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Agius, E., Oelgeschlager, M., Wessely, O., Kemp, C. and De Robertis, E. M (2000). Endodermal Nodal-related signals and mesoderm induction in Xenopus. Development 127, 1173-1183.[Abstract]

Bachiller, D., Klingensmith, J., Kemp, C., Belo, J. A., Anderson, R. M., May, S. R., McMahon, J. A., McMahon, A. P., Harland, R. M., Rossant, J. and De Robertis, E. M (2000). The organizer factors Chordin and Noggin are required for mouse forebrain development. Nature 403, 658-661.[Medline]

Beddington, R. S. and Robertson, E. J (1998). Anterior patterning in mouse. Trends Genet 14, 277-284.[Medline]

Beddington, R. S. and Robertson, E. J (1999). Axis development and early asymmetry in mammals. Cell 96, 195-209.[Medline]

Belo, J. A., Bouwmeester, T., Leyns, L., Kertesz, N., Gallo, M., Follettie, M. and De Robertis, E. M (1997). Cerberus-like is a secreted factor with neutralizing activity expressed in the anterior primitive endoderm of the mouse gastrula. Mech. Dev 68, 45-57.[Medline]

Biben, C., Stanley, E., Fabri, L., Kotecha, S., Rhinn, M., Drinkwater, C., Lah, M., Wang, C. C., Nash, A., Hilton, D., Ang, S. L., Mohun, T. and Harvey, R. P (1998). Murine cerberus homologue mCer-1: a candidate anterior patterning molecule. Dev. Biol 194, 135-151.[Medline]

Bisgrove, B. W., Essner, J. J. and Yost, H. J (1999). Regulation of midline development by antagonism of lefty and nodal signaling. Development 126, 3253-3262.[Abstract]

Bouwmeester, T. and Leyns, L (1997). Vertebrate head induction by anterior primitive endoderm. BioEssays 19, 855-863.[Medline]

Buchholz, F., Angrand, P. O. and Stewart, A. F (1996). A simple assay to determine the functionality of Cre or FLP recombination targets in genomic manipulation constructs. Nucleic Acids Res 24, 3118-3119.[Abstract/Free Full Text]

Burdine, R. D. and Schier, A. F (2000). Conserved and divergent mechanisms in left-right axis formation. Genes Dev 14, 763-776.[Free Full Text]

Burgess, R., Cserjesi, P., Ligon, K. L. and Olson, E. N (1995). Paraxis: a basic helix-loop-helix protein expressed in paraxial mesoderm and developing somites. Dev. Biol 168, 296-306.[Medline]

Buzin, C. H., Mann, J. R. and Singer-Sam, J (1994). Quantitative RT-PCR assays show Xist RNA levels are low in mouse female adult tissue, embryos and embryoid bodies. Development 120, 3529-3536.[Abstract]

Campione, M., Steinbeisser, M., Schweickert, A., Deissler, K., van Bebber, F., Lowe, L. A., Nowotschin, S., Viebahn, C., Haffter, P., Kuehn, M. R. and Blum, M (1999). The homeobox gene Pitx2: mediator of asymmetric left-right signaling in vertebrate heart and gut looping. Development 126, 1225-1234.[Abstract]

Camus, A., Davidson, B. P., Billiards, S., Khoo, P., Rivera-Perez, J. A., Wakamiya, M., Behringer, R. R. and Tam, P. P (2000). The morphogenetic role of midline mesendoderm and ectoderm in the development of the forebrain and the midbrain of the mouse embryo. Development 127, 1799-1813.[Abstract]

Capdevila, J., Vogan, K. J., Tabin, C. J. and Izpisua Belmonte, J. C (2000). Mechanisms of left-right determination in vertebrates. Cell 101, 9-21.[Medline]

Chen, J. N., van Eeden, F. J., Warren, K. S., Chin, A., Nusslein-Volhard, C., Haffter, P. and Fishman, M. C (1997). Left-right pattern of cardiac BMP4 may drive asymmetry of the heart in zebrafish. Development 124, 4373-4382.[Abstract]

Cheng, A. M., Thisse, B., Thisse, C. and Wright, C. V (2000). The lefty-related factor Xatv acts as a feedback inhibitor of Nodal signaling inmesoderm induction and L-R axis development in Xenopus. Development 127, 1049-1061.[Abstract]

