spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Kruger, M.
Right arrow Articles by Braun, T.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Kruger, M.
Right arrow Articles by Braun, T.
Amthor, H., Christ, B., Weil, M. and Patel, K (1998). The importance of timing differentiation during limb muscle development. Curr. Biol 8, 642-652.[Medline]

Arnold, H. H. and Braun, T (2000). Genetics of muscle determination and development. Curr. Top. Dev. Biol 48, 129-164.[Medline]

Ashby, P. R., Pincon-Raymond, M. and Harris, A. J (1993). Regulation of myogenesis in paralyzed muscles in the mouse mutants peroneal muscular atrophy and muscular dysgenesis. Dev. Biol 156, 529-536.[Medline]

Ashby, P. R., Wilson, S. J. and Harris, A. J (1993). Formation of primary and secondary myotubes in aneural muscles in the mouse mutant peroneal muscular atrophy. Dev. Biol 156, 519-528.[Medline]

Barna, M., Hawe, N., Niswander, L. and Pandolfi, P. P (2000). Plzf regulates limb and axial skeletal patterning. Nat. Genet 25, 166-172.[Medline]

Basler, K. and Struhl, G (1994). Compartment boundaries and the control of Drosophila limb pattern by hedgehog protein. Nature 368, 208-214.[Medline]

Bober, E., Brand-Saberi, B., Ebensperger, C., Wilting, J., Balling, R., Paterson, B. M., Arnold, H. H. and Christ, B (1994). Initial steps of myogenesis in somites are independent of influence from axial structures. Development 120, 3073-3082.[Abstract]

Bober, E., Franz, T., Arnold, H. H., Gruss, P. and Tremblay, P (1994). Pax-3 is required for the development of limb muscles: a possible role for the migration of dermomyotomal muscle progenitor cells. Development 120, 603-612.[Abstract]

Borycki, A. G., Brunk, B., Tajbakhsh, S., Buckingham, M., Chiang, C. and Emerson, C. P., Jr (1999). Sonic hedgehog controls epaxial muscle determination through Myf5 activation. Development 126, 4053-4063.[Abstract]

Borycki, A., Brown, A. M. and Emerson, C. P., Jr (2000). Shh and Wnt signaling pathways converge to control Gli gene activation in avian somites. Development 127, 2075-2087.[Abstract]

Brand-Saberi, B. and Christ, B (2000). Evolution and development of distinct cell lineages derived from somites. Curr. Top. Dev. Biol 48, 1-42.[Medline]

Braun, T., Rudnick\222, M. A., Arnold, H.-H. and Jaenisch, R (1992). Targeted inactivation of the muscle regulatory gene Myf-5 results in abnormal rib development and perinatal death. Cell 71, 369-382.[Medline]

Braun, T. and Arnold, H. H (1995). Inactivation of Myf-6 and Myf-5 genes in mice leads to alterations in skeletal muscle development. EMBO J 14, 1176-1186.[Medline]

Chiang, C., Litingtung, Y., Lee, E., Young, K. E., Corden, J. L., Westphal, H. and Beachy, P. A (1996). Cyclopia and defective axial patterning in mice lacking Sonic hedgehog gene function. Nature 383, 407-413.[Medline]

Christian, J (2000). BMP, Wnt and Hedgehog signals: how far can they go?. Curr. Opin. Cell Biol 12, 244-249.[Medline]

Cornelison, D. D. and Wold, B. J (1997). Single-cell analysis of regulatory gene expression in quiescent and activated mouse skeletal muscle satellite cells. Dev. Biol 191, 270-283.[Medline]

Dockter, J. L (2000). Sclerotome induction and differentiation. Curr. Top. Dev. Biol 48, 77-127.[Medline]

Duprez, D., Fournier-Thibault, C. and Le Douarin, N (1998). Sonic Hedgehog induces proliferation of committed skeletal muscle cells in the chick limb. Development 125, 495-505.[Abstract]

