti, G.6
Persico, M.G.7
Ibanez, C.F.8
Brivanlou, A.H.9
-
13
-
-
0345255908
-
Nodal signaling in vertebrate development
-
Schier AF. Nodal signaling in vertebrate development. Annu Rev Cell Dev Biol. 2003;19:589-621.
-
(2003)
Annu Rev Cell Dev Biol
, vol.19
, pp. 589-621
-
-
Schier, A.F.1
-
14
-
-
39049085389
-
Cripto promotes A-P axis specification independently of its stimulatory effect on Nodal autoinduction
-
D'Andrea D, Liguori GL, Le Good JA, Lonardo E, Andersson O, Constam DB, Persico MG, Minchiotti G. Cripto promotes A-P axis specification independently of its stimulatory effect on Nodal autoinduction. J Cell Biol. 2008;180:597-605.
-
(2008)
J Cell Biol
, vol.180
, pp. 597-605
-
-
D'Andrea, D.1
Liguori, G.L.2
Le Good, J.A.3
Lonardo, E.4
Andersson, O.5
Constam, D.B.6
Persico, M.G.7
Minchiotti, G.8
-
15
-
-
37849035474
-
GRP78 and Cripto form a complex at the cell surface and collaborate to inhibit transforming growth factor beta signaling and enhance cell growth
-
Shani G, Fischer WH, Justice NJ, Kelber JA, Vale W, Gray PC. GRP78 and Cripto form a complex at the cell surface and collaborate to inhibit transforming growth factor beta signaling and enhance cell growth. Mol Cell Biol. 2008;28:666-677.
-
(2008)
Mol Cell Biol
, vol.28
, pp. 666-677
-
-
Shani, G.1
Fischer, W.H.2
Justice, N.J.3
Kelber, J.A.4
Vale, W.5
Gray, P.C.6
-
16
-
-
33845465701
-
Cripto binds transforming growth factor beta (TGF-beta) and inhibits TGF-beta signaling
-
Gray PC, Shani G, Aung K, Kelber J, Vale W. Cripto binds transforming growth factor beta (TGF-beta) and inhibits TGF-beta signaling. Mol Cell Biol. 2006;26:9268-9278.
-
(2006)
Mol Cell Biol
, vol.26
, pp. 9268-9278
-
-
Gray, P.C.1
Shani, G.2
Aung, K.3
Kelber, J.4
Vale, W.5
-
17
-
-
0242330138
-
Nodal-dependent Cripto signaling promotes cardiomyogenesis and redirects the neural fate of embryonic stem cells
-
Parisi S, D'Andrea D, Lago CT, Adamson ED, Persico MG, Minchiotti G. Nodal-dependent Cripto signaling promotes cardiomyogenesis and redirects the neural fate of embryonic stem cells. J Cell Biol. 2003;163: 303-314.
-
(2003)
J Cell Biol
, vol.163
, pp. 303-314
-
-
Parisi, S.1
D'Andrea, D.2
Lago, C.T.3
Adamson, E.D.4
Persico, M.G.5
Minchiotti, G.6
-
18
-
-
34447622302
-
Stage-specific role of endogenous Smad2 activation in cardiomyogenesis of embryonic stem cells
-
Kitamura R, Takahashi T, Nakajima N, Isodono K, Asada S, Ueno H, Ueyama T, Yoshikawa T, Matsubara H, Oh H. Stage-specific role of endogenous Smad2 activation in cardiomyogenesis of embryonic stem cells. Circ Res. 2007;101:78-87.
-
(2007)
Circ Res
, vol.101
, pp. 78-87
-
-
Kitamura, R.1
Takahashi, T.2
Nakajima, N.3
Isodono, K.4
Asada, S.5
Ueno, H.6
Ueyama, T.7
Yoshikawa, T.8
Matsubara, H.9
Oh, H.10
-
19
-
-
0032254443
-
Chemokine receptors in HIV-1 and SIV infection
-
Choe H. Chemokine receptors in HIV-1 and SIV infection. Arch Pharm Res. 1998;21:634-639.
