-
1
-
-
0027439993
-
A role for Pax-1 as a mediator of notochordal signals during the dorsoventral specification of vertebrae
-
Koseki H., Wallin J., Wilting J., Mizutani Y., Kispert A., Ebensperger C., Herrmann B.G., Christ B., Balling R. A role for Pax-1 as a mediator of notochordal signals during the dorsoventral specification of vertebrae. Development 1993, 119:649-660.
-
(1993)
Development
, vol.119
, pp. 649-660
-
-
Koseki, H.1
Wallin, J.2
Wilting, J.3
Mizutani, Y.4
Kispert, A.5
Ebensperger, C.6
Herrmann, B.G.7
Christ, B.8
Balling, R.9
-
2
-
-
0030587617
-
Expression of avian Pax1 and Pax9 is intrinsically regulated in the pharyngeal endoderm, but depends on environmental influences in the paraxial mesoderm
-
Muller T.S., Ebensperger C., Neubuser A., Koseki H., Balling R., Christ B., Wilting J. Expression of avian Pax1 and Pax9 is intrinsically regulated in the pharyngeal endoderm, but depends on environmental influences in the paraxial mesoderm. Developmental Biology 1996, 178:403-417.
-
(1996)
Developmental Biology
, vol.178
, pp. 403-417
-
-
Muller, T.S.1
Ebensperger, C.2
Neubuser, A.3
Koseki, H.4
Balling, R.5
Christ, B.6
Wilting, J.7
-
3
-
-
0028630689
-
Patterning of mammalian somites by surface ectoderm and notochord: evidence for sclerotome induction by a hedgehog homolog
-
Fan C.M., Tessier-Lavigne M. Patterning of mammalian somites by surface ectoderm and notochord: evidence for sclerotome induction by a hedgehog homolog. Cell 1994, 79:1175-1186.
-
(1994)
Cell
, vol.79
, pp. 1175-1186
-
-
Fan, C.M.1
Tessier-Lavigne, M.2
-
4
-
-
0028301884
-
The role of Pax-1 in axial skeleton development
-
Wallin J., Wilting J., Koseki H., Fritsch R., Christ B., Balling R. The role of Pax-1 in axial skeleton development. Development 1994, 120:1109-1121.
-
(1994)
Development
, vol.120
, pp. 1109-1121
-
-
Wallin, J.1
Wilting, J.2
Koseki, H.3
Fritsch, R.4
Christ, B.5
Balling, R.6
-
5
-
-
0032555158
-
Targeted disruption of Pax1 defines its null phenotype and proves haploinsufficiency
-
Wilm B., Dahl E., Peters H., Balling R., Imai K. Targeted disruption of Pax1 defines its null phenotype and proves haploinsufficiency. Proceedings of the National Academy of Sciences of the United States of America 1998, 95:8692-8697.
-
(1998)
Proceedings of the National Academy of Sciences of the United States of America
, vol.95
, pp. 8692-8697
-
-
Wilm, B.1
Dahl, E.2
Peters, H.3
Balling, R.4
Imai, K.5
-
6
-
-
0033377614
-
Pax1 and Pax9 synergistically regulate vertebral column development
-
Peters H., Wilm B., Sakai N., Imai K., Maas R., Balling R. Pax1 and Pax9 synergistically regulate vertebral column development. Development 1999, 126:5399-5408.
-
(1999)
Development
, vol.126
, pp. 5399-5408
-
-
Peters, H.1
Wilm, B.2
Sakai, N.3
Imai, K.4
Maas, R.5
Balling, R.6
-
7
-
-
0037323850
-
Pax1 and Pax9 activate Bapx1 to induce chondrogenic differentiation in the sclerotome
-
Rodrigo I., Hill R.E., Balling R., Munsterberg A., Imai K. Pax1 and Pax9 activate Bapx1 to induce chondrogenic differentiation in the sclerotome. Development 2003, 130:473-482.
-
(2003)
Development
, vol.130
, pp. 473-482
-
-
Rodrigo, I.1
Hill, R.E.2
Balling, R.3
Munsterberg, A.4
Imai, K.5
-
8
-
-
0035463255
-
The chick transcriptional repressor Nkx3.2 acts downstream of Shh to promote BMP-dependent axial chondrogenesis
-
Murtaugh L.C., Zeng L., Chyung J.H., Lassar A.B. The chick transcriptional repressor Nkx3.2 acts downstream of Shh to promote BMP-dependent axial chondrogenesis. Developmental Cell 2001, 1:411-422.