Collignon, J., Varlet, I. and Robertson, E. J (1996). Relationship between asymmetric nodal expression and the direction of embryonic turning. Nature 381, 155-158.[Medline]

Conlon, F. L., Barth, K. S. and Robertson, E. J (1991). A novel retrovirally induced embryonic lethal mutation in the mouse: assessment of the developmental fate of embryonic stem cells homozygous for the 413.d proviral integration. Development 111, 969-981.[Abstract/Free Full Text]

Conlon, F. L., Lyons, K. M., Takaesu, N., Barth, K. S., Kispert, A., Herrmann, B. and Robertson, E. J (1994). A primary requirement for nodal in the formation and maintenance of the primitive streak in the mouse. Development 120, 1919-1928.[Abstract]

Ding, J., Yang, L., Yan, Y. T., Chen, A., Desai, N., Wynshaw-Boris, A. and Shen, M. M (1998). Cripto is required for correct orientation of the anterior-posterior axis in the mouse embryo. Nature 395, 702-707.[Medline]

Feldman, B., Gates, M. A., Egan, E. S., Dougan, S. T., Rennebeck, G., Sirotkin, H. I., Schier, A. F. and Talbot, W. S (1998). Zebrafish organizer development and germ-layer formation require nodal-related signals. Nature 395, 181-185.[Medline]

Fujinaga, M., Lowe, L. A. and Kuehn, M. R (2000). 1 adrenergic stimulation perturbs the left-right asymmetric expression pattern of nodal during rat embryogenesis. Teratology 62, 317-324.[Medline]

Gage, P. J., Suh, H. and Camper, S. A (1999). Dosage requirement of Pitx2 for development of multiple organs. Development 126, 4643-4651.[Abstract]

Gritsman, K., Zhang, J., Cheng, S., Heckscher, E., Talbot, W. S. and Schier, A. F (1999). The EGF-CFC protein one-eyed pinhead is essential for nodal signaling. Cell 97, 121-132.[Medline]

Gritsman, K., Talbot, W. S. and Schier, A. F (2000). Nodal signaling patterns the organizer. Development 127, 921-932.[Abstract]

Hatta, K., Kimmel, C. B., Ho, R. K. and Walker, C (1991). The cyclops mutation blocks specification of the floor plate of the zebrafish central nervous system. Nature 350, 339-341.[Medline]

Heisenberg, C. P. and Nusslein-Volhard, C (1997). The function of silberblick in the positioning of the eye anlage in the zebrafish embryo. Dev. Biol 184, 85-94.[Medline]

Hermesz, E., Mackem, S. and Mahon, K. A (1996). Rpx: a novel anterior-restricted homeobox gene progressively activated in the prechordal plate, anterior neural plate and Rathke's pouch of the mouse embryo. Development 122, 41-52.[Abstract]

Herrmann, B. G (1991). Expression pattern of the Brachyury gene in whole mount Twis/Twismutant embryos. Development 113, 913-917.[Abstract]

Heyer, J., Escalante-Alcalde, D., Lia, M., Boettinger, E., Edelmann, W., Stewart, C. L. and Kucherlapati, R (1999). Postgastrulation Smad2-deficient embryos show defects in embryo turning and anterior morphogenesis. Proc. Natl. Acad. Sci. USA 96, 12595-12600.[Abstract/Free Full Text]

Heymer, J., Kuehn, M. and Ruther, U (1997). The expression pattern of nodal and lefty in the mouse mutant Ft suggests a function in the establishment of handedness. Mech. Dev 66, 5-11.[Medline]

Iannaccone, P. M., Zhou, X., Khokha, M., Boucher, D. and Kuehn, M. R (1992). Insertional mutation of a gene involved in growth regulation of the early mouse embryo. Dev. Dyn 194, 198-208.[Medline]

Izraeli, S., Lowe, L. A., Bertness, V. L., Good, D. J., Dorward, D. W., Kirsch, I. R. and Kuehn, M. R (1999). The SIL gene is required for mouse embryonic axial development and left-right specification. Nature 399, 691-694.[Medline]

Jones, C. M., Kuehn, M. R., Hogan, B. L. M., Smith, J. C. and Wright, C. V. E (1995). Nodal-related signals induce axial mesoderm and dorsalize mesoderm during gastrulation. Development 121, 3651-3662.[Abstract]