-
(1998)
Arch Pharm Res
, vol.21
, pp. 634-639
-
-
Choe, H.1
-
20
-
-
0141615870
-
Novel role for the potent endogenous inotrope apelin in human cardiac dysfunction
-
Chen MM, Ashley EA, Deng DX, Tsalenko A, Deng A, Tabibiazar R, Ben-Dor A, Fenster B, Yang E, King JY, Fowler M, Robbins R, Johnson FL, Bruhn L, McDonagh T, Dargie H, Yakhini Z, Tsao PS, Quertermous T. Novel role for the potent endogenous inotrope apelin in human cardiac dysfunction. Circulation. 2003;108:1432-1439.
-
(2003)
Circulation
, vol.108
, pp. 1432-1439
-
-
Chen, M.M.1
Ashley, E.A.2
Deng, D.X.3
Tsalenko, A.4
Deng, A.5
Tabibiazar, R.6
Ben-Dor, A.7
Fenster, B.8
Yang, E.9
King, J.Y.10
Fowler, M.11
Robbins, R.12
Johnson, F.L.13
Bruhn, L.14
McDonagh, T.15
Dargie, H.16
Yakhini, Z.17
Tsao, P.S.18
Quertermous, T.19
-
21
-
-
33748800495
-
Xapelin and Xmsr are required for cardiovascular development in Xenopus laevis
-
Inui M, Fukui A, Ito Y, Asashima M. Xapelin and Xmsr are required for cardiovascular development in Xenopus laevis. Dev Biol. 2006;298: 188-200.
-
(2006)
Dev Biol
, vol.298
, pp. 188-200
-
-
Inui, M.1
Fukui, A.2
Ito, Y.3
Asashima, M.4
-
22
-
-
33751217715
-
Therapeutic potential of interfering with apelin signalling
-
Sorli SC, van den Berghe L, Masri B, Knibiehler B, Audigier Y. Therapeutic potential of interfering with apelin signalling. Drug Discov Today. 2006;11:1100-1106.
-
(2006)
Drug Discov Today
, vol.11
, pp. 1100-1106
-
-
Sorli, S.C.1
Van Den Berghe, L.2
Masri, B.3
Knibiehler, B.4
Audigier, Y.5
-
23
-
-
42649096311
-
The apelin-APJ system in heart failure: Pathophysiologic relevance and therapeutic potential
-
Japp AG, Newby DE. The apelin-APJ system in heart failure: pathophysiologic relevance and therapeutic potential. Biochem Pharmacol. 2008; 75:1882-1892.
-
(2008)
Biochem Pharmacol
, vol.75
, pp. 1882-1892
-
-
Japp, A.G.1
Newby, D.E.2
-
24
-
-
33847176664
-
The G protein-coupled receptor agtrl1b regulates early development of myocardial progenitors
-
Scott IC, Masri B, D'Amico LA, Jin SW, Jungblut B, Wehman AM, Baier H, Audigier Y, Stainier DY. The G protein-coupled receptor agtrl1b regulates early development of myocardial progenitors. Dev Cell. 2007; 12:403-413.
-
(2007)
Dev Cell
, vol.12
, pp. 403-413
-
-
Scott, I.C.1
Masri, B.2
D'Amico, L.A.3
Jin, S.W.4
Jungblut, B.5
Wehman, A.M.6
Baier, H.7
Audigier, Y.8
Stainier, D.Y.9
-
25
-
-
33847201433
-
Apelin and its receptor control heart field formation during zebrafish gastrulation
-
Zeng XX, Wilm TP, Sepich DS, Solnica-Krezel L. Apelin and its receptor control heart field formation during zebrafish gastrulation. Dev Cell. 2007;12:391-402.
-
(2007)
Dev Cell
, vol.12
, pp. 391-402
-
-
Zeng, X.X.1
Wilm, T.P.2
Sepich, D.S.3
Solnica-Krezel, L.4
-
26
-
-
0344494796
-
Anterior neural plate regionalization in cripto null mutant mouse embryos in the absence of node and primitive streak
-
Liguori GL, Echevarria D, Improta R, Signore M, Adamson E, Martinez S, Persico MG. Anterior neural plate regionalization in cripto null mutant mouse embryos in the absence of node and primitive streak. Dev Biol. 2003;264:537-545.
