-
1
-
-
0036776476
-
Cell sorting in animal development: signalling and adhesive mechanisms in the formation of tissue boundaries.
-
Tepass U, Godt D, Winklbauer R. Cell sorting in animal development: signalling and adhesive mechanisms in the formation of tissue boundaries. Curr Opin Genet Dev 2002, 12:572-582.
-
(2002)
Curr Opin Genet Dev
, vol.12
, pp. 572-582
-
-
Tepass, U.1
Godt, D.2
Winklbauer, R.3
-
2
-
-
23944507620
-
Beta-Catenin controls cell sorting at the notochord-somite boundary independently of cadherin-mediated adhesion.
-
Reintsch WE, Habring-Mueller A, Wang RW, Schohl A, Fagotto F. Beta-Catenin controls cell sorting at the notochord-somite boundary independently of cadherin-mediated adhesion. J Cell Biol 2005, 170:675-686.
-
(2005)
J Cell Biol
, vol.170
, pp. 675-686
-
-
Reintsch, W.E.1
Habring-Mueller, A.2
Wang, R.W.3
Schohl, A.4
Fagotto, F.5
-
3
-
-
0034644106
-
The protocadherin PAPC establishes segmental boundaries during somitogenesis in xenopus embryos.
-
Kim SH, Jen WC, De Robertis EM, Kintner C. The protocadherin PAPC establishes segmental boundaries during somitogenesis in xenopus embryos. Curr Biol 2000, 10:821-830.
-
(2000)
Curr Biol
, vol.10
, pp. 821-830
-
-
Kim, S.H.1
Jen, W.C.2
De Robertis, E.M.3
Kintner, C.4
-
4
-
-
2942560339
-
Mutations of ephrin-B1 (EFNB1), a marker of tissue boundary formation, cause craniofrontonasal syndrome.
-
Epub ahead of print; May 27, 2004).
-
Twigg SR, Kan R, Babbs C, Bochukova EG, Robertson SP, Wall SA, Morriss-Kay GM, Wilkie AO. Mutations of ephrin-B1 (EFNB1), a marker of tissue boundary formation, cause craniofrontonasal syndrome. Proc Natl Acad Sci U S A 2004, 101:8652-8657. (Epub ahead of print; May 27, 2004).
-
(2004)
Proc Natl Acad Sci U S A
, vol.101
, pp. 8652-8657
-
-
Twigg, S.R.1
Kan, R.2
Babbs, C.3
Bochukova, E.G.4
Robertson, S.P.5
Wall, S.A.6
Morriss-Kay, G.M.7
Wilkie, A.O.8
-
5
-
-
0030220280
-
Fibronectin, mesoderm migration, and gastrulation in Xenopus.
-
Winklbauer R, Keller RE. Fibronectin, mesoderm migration, and gastrulation in Xenopus. Dev Biol 1996, 177:413-426.
-
(1996)
Dev Biol
, vol.177
, pp. 413-426
-
-
Winklbauer, R.1
Keller, R.E.2
-
6
-
-
0344563422
-
Vegetal rotation, a new gastrulation movement involved in the internalization of the mesoderm and endoderm in Xenopus.
-
Winklbauer R, Schurfeld M. Vegetal rotation, a new gastrulation movement involved in the internalization of the mesoderm and endoderm in Xenopus. Development 1999, 126:3703-3713.
-
(1999)
Development
, vol.126
, pp. 3703-3713
-
-
Winklbauer, R.1
Schurfeld, M.2
-
7
-
-
16844373824
-
Gastrulation in amphibians.
-
ed. New York: Cold Spring Harbor Laboratory Press;
-
Keller R, Shook D. Gastrulation in amphibians. In: Stern C, ed. Gastrulation: From Cells to Embryos. New York: Cold Spring Harbor Laboratory Press; 2004, 171-203.
-
(2004)
Gastrulation: From Cells to Embryos.
, pp. 171-203
-
-
Keller, R.1
Shook, D.2
Stern, C.3
-
8
-
-
0036333102
-
Beta-catenin, MAPK and Smad signaling during early Xenopus development.
-
Schohl A, Fagotto F. Beta-catenin, MAPK and Smad signaling during early Xenopus development. Development 2002, 129:37-52.