Joseph, E. M. and Melton, D. A (1997). Xnr4: a Xenopus nodal-related gene expressed in the Spemann organizer. Dev. Biol 184, 367-372.[Medline]

Kumar, A., Novoselov, V., Celeste, A. J., Wolfman, N. M., ten Dijke, P. and Kuehn, M. R (2001). Nodal signaling uses activin and transforming growth factor-beta receptor-regulated smads. J. Biol. Chem 276, 656-661.[Abstract/Free Full Text]

Lakso, M., Pichel, J. G., Gorman, J. R., Sauer, B., Okamoto, Y., Lee, E., Alt, F. W. and Westphal, H (1996). Efficient in vivo manipulation of mouse genomic sequences at the zygote stage. Proc. Natl. Acad. Sci. USA 93, 5860-5865.[Abstract/Free Full Text]

Levin, M., Johnson, R. L., Stern, C. D., Kuehn, M. and Tabin, C (1995). A molecular pathway determining left-right asymmetry in chick embryogenesis. Cell 82, 803-814.[Medline]

Levin, M., Pagan, S., Roberts, D. J., Cooke, J., Kuehn, M. R. and Tabin, C. J (1997). Left/right patterning signals and the independent regulation of different aspects of situs in the chick embryo. Dev. Biol 189, 57-67.[Medline]

Lin, C. R., Kioussi, C., O'Connell, S., Briata, P., Szeto, D., Liu, F., Izpisua-Belmonte, J. C. and Rosenfeld, M. G (1999). Pitx2 regulates lung asymmetry, cardiac positioning and pituitary and tooth morphogenesis. Nature 401, 279-282.[Medline]

Logan, M., Pagan-Westphal, S. M., Smith, D. M., Paganessi, L. and Tabin, C. J (1998). The transcription factor Pitx2 mediates situs-specific morphogenesis in response to left-right asymmetric signals. Cell 94, 307-317.[Medline]

Lowe, L. A., Supp, D. M., Sampath, K., Yokoyama, T., Wright, C. V., Potter, S. S., Overbeek, P. and Kuehn, M. R (1996). Conserved left-right asymmetry of nodal expression and alterations in murine situs inversus. Nature 381, 158-161.[Medline]

Lu, M. F., Pressman, C., Dyer, R., Johnson, R. L. and Martin, J. F (1999). Function of Rieger syndrome gene in left-right asymmetry and craniofacial development. Nature 401, 276-278.[Medline]

Lustig, K. D., Kroll, K., Sun, E., Ramos, R., Elmendorf, H. and Kirschner, M. W (1996). A Xenopus nodal-related gene that acts in synergy with noggin to induce complete secondary axis and notochord formation. Development 122, 3275-3282.[Abstract]

Marth, J. D (1996). Recent advances in gene mutagenesis by site-directed recombination. J. Clin. Invest 97, 1999-2002.[Medline]

Melloy, P. G., Ewart, J. L., Cohen, M. F., Desmond, M. E., Kuehn, M. R. and Lo, C. W (1998). No turning, a mouse mutation causing left-right and axial patterning defects. Dev. Biol 193, 77-89.[Medline]

Meno, C., Gritsman, K., Ohishi, S., Ohfuji, Y., Heckscher, E., Mochida, K., Shimono, A., Kondoh, H., Talbot, W. S., Robertson, E. J., Schier, A. F. and Hamada, H (1999). Mouse Lefty2 and zebrafish antivin are feedback inhibitors of nodal signaling during vertebrate gastrulation. Mol. Cell 4, 287-298.

Mountford, P., Zevnik, B., Duwel, A., Nichols, J., Li, M., Dani, C., Robertson, M., Chambers, I. and Smith, A (1994). Dicistronic targeting constructs: reporters and modifiers of mammalian gene expression. Proc. Natl. Acad. Sci. USA 91, 4303-4307.[Abstract/Free Full Text]

Nomura, M. and Li, E (1998). Smad2 role in mesoderm formation, left-right patterning and craniofacial development. Nature 393, 786-790.[Medline]

Oh, S. P. and Li, E (1997). The signaling pathway mediated by the type IIB activin receptor controls axial patterning and lateral asymmetry in the mouse. Genes Dev 11, 1812-1826.[Abstract/Free Full Text]

Osada, S. I. and Wright, C. V (1999). Xenopus nodal-related signaling is essential for mesendodermal patterning during early embryogenesis. Development 126, 3229-3240.[Abstract]