-
(2003)
Dev Biol
, vol.264
, pp. 537-545
-
-
Liguori, G.L.1
Echevarria, D.2
Improta, R.3
Signore, M.4
Adamson, E.5
Martinez, S.6
Persico, M.G.7
-
27
-
-
0032811273
-
Amino acid sequence and embryonic expression of msr/apj, the mouse homolog of Xenopus X-msr and human APJ
-
Devic E, Rizzoti K, Bodin S, Knibiehler B, Audigier Y. Amino acid sequence and embryonic expression of msr/apj, the mouse homolog of Xenopus X-msr and human APJ. Mech Dev. 1999;84:199-203.
-
(1999)
Mech Dev
, vol.84
, pp. 199-203
-
-
Devic, E.1
Rizzoti, K.2
Bodin, S.3
Knibiehler, B.4
Audigier, Y.5
-
28
-
-
0032531946
-
Cripto is required for correct orientation of the anterior-posterior axis in the mouse embryo
-
Ding J, Yang L, Yan YT, Chen A, Desai N, Wynshaw-Boris A, Shen MM. Cripto is required for correct orientation of the anterior-posterior axis in the mouse embryo. Nature. 1998;395:702-707.
-
(1998)
Nature
, vol.395
, pp. 702-707
-
-
Ding, J.1
Yang, L.2
Yan, Y.T.3
Chen, A.4
Desai, N.5
Wynshaw-Boris, A.6
Shen, M.M.7
-
29
-
-
0036085920
-
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
-
Inman GJ, Nicolas FJ, Callahan JF, Harling JD, Gaster LM, Reith AD, Laping NJ, Hill CS. 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;62:65-74.
-
(2002)
Mol Pharmacol
, vol.62
, pp. 65-74
-
-
Inman, G.J.1
Nicolas, F.J.2
Callahan, J.F.3
Harling, J.D.4
Gaster, L.M.5
Reith, A.D.6
Laping, N.J.7
Hill, C.S.8
-
30
-
-
39149106794
-
Regulation of human Cripto-1 gene expression by TGF-beta1 and BMP-4 in embryonal and colon cancer cells
-
Mancino M, Strizzi L, Wechselberger C, Watanabe K, Gonzales M, Hamada S, Normanno N, Salomon DS, Bianco C. Regulation of human Cripto-1 gene expression by TGF-beta1 and BMP-4 in embryonal and colon cancer cells. J Cell Physiol. 2008;215:192-203.
-
(2008)
J Cell Physiol
, vol.215
, pp. 192-203
-
-
Mancino, M.1
Strizzi, L.2
Wechselberger, C.3
Watanabe, K.4
Gonzales, M.5
Hamada, S.6
Normanno, N.7
Salomon, D.S.8
Bianco, C.9
-
31
-
-
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
-
32
-
-
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, Mentele E, Muller-Hocker J, Kitajima S, Lickert H, Rupp R, Franz WM. 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
Mentele, E.7
Muller-Hocker, J.8
Kitajima, S.9
Lickert, H.10
Rupp, R.11
Franz, W.M.12
-
33
-
-
10044296019
-
Apelin (65-77) activates p70 S6 kinase and is mitogenic for umbilical endothelial cells
-
Masri B, Morin N, Cornu M, Knibiehler B, Audigier Y. Apelin (65-77) activates p70 S6 kinase and is mitogenic for umbilical endothelial cells. FASEB J. 2004;18:1909-1911.
-
(2004)
FASEB J.
, Issue.18
, pp. 1909-1911
-
-
Masri, B.1
Morin, N.2
Cornu, M.3
Knibiehler, B.4
Audigier, Y.5
-
34
-
-
0036289790
-
Apelin (65-77) activates extracellular signal-regulated kinases via a PTXsensitive G protein
-
Masri B, Lahlou H, Mazarguil H, Knibiehler B, Audigier Y. Apelin (65-77) activates extracellular signal-regulated kinases via a PTXsensitive G protein. Biochem Biophys Res Commun. 2002;290:539-545.