-
(2001)
Developmental Cell
, vol.1
, pp. 411-422
-
-
Murtaugh, L.C.1
Zeng, L.2
Chyung, J.H.3
Lassar, A.B.4
-
9
-
-
0036683426
-
Shh establishes an Nkx3.2/Sox9 autoregulatory loop that is maintained by BMP signals to induce somitic chondrogenesis
-
Zeng L., Kempf H., Murtaugh L.C., Sato M.E., Lassar A.B. Shh establishes an Nkx3.2/Sox9 autoregulatory loop that is maintained by BMP signals to induce somitic chondrogenesis. Genes & Development 2002, 16:1990-2005.
-
(2002)
Genes & Development
, vol.16
, pp. 1990-2005
-
-
Zeng, L.1
Kempf, H.2
Murtaugh, L.C.3
Sato, M.E.4
Lassar, A.B.5
-
10
-
-
24344488971
-
Molecular signaling in intervertebral disk development
-
DiPaola C.P., Farmer J.C., Manova K., Niswander L.A. Molecular signaling in intervertebral disk development. Journal of Orthopaedic Research 2005, 23:1112-1119.
-
(2005)
Journal of Orthopaedic Research
, vol.23
, pp. 1112-1119
-
-
DiPaola, C.P.1
Farmer, J.C.2
Manova, K.3
Niswander, L.A.4
-
11
-
-
0031193948
-
Bapx1: an evolutionary conserved homologue of the Drosophila bagpipe homeobox gene is expressed in splanchnic mesoderm and the embryonic skeleton
-
Tribioli C., Frasch M., Lufkin T. Bapx1: an evolutionary conserved homologue of the Drosophila bagpipe homeobox gene is expressed in splanchnic mesoderm and the embryonic skeleton. Mechanisms of Development 1997, 65:145-162.
-
(1997)
Mechanisms of Development
, vol.65
, pp. 145-162
-
-
Tribioli, C.1
Frasch, M.2
Lufkin, T.3
-
12
-
-
20944446632
-
Expression and function of Bapx1 during chick limb development
-
Church V., Yamaguchi K., Tsang P., Akita K., Logan C., Francis-West P. Expression and function of Bapx1 during chick limb development. Anatomy and Embryology 2005, 209:461-469.
-
(2005)
Anatomy and Embryology
, vol.209
, pp. 461-469
-
-
Church, V.1
Yamaguchi, K.2
Tsang, P.3
Akita, K.4
Logan, C.5
Francis-West, P.6
-
13
-
-
0033567213
-
Indian hedgehog signaling regulates proliferation and differentiation of chondrocytes and is essential for bone formation
-
St-Jacques B., Hammerschmidt M., McMahon A.P. Indian hedgehog signaling regulates proliferation and differentiation of chondrocytes and is essential for bone formation. Genes & Development 1999, 13:2072-2086.
-
(1999)
Genes & Development
, vol.13
, pp. 2072-2086
-
-
St-Jacques, B.1
Hammerschmidt, M.2
McMahon, A.P.3
-
14
-
-
33645051457
-
Nkx3.2/Bapx1 acts as a negative regulator of chondrocyte maturation
-
Provot S., Kempf H., Murtaugh L.C., Chung U.I., Kim D.W., Chyung J., Kronenberg H.M., Lassar A.B. Nkx3.2/Bapx1 acts as a negative regulator of chondrocyte maturation. Development 2006, 133:651-662.
-
(2006)
Development
, vol.133
, pp. 651-662
-
-
Provot, S.1
Kempf, H.2
Murtaugh, L.C.3
Chung, U.I.4
Kim, D.W.5
Chyung, J.6
Kronenberg, H.M.7
Lassar, A.B.8
-
15
-
-
0027018236
-
A series of normal stages in the development of the chick embryo
-
Hamburger V., Hamilton H.L. A series of normal stages in the development of the chick embryo. Developmental Dynamics 1951, 195(1992):231-272.
-
(1951)
Developmental Dynamics
, vol.195
, Issue.1992
, pp. 231-272
-
-
Hamburger, V.1
Hamilton, H.L.2
-
16
-
-
33748765254
-
Scleraxis positively regulates the expression of tenomodulin, a differentiation marker of tenocytes
-
Shukunami C., Takimoto A., Oro M., Hiraki Y. Scleraxis positively regulates the expression of tenomodulin, a differentiation marker of tenocytes. Developmental Biology 2006, 298:234-247.