Rebagliati, M. R., Toyama, R., Fricke, C., Haffter, P. and Dawid, I. B (1998). Zebrafish nodal-related genes are implicated in axial patterning and establishing left-right asymmetry. Dev. Biol 199, 261-272.[Medline]

Rebagliati, M. R., Toyama, R., Haffter, P. and Dawid, I. B (1998). cyclops encodes a nodal-related factor involved in midline signaling. Proc. Natl. Acad. Sci. USA 95, 9932-9937.[Abstract/Free Full Text]

Rhinn, M., Dierich, A., Shawlot, W., Behringer, R. R., Le Meur, M. and Ang, S. L (1998). Sequential roles for Otx2 in visceral endoderm and neuroectoderm for forebrain and midbrain induction and specification. Development 125, 845-856.[Abstract]

Ryan, A. K., Blumberg, B., Rodriguez-Esteban, C., Yonei-Tamura, S., Tamura, K., Tsukui, T., de la Pena, J., Sabbagh, W., Greenwald, J., Choe, S. et al (1998). Pitx2 determines left-right asymmetry of internal organs in vertebrates. Nature 394, 545-551.[Medline]

Saijoh, Y., Adachi, H., Sakuma, R., Yeo, C. Y., Yashiro, K., Watanabe, M., Hashiguchi, H., Mochida, K., Ohishi, S., Kawabata, M. et al (2000). Left-right asymmetric expression of lefty2 and nodal is induced by a signaling pathway that includes the transcription factor FAST2. Mol. Cell 5, 35-47.

Sampath, K., Cheng, A. M., Frisch, A. and Wright, C. V (1997). Functional differences among Xenopus nodal-related genes in left-right axis determination. Development 124, 3293-3302.[Abstract]

Sampath, K., Rubinstein, A. L., Cheng, A. M., Liang, J. O., Fekany, K., Solnica-Krezel, L., Korzh, V., Halpern, M. E. and Wright, C. V (1998). Induction of the zebrafish ventral brain and floorplate requires cyclops/nodal signalling. Nature 395, 185-189.[Medline]

Schier, A. F., Neuhauss, S. C., Helde, K. A., Talbot, W. S. and Driever, W (1997). The one-eyed pinhead gene functions in mesoderm and endoderm formation in zebrafish and interacts with no tail. Development 124, 327-342.[Abstract]

Schier, A. F. and Shen, M. M (2000). Nodal signalling in vertebrate development. Nature 403, 385-389.[Medline]

Shawlot, W., Deng, J. M. and Behringer, R. R (1998). Expression of themouse cerberus-related gene, Cerr1, suggests a role in anterior neuralinduction and somitogenesis. Proc. Natl. Acad. Sci. USA 95, 6198-6203.[Abstract/Free Full Text]

Shawlot, W., Wakamiya, M., Kwan, K. M., Kania, A., Jessell, T. M. and Behringer, R. R (1999). Lim1 is required in both primitive streak-derived tissues and visceral endoderm for head formation in the mouse. Development 126, 4925-4932.[Abstract]

Simeone, A., Acampora, D., Mallamaci, A., Stornaiuolo, A., D'Apice, M. R., Nigro, V. and Boncinelli, E (1993). A vertebrate gene related to orthodenticle contains a homeodomain of the bicoid class and demarcates anterior neuroectoderm in the gastrulating mouse embryo. EMBO J 12, 2735-2747.[Medline]

Smith, W. C., McKendry, R., Ribisi, S., Jr. and Harland, R. M (1995). A nodal-related gene defines a physical and functional domain within the Spemann organizer. Cell 82, 37-46.[Medline]

Song, J., Oh, S. P., Schrewe, H., Nomura, M., Lei, H., Okano, M., Gridley, T. and Li, E (1999). The type II activin receptors are essential for egg cylinder growth, gastrulation, and rostral head development in mice. Dev. Biol 213, 157-169.[Medline]

Tam, P. P. and Steiner, K. A (1999). Anterior patterning by synergistic activity of the early gastrula organizer and the anterior germ layer tissues of the mouse embryo. Development 126, 5171-5179.[Abstract]

Thisse, B., Wright, C. V. and Thisse, C (2000). Activin-and Nodal-related factors control antero-posterior patterning of the zebrafish embryo. Nature 403, 425-428.[Medline]