-
(2002)
Biochem Biophys Res Commun
, Issue.290
, pp. 539-545
-
-
Masri, B.1
Lahlou, H.2
Mazarguil, H.3
Knibiehler, B.4
Audigier, Y.5
-
35
-
-
48649087364
-
Mesp1 acts as a master regulator of multipotent cardiovascular progenitor specification
-
Bondue A, Lapouge G, Paulissen C, Semeraro C, Iacovino M, Kyba M, Blanpain C. 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
Blanpain, C.7
-
36
-
-
48649106835
-
Mesp1 coordinately regulates cardiovascular fate restriction and epithelialmesenchymal transition in differentiating ESCs
-
Lindsley RC, Gill JG, Murphy TL, Langer EM, Cai M, Mashayekhi M, Wang W, Niwa N, Nerbonne JM, Kyba M, Murphy KM. Mesp1 coordinately regulates cardiovascular fate restriction and epithelialmesenchymal 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
Wang, W.7
Niwa, N.8
Nerbonne, J.M.9
Kyba, M.10
Murphy, K.M.11
-
37
-
-
33847185840
-
Apelin and its G protein-coupled receptor regulate cardiac development as well as cardiac function
-
Quertermous T. Apelin and its G protein-coupled receptor regulate cardiac development as well as cardiac function. Dev Cell. 2007;12: 319-320.
-
(2007)
Dev Cell
, vol.12
, pp. 319-320
-
-
Quertermous, T.1
-
38
-
-
34047168674
-
Appropriate suppression of Notch signaling by Mesp factors is essential for stripe pattern formation leading to segment boundary formation
-
Takahashi Y, Yasuhiko Y, Kitajima S, Kanno J, Saga Y. Appropriate suppression of Notch signaling by Mesp factors is essential for stripe pattern formation leading to segment boundary formation. Dev Biol. 2007;304:593-603.
-
(2007)
Dev Biol
, vol.304
, pp. 593-603
-
-
Takahashi, Y.1
Yasuhiko, Y.2
Kitajima, S.3
Kanno, J.4
Saga, Y.5
-
39
-
-
34547935393
-
Impaired heart contractility in apelin gene-deficient mice associated with aging and pressure overload
-
Kuba K, Zhang L, Imai Y, Arab S, Chen M, Maekawa Y, Leschnik M, Leibbrandt A, Markovic M, Schwaighofer J, Beetz N, Musialek R, Neely GG, Komnenovic V, Kolm U, Metzler B, Ricci R, Hara H, Meixner A, Nghiem M, Chen X, Dawood F, Wong KM, Sarao R, Cukerman E, Kimura A, Hein L, Thalhammer J, Liu PP, Penninger JM. Impaired heart contractility in apelin gene-deficient mice associated with aging and pressure overload. Circ Res. 2007;101:e32-e42.
-
(2007)
Circ Res
, vol.101
-
-
Kuba, K.1
Zhang, L.2
Imai, Y.3
Arab, S.4
Chen, M.5
Maekawa, Y.6
Leschnik, M.7
Leibbrandt, A.8
Markovic, M.9
Schwaighofer, J.10
Beetz, N.11
Musialek, R.12
Neely, G.G.13
Komnenovic, V.14
Kolm, U.15
Metzler, B.16
Ricci, R.17
Hara, H.18
Meixner, A.19
Nghiem, M.20
Chen, X.21
Dawood, F.22
Wong, K.M.23
Sarao, R.24
Cukerman, E.25
Kimura, A.26
Hein, L.27
Thalhammer, J.28
Liu, P.P.29
Penninger, J.M.30
more..