Duprez, D., Lapointe, F., Edom-Vovard, F., Kostakopoulou, K. and Robson, L (1999). Sonic hedgehog ( Shh ) specifies muscle pattern at tissue and cellular chick level, in the chick limb bud. Mech. Dev 82, 151-163.[Medline]

Duxson, M. J., Usson, Y. and Harris, A. J (1989). The origin of secondary myotubes in mammalian skeletal muscles: ultrastructural studies. Development 107, 743-750.[Abstract/Free Full Text]

Fekete, D. M. and Cepko, C. L (1993). Replication-competent retroviral vectors encoding alkaline phosphatase reveal spatial restriction of viral gene expression/transduction in the chick embryo. Mol. Cell Biol 13, 2604-2613.[Abstract/Free Full Text]

Grass, S., Arnold, H. H. and Braun, T (1996). Alterations in somite patterning of Myf-5-deficient mice: a possible role for FGF-4 and FGF-6. Development 122, 141-150.[Abstract]

Grim, M (1973). Origin of the muscle blastemas in the developing pectoral fin of the rainbow trout (Salmo gairdeneri). Folia Morphol 21, 197-.[Medline]

Harris, A. J., Duxson, M. J., Fitzsimons, R. B. and Rieger, F (1989). Myonuclear birthdates distinguish the origins of primary and secondary myotubes in embryonic mammalian skeletal muscles. Development 107, 771-784.[Abstract/Free Full Text]

Heymer, J. and Ruther, U (1999). Syndactyly of Ft/+ mice correlates with an imbalance in bmp4 and fgf8 expression. Mech. Dev 88, 173-181.[Medline]

Kaul, A., Koster, M., Neuhaus, H. and Braun, T (2000). Myf-5 revisited: loss of early myotome formation does not lead to a rib phenotype in homozygous Myf-5 mutant mice. Cell 102, 17-19.[Medline]

Maroto, M., Reshef, R., Munsterberg, A. E., Koester, S., Goulding, M. and Lassar, A. B (1997). Ectopic Pax-3 activates MyoD and Myf-5 expression in embryonic mesoderm and neural tissue. Cell 89, 139-148.[Medline]

McMahon, J. A., Takada, S., Zimmerman, L. B., Fan, C. M., Harland, R. M. and McMahon, A. P (1998). Noggin-mediated antagonism of BMPsignaling is required for growth and patterning of the neural tube and somite. Genes Dev 12, 1438-1452.[Abstract/Free Full Text]

Monsoro-Burq, A. H. and Le Douarin, N (2000). Duality of molecular signaling involved in vertebral chondrogenesis. Curr. Top. Dev. Biol 48, 43-75.[Medline]

Munsterberg, A. E., Kitajewski, J., Bumcrot, D. A., McMahon, A. P. and Lassar, A. B (1995). Combinatorial signaling by Sonic hedgehog and Wnt family members induces myogenic bHLH gene expression in the somite. Genes Dev 9, 2911-2922.[Abstract/Free Full Text]

Neyt, C., Jagla, K., Thisse,C., Thisse, B., Haines, L., and Currie, P. D (2000). Evolutionary origins of vertebrate appendicular muscle. Nature 408, 82-86.[Medline]

Ontell, M., Ontell, M. P., Sopper, M. M., Mallonga, R., Lyons, G. and Buckingham, M (1993). Contractile protein gene expression in primary myotubes of embryonic mouse hindlimb muscles. Development 117, 1435-1444.[Abstract]

Ordahl, C. P. and Le Douarin, N. M (1992). Two myogenic lineages within the developing somite. Development 114, 339-353.[Abstract]

Ordahl, C. P., Williams, B. A. and Denetclaw, W (2000). Determination and morphogenesis in myogenic progenitor cells: an experimental embryological approach. Curr. Top. Dev. Biol 48, 319-367.[Medline]

Patapoutian, A., Yoon, J. K., Miner, J. H., Wang, S., Stark, K. and Wold, B (1995). Disruption of the mouse MRF4 gene identifies multiple waves of myogenesis in the myotome. Development 121, 3347-3358.[Abstract]

Pourquie, O., Fan, C. M., Coltey, M., Hirsinger, E., Watanabe, Y., Breant, C., Francis-West, P., Brickell, P., Tessier-Lavigne, M. and Le Douarin, N. M (1986). Lateral and axial signals involved in avian somite patterning: a role for BMP4. Cell 84, 461-471.