Thisse, C. and Thisse, B (1999). Antivin, a novel and divergent member of the TGFbeta superfamily, negatively regulates mesoderm induction. Development 126, 229-240.[Abstract]

Thomas, P. Q., Brown, A. and Beddington, R. S (1998). Hex: a homeobox gene revealing peri-implantation asymmetry in the mouse embryo and an early transient marker of endothelial cell precursors. Development 125, 85-94.[Abstract]

Toyama, R., O'Connell, M. L., Wright, C. V., Kuehn, M. R. and Dawid, I. B (1995). Nodal induces ectopic goosecoid and lim1 expression and axis duplication in zebrafish. Development 121, 383-391.[Abstract]

Tremblay, K. D., Hoodless, P. A., Bikoff, E. K. and Robertson, E. J (2000). Formation of the definitive endoderm in mouse is a Smad2-dependent process. Development 127, 3079-3090.[Abstract]

Varlet, I., Collignon, J. and Robertson, E. J (1997). nodal expression in the primitive endoderm is required for specification of the anterior axis during mouse gastrulation. Development 124, 1033-1044.[Abstract]

Yan, Y. T., Gritsman, K., Ding, J., Burdine, R. D., Corrales, J. D., Price, S. M., Talbot, W. S., Schier, A. F. and Shen, M. M (1999). Conserved requirement for EGF-CFC genes in vertebrate left-right axis formation. Genes Dev 13, 2527-2537.[Abstract/Free Full Text]

Zhou, X., Sasaki, H., Lowe, L., Hogan, B. L. and Kuehn, M. R (1993). Nodal is a novel TGF-beta-like gene expressed in the mouse node during gastrulation. Nature 361, 543-547.[Medline]




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S. Long, N. Ahmad, and M. Rebagliati
The zebrafish nodal-related gene southpaw is required for visceral and diencephalic left-right asymmetry
Development, June 1, 2003; 130(11): 2303 - 2316.
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M. Yamamoto, N. Mine, K. Mochida, Y. Sakai, Y. Saijoh, C. Meno, and H. Hamada
Nodal signaling induces the midline barrier by activating Nodal expression in the lateral plate
Development, May 1, 2003; 130(9): 1795 - 1804.
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A. Sachinidis, B. K. Fleischmann, E. Kolossov, M. Wartenberg, H. Sauer, and J. Hescheler
Cardiac specific differentiation of mouse embryonic stem cells
Cardiovasc Res, May 1, 2003; 58(2): 278 - 291.
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T. Fujiwara, D. B. Dehart, K. K. Sulik, and B. L. M. Hogan
Distinct requirements for extra-embryonic and embryonic bone morphogenetic protein 4 in the formation of the node and primitive streak and coordination of left-right asymmetry in the mouse
Development, March 12, 2003; 129(20): 4685 - 4696.
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DevelopmentHome page
M. E. Piedra and M. A. Ros
BMP signaling positively regulates Nodal expression during left right specification in the chick embryo
Development, March 9, 2003; 129(14): 3431 - 3440.
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DevelopmentHome page
D. P. Norris, J. Brennan, E. K. Bikoff, and E. J. Robertson
The Foxh1-dependent autoregulatory enhancer controls the level of Nodal signals in the mouse embryo
Development, March 9, 2003; 129(14): 3455 - 3468.
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DevelopmentHome page
G. K. H. Przemeck, U. Heinzmann, J. Beckers, and M. Hrabe de Angelis
Node and midline defects are associated with left-right development in Delta1 mutant embryos
Development, January 1, 2003; 130(1): 3 - 13.
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S. K. Cheng, F. Olale, J. T. Bennett, A. H. Brivanlou, and A. F. Schier
EGF-CFC proteins are essential coreceptors for the TGF-beta signals Vg1 and GDF1
Genes & Dev., January 1, 2003; 17(1): 31 - 36.
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Genes Dev.Home page
S. P. Oh, C.-Y. Yeo, Y. Lee, H. Schrewe, M. Whitman, and E. Li
Activin type IIA and IIB receptors mediate Gdf11 signaling in axial vertebral patterning
Genes & Dev., November 1, 2002; 16(21): 2749 - 2754.
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D. Y.R. Stainier
A glimpse into the molecular entrails of endoderm formation
Genes & Dev., April 15, 2002; 16(8): 893 - 907.
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