-
40
-
-
2942711581
-
Regulatory roles for APJ, a seven-transmembrane receptor related to angiotensin-type 1 receptor in blood pressure in vivo
-
Ishida J, Hashimoto T, Hashimoto Y, Nishiwaki S, Iguchi T, Harada S, Sugaya T, Matsuzaki H, Yamamoto R, Shiota N, Okunishi H, Kihara M, Umemura S, Sugiyama F, Yagami K, Kasuya Y, Mochizuki N, Fukamizu A. Regulatory roles for APJ, a seven-transmembrane receptor related to angiotensin-type 1 receptor in blood pressure in vivo. J Biol Chem. 2004;279:26274-26279.
-
(2004)
J Biol Chem
, vol.279
, pp. 26274-26279
-
-
Ishida, J.1
Hashimoto, T.2
Hashimoto, Y.3
Nishiwaki, S.4
Iguchi, T.5
Harada, S.6
Sugaya, T.7
Matsuzaki, H.8
Yamamoto, R.9
Shiota, N.10
Okunishi, H.11
Kihara, M.12
Umemura, S.13
Sugiyama, F.14
Yagami, K.15
Kasuya, Y.16
Mochizuki, N.17
Fukamizu, A.18
-
41
-
-
50949099615
-
Hypoxia-induced apelin expression regulates endothelial cell proliferation and regenerative angiogenesis
-
Eyries M, Siegfried G, Ciumas M, Montagne K, Agrapart M, Lebrin F, Soubrier F. Hypoxia-induced apelin expression regulates endothelial cell proliferation and regenerative angiogenesis. Circ Res. 2008;103: 432-440.
-
(2008)
Circ Res
, vol.103
, pp. 432-440
-
-
Eyries, M.1
Siegfried, G.2
Ciumas, M.3
Montagne, K.4
Agrapart, M.5
Lebrin, F.6
Soubrier, F.7
-
42
-
-
13744255918
-
Role of human cripto-1 in tumor angiogenesis
-
Bianco C, Strizzi L, Ebert A, Chang C, Rehman A, Normanno N, Guedez L, Salloum R, Ginsburg E, Sun Y, Khan N, Hirota M, Wallace-Jones B, Wechselberger C, Vonderhaar BK, Tosato G, Stetler-Stevenson WG, Sanicola M, Salomon DS. Role of human cripto-1 in tumor angiogenesis. J Natl Cancer Inst. 2005;97:132-141.
-
(2005)
J Natl Cancer Inst
, vol.97
, pp. 132-141
-
-
Bianco, C.1
Strizzi, L.2
Ebert, A.3
Chang, C.4
Rehman, A.5
Normanno, N.6
Guedez, L.7
Salloum, R.8
Ginsburg, E.9
Sun, Y.10
Khan, N.11
Hirota, M.12
Wallace-Jones, B.13
Wechselberger, C.14
Vonderhaar, B.K.15
Tosato, G.16
Stetler-Stevenson, W.G.17
Sanicola, M.18
Salomon, D.S.19
-
43
-
-
33745947584
-
Apelin, the ligand for the endothelial G-protein-coupled receptor, APJ, is a potent angiogenic factor required for normal vascular development of the frog embryo
-
Cox CM, D'Agostino SL, Miller MK, Heimark RL, Krieg PA. Apelin, the ligand for the endothelial G-protein-coupled receptor, APJ, is a potent angiogenic factor required for normal vascular development of the frog embryo. Dev Biol. 2006;296:177-189.
-
(2006)
Dev Biol
, vol.296
, pp. 177-189
-
-
Cox, C.M.1
D'Agostino, S.L.2
Miller, M.K.3
Heimark, R.L.4
Krieg, P.A.5
-
45
-
-
38949194007
-
Spatial and temporal role of the apelin/APJ system in the caliber size regulation of blood vessels during angiogenesis
-
Kidoya H, Ueno M, Yamada Y, Mochizuki N, Nakata M, Yano T, Fujii R, Takakura N. Spatial and temporal role of the apelin/APJ system in the caliber size regulation of blood vessels during angiogenesis. EMBO J. 2008;27:522-534.
-
(2008)
EMBO J
, vol.27
, pp. 522-534
-
-
Kidoya, H.1
Ueno, M.2
Yamada, Y.3
Mochizuki, N.4
Nakata, M.5
Yano, T.6
Fujii, R.7
Takakura, N.8
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