Rong, P. M., Teillet, M. A., Ziller, C., and Le Douarin, N. M (1992). The neural tube/notochord complex is necessary for vertebral but not limb and body wall striated muscle differentiation. Development 115, 657-672.[Abstract]

Rudnicki, M. A., Braun, T., Hinuma, S., and Jaenisch, R (1992). Inactivation of MyoD in mice leads to up-regulation of the myogenic HLH gene Myf-5 and results in apparently normal muscle development. Cell 71, 383-390.[Medline]

Selby, P. B., Bolch, S. N., Mierzejewski, V. S., McKinley, T. W., Jr. and Raymer, G. D (1993). Synergistic interactions between two skeletal mutations in mice: individual and combined effects of the semidominants cleidocranial dysplasia (Ccd) and short digits (Dsh). J. Hered 84, 466-474.[Abstract/Free Full Text]

Tajbakhsh, S. and Buckingham, M (2000). The birth of muscle progenitor cells in the mouse: spatiotemporal considerations. Curr. Top. Dev. Biol 48, 225-268.[Medline]

Talbot, W. S., Trevarrow, B., Halpern, M. E., Melby, A. E., Farr, G., Postlethwait, J. H., Jowett, T., and Kimmel, C (1995). A homeobox gene essential for zebrafish notochord development. Nature 378, 150-157.[Medline]

Teillet, M., Watanabe, Y., Jeffs, P., Duprez, D., Lapointe, F. and Le Douarin, N. M (1998). Sonic hedgehog is required for survival of both myogenic and chondrogenic somitic lineages. Development 125, 2019-2030.[Abstract]

Wilson, S. J. and Harris, A. J (1993). Formation of myotubes in aneural rat muscles. Dev. Biol 156, 509-518.[Medline]

Zuniga, A., Haramis, A. P., McMahon, A. P. and Zeller, R (1999). Signal relay by BMP antagonism controls the Shh /FGF4 feedback loop in vertebrate limb buds. Nature 401, 598-602.[Medline]




This article has been cited by other articles:


Home page
IOVSHome page
B. C. Anderson, S. P. Christiansen, and L. K. McLoon
Myogenic Growth Factors Can Decrease Extraocular Muscle Force Generation: A Potential Biological Approach to the Treatment of Strabismus
Invest. Ophthalmol. Vis. Sci., January 1, 2008; 49(1): 221 - 229.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. Buchberger, D. Freitag, and H.-H. Arnold
A homeo-paired domain-binding motif directs Myf5 expression in progenitor cells of limb muscle
Development, March 15, 2007; 134(6): 1171 - 1180.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
U. Borello, B. Berarducci, P. Murphy, L. Bajard, V. Buffa, S. Piccolo, M. Buckingham, and G. Cossu
The Wnt/{beta}-catenin pathway regulates Gli-mediated Myf5 expression during somitogenesis
Development, September 15, 2006; 133(18): 3723 - 3732.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. E. Brent, T. Braun, and C. J. Tabin
Genetic analysis of interactions between the somitic muscle, cartilage and tendon cell lineages during mouse development
Development, February 1, 2005; 132(3): 515 - 528.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. McDermott, M. Gustafsson, T. Elsam, C.-C. Hui, C. P. Emerson Jr, and A.-G. Borycki
Gli2 and Gli3 have redundant and context-dependent function in skeletal muscle formation
Development, January 15, 2005; 132(2): 345 - 357.
[Abstract] [Full Text] [PDF]