-
(2006)
Developmental Biology
, vol.298
, pp. 234-247
-
-
Shukunami, C.1
Takimoto, A.2
Oro, M.3
Hiraki, Y.4
-
17
-
-
84862008169
-
Direct conversion of tenocytes into chondrocytes by Sox9
-
Takimoto A., Oro M., Hiraki Y., Shukunami C. Direct conversion of tenocytes into chondrocytes by Sox9. Experimental Cell Research 2012, 318:1492-1507.
-
(2012)
Experimental Cell Research
, vol.318
, pp. 1492-1507
-
-
Takimoto, A.1
Oro, M.2
Hiraki, Y.3
Shukunami, C.4
-
18
-
-
67650970081
-
Differential actions of VEGF-A isoforms on perichondrial angiogenesis during endochondral bone formation
-
Takimoto A., Nishizaki Y., Hiraki Y., Shukunami C. Differential actions of VEGF-A isoforms on perichondrial angiogenesis during endochondral bone formation. Developmental Biology 2009, 332:196-211.
-
(2009)
Developmental Biology
, vol.332
, pp. 196-211
-
-
Takimoto, A.1
Nishizaki, Y.2
Hiraki, Y.3
Shukunami, C.4
-
19
-
-
0033035607
-
Delta-1 negatively regulates the transition from prehypertrophic to hypertrophic chondrocytes during cartilage formation
-
Crowe R., Zikherman J., Niswander L. Delta-1 negatively regulates the transition from prehypertrophic to hypertrophic chondrocytes during cartilage formation. Development 1999, 126:987-998.
-
(1999)
Development
, vol.126
, pp. 987-998
-
-
Crowe, R.1
Zikherman, J.2
Niswander, L.3
-
20
-
-
33751106713
-
Runx2 inhibits chondrocyte proliferation and hypertrophy through its expression in the perichondrium
-
Hinoi E., Bialek P., Chen Y.T., Rached M.T., Groner Y., Behringer R.R., Ornitz D.M., Karsenty G. Runx2 inhibits chondrocyte proliferation and hypertrophy through its expression in the perichondrium. Genes & Development 2006, 20:2937-2942.
-
(2006)
Genes & Development
, vol.20
, pp. 2937-2942
-
-
Hinoi, E.1
Bialek, P.2
Chen, Y.T.3
Rached, M.T.4
Groner, Y.5
Behringer, R.R.6
Ornitz, D.M.7
Karsenty, G.8
-
21
-
-
11144354938
-
Runx2 and Runx3 are essential for chondrocyte maturation, and Runx2 regulates limb growth through induction of Indian hedgehog
-
Yoshida C.A., Yamamoto H., Fujita T., Furuichi T., Ito K., Inoue K., Yamana K., Zanma A., Takada K., Ito Y., Komori T. Runx2 and Runx3 are essential for chondrocyte maturation, and Runx2 regulates limb growth through induction of Indian hedgehog. Genes & Development 2004, 18:952-963.
-
(2004)
Genes & Development
, vol.18
, pp. 952-963
-
-
Yoshida, C.A.1
Yamamoto, H.2
Fujita, T.3
Furuichi, T.4
Ito, K.5
Inoue, K.6
Yamana, K.7
Zanma, A.8
Takada, K.9
Ito, Y.10
Komori, T.11
-
22
-
-
77957205188
-
F-spondin regulates chondrocyte terminal differentiation and endochondral bone formation
-
Palmer G.D., Piton A.H., Thant L.M., Oliveira S.M., D'Angelo M., Attur M.G., Abramson S.B., Teixeira C.C. F-spondin regulates chondrocyte terminal differentiation and endochondral bone formation. Journal of Orthopaedic Research 2010, 28:1323-1329.
-
(2010)
Journal of Orthopaedic Research
, vol.28
, pp. 1323-1329
-
-
Palmer, G.D.1
Piton, A.H.2
Thant, L.M.3
Oliveira, S.M.4
D'Angelo, M.5
Attur, M.G.6
Abramson, S.B.7
Teixeira, C.C.8
-
24
-
-
0028830855
-
The Sry-related gene Sox9 is expressed during chondrogenesis in mouse embryos
-
Wright E., Hargrave M.R., Christiansen J., Cooper L., Kun J., Evans T., Gangadharan U., Greenfield A., Koopman P. The Sry-related gene Sox9 is expressed during chondrogenesis in mouse embryos. Nature Genetics 1995, 9:15-20.