-
(2002)
Development
, vol.129
, pp. 37-52
-
-
Schohl, A.1
Fagotto, F.2
-
9
-
-
0034663226
-
Development and control of tissue separation at gastrulation in Xenopus.
-
Wacker S, Grimm K, Joos T, Winklbauer R. Development and control of tissue separation at gastrulation in Xenopus. Dev Biol 2000, 224:428-439.
-
(2000)
Dev Biol
, vol.224
, pp. 428-439
-
-
Wacker, S.1
Grimm, K.2
Joos, T.3
Winklbauer, R.4
-
10
-
-
4644340270
-
Townes and Holtfreter (1955): directed movements and selective adhesion of embryonic amphibian cells.
-
Steinberg MS, Gilbert SF. Townes and Holtfreter (1955): directed movements and selective adhesion of embryonic amphibian cells. J Exp Zoolog A Comp Exp Biol 2004, 301:701-706.
-
(2004)
J Exp Zoolog A Comp Exp Biol
, vol.301
, pp. 701-706
-
-
Steinberg, M.S.1
Gilbert, S.F.2
-
11
-
-
4444276500
-
Xenopus paraxial protocadherin has signaling functions and is involved in tissue separation.
-
Medina A, Swain RK, Kuerner KM, Steinbeisser H. Xenopus paraxial protocadherin has signaling functions and is involved in tissue separation. EMBO J 2004, 23:3249-3258.
-
(2004)
EMBO J
, vol.23
, pp. 3249-3258
-
-
Medina, A.1
Swain, R.K.2
Kuerner, K.M.3
Steinbeisser, H.4
-
12
-
-
0037450709
-
Association of dishevelled with Eph tyrosine kinase receptor and ephrin mediates cell repulsion.
-
Tanaka M, Kamo T, Ota S, Sugimura H. Association of dishevelled with Eph tyrosine kinase receptor and ephrin mediates cell repulsion. EMBO J 2003, 22:847-858.
-
(2003)
EMBO J
, vol.22
, pp. 847-858
-
-
Tanaka, M.1
Kamo, T.2
Ota, S.3
Sugimura, H.4
-
13
-
-
34249681850
-
ANR5, an FGF target gene product, regulates gastrulation in Xenopus.
-
Chung HA, Yamamoto TS, Ueno N. ANR5, an FGF target gene product, regulates gastrulation in Xenopus. Curr Biol 2007, 17:932-939.
-
(2007)
Curr Biol
, vol.17
, pp. 932-939
-
-
Chung, H.A.1
Yamamoto, T.S.2
Ueno, N.3
-
14
-
-
77955057680
-
xGit2 and xRhoGAP 11A regulate convergent extension and tissue separation in Xenopus gastrulation.
-
Köster I, Jungwirth MS, Steinbeisser H. xGit2 and xRhoGAP 11A regulate convergent extension and tissue separation in Xenopus gastrulation. Dev Biol 2010, 344:26-35.
-
(2010)
Dev Biol
, vol.344
, pp. 26-35
-
-
Köster, I.1
Jungwirth, M.S.2
Steinbeisser, H.3
-
15
-
-
79151485702
-
The involvement of Eph-Ephrin signaling in tissue separation and convergence during Xenopus gastrulation movements.
-
Park EC, Cho GS, Kim GH, Choi SC, Han JK. The involvement of Eph-Ephrin signaling in tissue separation and convergence during Xenopus gastrulation movements. Dev Biol 2011, 350:441-450.
-
(2011)
Dev Biol
, vol.350
, pp. 441-450
-
-
Park, E.C.1
Cho, G.S.2
Kim, G.H.3
Choi, S.C.4
Han, J.K.5
-
16
-
-
79953714884
-
EphrinB/EphB signaling controls embryonic germ layer separation by contact-induced cell detachment.
-
doi:10.1371/journal.pbio.1000597.
-
Rohani N, Canty L, Luu O, Fagotto F, Winklbauer R. EphrinB/EphB signaling controls embryonic germ layer separation by contact-induced cell detachment. PLoS Biol 2011, 9:e1000597. doi:10.1371/journal.pbio.1000597.