Home page
Mol. Cell. Biol.Home page
C. T. Lee, L. Li, N. Takamoto, J. F. Martin, F. J. DeMayo, M.-J. Tsai, and S. Y. Tsai
The Nuclear Orphan Receptor COUP-TFII Is Required for Limb and Skeletal Muscle Development
Mol. Cell. Biol., December 15, 2004; 24(24): 10835 - 10843.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. Grimaldi, G. Tettamanti, B. L. Martin, W. Gaffield, M. E. Pownall, and S. M. Hughes
Hedgehog regulation of superficial slow muscle fibres in Xenopus and the evolution of tetrapod trunk myogenesis
Development, July 15, 2004; 131(14): 3249 - 3262.
[Abstract] [Full Text] [PDF]


Home page
Nucleic Acids ResHome page
S. Gunther, M. Mielcarek, M. Kruger, and T. Braun
VITO-1 is an essential cofactor of TEF1-dependent muscle-specific gene regulation
Nucleic Acids Res., February 3, 2004; 32(2): 791 - 802.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
L. Teboul, D. Summerbell, and P. W.J. Rigby
The initial somitic phase of Myf5 expression requires neither Shh signaling nor Gli regulation
Genes & Dev., December 1, 2003; 17(23): 2870 - 2874.
[Abstract] [Full Text] [PDF]


Home page
Mol. Cell. Biol.Home page
P. Neuhaus, S. Oustanina, T. Loch, M. Kruger, E. Bober, R. Dono, R. Zeller, and T. Braun
Reduced Mobility of Fibroblast Growth Factor (FGF)-Deficient Myoblasts Might Contribute to Dystrophic Changes in the Musculature of FGF2/FGF6/mdx Triple-Mutant Mice
Mol. Cell. Biol., September 1, 2003; 23(17): 6037 - 6048.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
K. Anakwe, L. Robson, J. Hadley, P. Buxton, V. Church, S. Allen, C. Hartmann, B. Harfe, T. Nohno, A. M. C. Brown, et al.
Wnt signalling regulates myogenic differentiation in the developing avian wing
Development, August 1, 2003; 130(15): 3503 - 3514.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. Buchberger, N. Nomokonova, and H.-H. Arnold
Myf5 expression in somites and limb buds of mouse embryos is controlled by two distinct distal enhancer activities
Development, July 15, 2003; 130(14): 3297 - 3307.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
S. J. Venters and C. P. Ordahl
Persistent myogenic capacity of the dermomyotome dorsomedial lip and restriction of myogenic competence
Development, March 10, 2003; 129(16): 3873 - 3885.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
L. Teboul, J. Hadchouel, P. Daubas, D. Summerbell, M. Buckingham, and P. W. J. Rigby
The early epaxial enhancer is essential for the initial expression of the skeletal muscle determination gene Myf5 but not for subsequent, multiple phases of somitic myogenesis
Development, January 10, 2002; 129(19): 4571 - 4580.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
M. K. Gustafsson, H. Pan, D. F. Pinney, Y. Liu, A. Lewandowski, D. J. Epstein, and C. P. Emerson Jr.
Myf5 is a direct target of long-range Shh signaling and Gli regulation for muscle specification
Genes & Dev., January 1, 2002; 16(1): 114 - 126.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
J.-B. Charrier, F. Lapointe, N. M. L. Douarin, and M.-A. Teillet
Anti-apoptotic role of Sonic hedgehog protein at the early stages of nervous system organogenesis
Development, October 15, 2001; 128(20): 4011 - 4020.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
K. E. Lewis and J. S. Eisen
Hedgehog signaling is required for primary motoneuron induction in zebrafish
Development, September 15, 2001; 128(18): 3485 - 3495.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
W. Nikovits Jr., G. M. Cann, R. Huang, B. Christ, and F. E. Stockdale
Patterning of fast and slow fibers within embryonic muscles is established independently of signals from the surrounding mesenchyme
Development, July 1, 2001; 128(13): 2537 - 2544.
[Abstract] [Full Text] [PDF]


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Kruger, M.
Right arrow Articles by Braun, T.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Kruger, M.
Right arrow Articles by Braun, T.