-
(1995)
Nature Genetics
, vol.9
, pp. 15-20
-
-
Wright, E.1
Hargrave, M.R.2
Christiansen, J.3
Cooper, L.4
Kun, J.5
Evans, T.6
Gangadharan, U.7
Greenfield, A.8
Koopman, P.9
-
25
-
-
84871856282
-
Nkx3.2 promotes primary chondrogenic differentiation by upregulating Col2a1 transcription
-
Kawato Y., Hirao M., Ebina K., Shi K., Hashimoto J., Honjo Y., Yoshikawa H., Myoui A. Nkx3.2 promotes primary chondrogenic differentiation by upregulating Col2a1 transcription. PLoS One 2012, 7:e34703.
-
(2012)
PLoS One
, vol.7
-
-
Kawato, Y.1
Hirao, M.2
Ebina, K.3
Shi, K.4
Hashimoto, J.5
Honjo, Y.6
Yoshikawa, H.7
Myoui, A.8
-
26
-
-
0030855005
-
Parallel expression of Sox9 and Col2a1 in cells undergoing chondrogenesis
-
Zhao Q., Eberspaecher H., Lefebvre V., De Crombrugghe B. Parallel expression of Sox9 and Col2a1 in cells undergoing chondrogenesis. Developmental Dynamics 1997, 209:377-386.
-
(1997)
Developmental Dynamics
, vol.209
, pp. 377-386
-
-
Zhao, Q.1
Eberspaecher, H.2
Lefebvre, V.3
De Crombrugghe, B.4
-
27
-
-
77950345356
-
SOX9 is a major negative regulator of cartilage vascularization, bone marrow formation and endochondral ossification
-
Hattori T., Muller C., Gebhard S., Bauer E., Pausch F., Schlund B., Bosl M.R., Hess A., Surmann-Schmitt C., von der Mark H., de Crombrugghe B., von der Mark K. SOX9 is a major negative regulator of cartilage vascularization, bone marrow formation and endochondral ossification. Development 2010, 137:901-911.
-
(2010)
Development
, vol.137
, pp. 901-911
-
-
Hattori, T.1
Muller, C.2
Gebhard, S.3
Bauer, E.4
Pausch, F.5
Schlund, B.6
Bosl, M.R.7
Hess, A.8
Surmann-Schmitt, C.9
von der Mark, H.10
de Crombrugghe, B.11
von der Mark, K.12
-
28
-
-
67349120238
-
Sox9 directly promotes Bapx1 gene expression to repress Runx2 in chondrocytes
-
Yamashita S., Andoh M., Ueno-Kudoh H., Sato T., Miyaki S., Asahara H. Sox9 directly promotes Bapx1 gene expression to repress Runx2 in chondrocytes. Experimental Cell Research 2009, 315:2231-2240.
-
(2009)
Experimental Cell Research
, vol.315
, pp. 2231-2240
-
-
Yamashita, S.1
Andoh, M.2
Ueno-Kudoh, H.3
Sato, T.4
Miyaki, S.5
Asahara, H.6
-
29
-
-
77954980434
-
Toward an understanding of the role of notochordal cells in the adult intervertebral disc: from discord to accord
-
Risbud M.V., Schaer T.P., Shapiro I.M. Toward an understanding of the role of notochordal cells in the adult intervertebral disc: from discord to accord. Developmental Dynamics 2010, 239:2141-2148.
-
(2010)
Developmental Dynamics
, vol.239
, pp. 2141-2148
-
-
Risbud, M.V.1
Schaer, T.P.2
Shapiro, I.M.3
-
30
-
-
84867990014
-
Diversity of intervertebral disc cells: phenotype and function
-
Pattappa G., Li Z., Peroglio M., Wismer N., Alini M., Grad S. Diversity of intervertebral disc cells: phenotype and function. Journal of Anatomy 2012, 221:480-496.
-
(2012)
Journal of Anatomy
, vol.221
, pp. 480-496
-
-
Pattappa, G.1
Li, Z.2
Peroglio, M.3
Wismer, N.4
Alini, M.5
Grad, S.6
-
31
-
-
41049109533
-
Chondromodulin-I and tenomodulin are differentially expressed in the avascular mesenchyme during mouse and chick development
-
Shukunami C., Takimoto A., Miura S., Nishizaki Y., Hiraki Y. Chondromodulin-I and tenomodulin are differentially expressed in the avascular mesenchyme during mouse and chick development. Cell and Tissue Research 2008, 332:111-122.
-
(2008)
Cell and Tissue Research
, vol.332
, pp. 111-122
-
-
Shukunami, C.1
Takimoto, A.2
Miura, S.3
Nishizaki, Y.4
Hiraki, Y.5
|