-
(2011)
PLoS Biol
, vol.9
-
-
Rohani, N.1
Canty, L.2
Luu, O.3
Fagotto, F.4
Winklbauer, R.5
-
17
-
-
0037240002
-
Conserved requirement of Lim1 function for cell movements during gastrulation.
-
Hukriede NA, Tsang TE, Habas R, Khoo PL, Steiner K, Weeks DL, Tam PP, Dawid IB. Conserved requirement of Lim1 function for cell movements during gastrulation. Dev Cell 2003, 4:83-94.
-
(2003)
Dev Cell
, vol.4
, pp. 83-94
-
-
Hukriede, N.A.1
Tsang, T.E.2
Habas, R.3
Khoo, P.L.4
Steiner, K.5
Weeks, D.L.6
Tam, P.P.7
Dawid, I.B.8
-
18
-
-
4444239003
-
Paraxial protocadherin coordinates cell polarity during convergent extension via Rho A and JNK.
-
Unterseher F, Hefele JA, Giehl K, De Robertis EM, Wedlich D, Schambony A. Paraxial protocadherin coordinates cell polarity during convergent extension via Rho A and JNK. EMBO J 2004, 23:3259-3269.
-
(2004)
EMBO J
, vol.23
, pp. 3259-3269
-
-
Unterseher, F.1
Hefele, J.A.2
Giehl, K.3
De Robertis, E.M.4
Wedlich, D.5
Schambony, A.6
-
19
-
-
0034026842
-
The putative wnt receptor Xenopus frizzled-7 functions upstream of b-catenin in vertebrate dorsoventral mesoderm patterning.
-
Sumanas S, Strege P, Heasman J, Ekker SC. The putative wnt receptor Xenopus frizzled-7 functions upstream of b-catenin in vertebrate dorsoventral mesoderm patterning. Development 2000, 127:1981-1990.
-
(2000)
Development
, vol.127
, pp. 1981-1990
-
-
Sumanas, S.1
Strege, P.2
Heasman, J.3
Ekker, S.C.4
-
20
-
-
0035950183
-
Frizzled-7 signalling controls tissue separation during Xenopus gastrulation.
-
Winklbauer R, Medina A, Swain RK, Steinbeisser H. Frizzled-7 signalling controls tissue separation during Xenopus gastrulation. Nature 2001, 413:856-860.
-
(2001)
Nature
, vol.413
, pp. 856-860
-
-
Winklbauer, R.1
Medina, A.2
Swain, R.K.3
Steinbeisser, H.4
-
21
-
-
0033731010
-
Focal adhesion kinase suppresses Rho activity to promote focal adhesion turnover.
-
Ren XD, Kiosses WB, Sieg DJ, Otey CA, Schlaepfer DD, Schwartz MA. Focal adhesion kinase suppresses Rho activity to promote focal adhesion turnover. J Cell Sci 2000, 113:3673-3678.
-
(2000)
J Cell Sci
, vol.113
, pp. 3673-3678
-
-
Ren, X.D.1
Kiosses, W.B.2
Sieg, D.J.3
Otey, C.A.4
Schlaepfer, D.D.5
Schwartz, M.A.6
-
22
-
-
22244473991
-
A microtubule-dependent zone of active RhoA during cleavage plane specification.
-
Bement WM, Benink HA, von Dassow G. A microtubule-dependent zone of active RhoA during cleavage plane specification. J Cell Biol 2005, 170:91-101.
-
(2005)
J Cell Biol
, vol.170
, pp. 91-101
-
-
Bement, W.M.1
Benink, H.A.2
von Dassow, G.3
-
23
-
-
66349125303
-
Detection of activated Rho in fixed Xenopus tissue.
-
Berger CD, März M, Kitzing TM, Grosse R, Steinbeisser H. Detection of activated Rho in fixed Xenopus tissue. Dev Dyn 2009, 238:1407-1411.
-
(2009)
Dev Dyn
, vol.238
, pp. 1407-1411
-
-
Berger, C.D.1
März, M.2
Kitzing, T.M.3
Grosse, R.4
Steinbeisser, H.5
-
24
-
-
74349119441
-
Distinct Xenopus Nodal ligands sequentially induce mesendoderm and control gastrulation movements in parallel to the Wnt/PCP pathway.
-
Luxardi G, Marchal L, Thomé V, Kodjabachian L. Distinct Xenopus Nodal ligands sequentially induce mesendoderm and control gastrulation movements in parallel to the Wnt/PCP pathway. Development 2010, 137:417-426.
-
(2010)
Development
, vol.137
, pp. 417-426
-
-
Luxardi, G.1
Marchal, L.2
Thomé, V.3
Kodjabachian, L.4
-
25
-
-
33750014234
-
A role for GATA factors in Xenopus gastrulation movements.
-
Fletcher G, Jones GE, Patient R, Snape A. A role for GATA factors in Xenopus gastrulation movements. Mech Dev 2006, 123:730-745.
-
(2006)
Mech Dev
, vol.123
, pp. 730-745
-
-
Fletcher, G.1
Jones, G.E.2
Patient, R.3
Snape, A.4
-
26
-
-
39449085234
-
Eph/ephrin signaling: networks
-
Review].
-
Arvanitis D, Davy A. Eph/ephrin signaling: networks [Review]. Genes Dev 2008, 22:416-429.
-
(2008)
Genes Dev
, vol.22
, pp. 416-429
-
-
Arvanitis, D.1
Davy, A.2
-
27
-
-
0032190648
-
Eph signaling is required for segmentation and differentiation of the somites.
-
Durbin L, Brennan C, Shiomi K, Cooke J, Barrios A, Shanmugalingam S, Guthrie B, Lindberg R, Holder N. Eph signaling is required for segmentation and differentiation of the somites. Genes Dev 1998, 12:3096-3109.
-
(1998)
Genes Dev
, vol.12
, pp. 3096-3109
-
-
Durbin, L.1
Brennan, C.2
Shiomi, K.3
Cooke, J.4
Barrios, A.5
Shanmugalingam, S.6
Guthrie, B.7
Lindberg, R.8
Holder, N.9
-
28
-
-
26844448800
-
Adam meets Eph: an ADAM substrate recognition module acts as a molecular switch for ephrin cleavage in trans.
-
Janes PW, Saha N, Barton WA, Kolev MV, Wimmer-Kleikamp SH, Nievergall E, Blobel CP, Himanen JP, Lackmann M, Nikolov DB. Adam meets Eph: an ADAM substrate recognition module acts as a molecular switch for ephrin cleavage in trans. Cell 2005, 123:291-304.
-
(2005)
Cell
, vol.123
, pp. 291-304
-
-
Janes, P.W.1
Saha, N.2
Barton, W.A.3
Kolev, M.V.4
Wimmer-Kleikamp, S.H.5
Nievergall, E.6
Blobel, C.P.7
Himanen, J.P.8
Lackmann, M.9
Nikolov, D.B.10
-
29
-
-
34247615569
-
Bidirectional Eph-ephrin signaling during axon guidance [Review].
-
Epub ahead of print; Apr 8, 2007).
-
Egea J, Klein R. Bidirectional Eph-ephrin signaling during axon guidance [Review]. Trends Cell Biol 2007, 17:230-238. (Epub ahead of print; Apr 8, 2007).
-
(2007)
Trends Cell Biol
, vol.17
, pp. 230-238
-
-
Egea, J.1
Klein, R.2
-
30
-
-
0034714357
-
Regulated cleavage of a contact-mediated axon repellent.
-
Hattori M, Osterfield M, Flanagan JG. Regulated cleavage of a contact-mediated axon repellent. Science 2000, 289:1360-1365.
-
(2000)
Science
, vol.289
, pp. 1360-1365
-
-
Hattori, M.1
Osterfield, M.2
Flanagan, J.G.3
-
31
-
-
77955561183
-
ADAM13 induces cranial neural crest by cleaving class B Ephrins and regulating Wnt signaling.
-
Wei S, Xu G, Bridges LC, Williams P, White JM, DeSimone DW. ADAM13 induces cranial neural crest by cleaving class B Ephrins and regulating Wnt signaling. Dev Cell 2010, 19:345-352.
-
(2010)
Dev Cell
, vol.19
, pp. 345-352
-
-
Wei, S.1
Xu, G.2
Bridges, L.C.3
Williams, P.4
White, J.M.5
DeSimone, D.W.6
|