Vertebrate Development Maternal to Zygotic Control (Advances in Experimental Medicine and Biology)

(nextflipdebug2) #1

368


Fan X, Hagos EG, Xu B, Sias C, Kawakami K, Burdine RD, Dougan ST (2007) Nodal signals
mediate interactions between the extra-embryonic and embryonic tissues in zebrafish. Dev Biol
310:363–378
Feldman B, Concha ML, Saude L, Parsons MJ, Adams RJ, Wilson SW, Stemple DL (2002) Lefty
antagonism of squint is essential for normal gastrulation. Curr Biol 12:2129–2135
Feldman B, Dougan ST, Schier AF, Talbot WS (2000) Nodal-related signals establish mesendoder-
mal fate and trunk neural identity in zebrafish. Curr Biol 10:531–534
Feldman B, Gates MA, Egan ES, Dougan ST, Rennebeck G, Sirotkin HI, Schier AF, Talbot WS
(1998) Zebrafish organizer development and germ-layer formation require nodal-related sig-
nals. Nature 395:181–185
Feldman B, Poueymirou W, Papaioannou VE, DeChiara TM, Goldfarb M (1995) Requirement of
FGF-4 for postimplantation mouse development. Science 267:246–249
Fink RD, Trinkaus JP (1988) Fundulus deep cells: directional migration in response to epithelial
wounding. Dev Biol 129:179–190
Fischer S, Draper BW, Neumann CJ (2003) The zebrafish fgf24 mutant identifies an additional
level of Fgf signaling involved in vertebrate forelimb initiation. Development 130:3515–3524
Fisher ME, Isaacs HV, Pownall ME (2002) eFGF is required for activation of XmyoD expression
in the myogenic cell lineage of Xenopus laevis. Development 129:1307–1315
Fisher S, Amacher SL, Halpern ME (1997) Loss of cerebum function ventralizes the zebrafish
embryo. Development 124:1301–1311
Fletcher RB, Baker JC, Harland RM (2006) FGF8 spliceforms mediate early mesoderm and pos-
terior neural tissue formation in Xenopus. Development 133:1703–1714
Foley AC, Skromne I, Stern CD (2000) Reconciling different models of forebrain induction and
patterning: a dual role for the hypoblast. Development 127:3839–3854
Freyer C, Zeller U, Renfree MB (2003) The marsupial placenta: a phylogenetic analysis. J Exp
Zool A Comp Exp Biol 299:59–77
Furthauer M, Thisse B, Thisse C (1999) Three different noggin genes antagonize the activity of
bone morphogenetic proteins in the zebrafish embryo. Dev Biol 214:181–196
Gardner RL (1983) Origin and differentiation of extraembryonic tissues in the mouse. Int Rev Exp
Pathol 24:63–133
Gardner RL, Cockroft DL (1998) Complete dissipation of coherent clonal growth occurs before
gastrulation in mouse epiblast. Development 125:2397–2402
Gardner RL, Rossant J (1979) Investigation of the fate of 4–5 day post-coitum mouse inner cell
mass cells by blastocyst injection. J Embryol Exp Morphol 52:141–152
Ge W, Gallin WJ, Strobeck C, Peter RE (1993) Cloning and sequencing of goldfish activin subunit
genes: strong structural conservation during vertebrate evolution. Biochem Biophys Res
Commun 193:711–717
Gemmell RT, Veitch C, Nelson J (2002) Birth in marsupials. Comp Biochem Physiol B Biochem
Mol Biol 131:621–630
Gerhart J, Danilchik M, Doniach T, Roberts S, Rowning B, Stewart R (1989) Cortical rotation of
the Xenopus egg: consequences for the anteroposterior pattern of embryonic dorsal develop-
ment. Development 107(Suppl):37–51
Gimlich RL, Gerhart JC (1984) Early cellular interactions promote embryonic axis formation in
Xenopus laevis. Dev Biol 104:117–130
Godsave SF, Isaacs HV, Slack JM (1988) Mesoderm-inducing factors: a small class of molecules.
Development 102:555–566
Goette A (1869) Untersuchungen über die Entwickelung des bombinator igneus. Arch Mikrosk
Anat 5:90–125
Goette A (1873) Beiträge zur Entwicklungsgeschichte der Wirbeltiere: I. Der Keim des
Forelleneies. Arch Mikrosk Anat 9:679–708
Gosner K (1960) A simplified table for staging anuran embryos and larvae with notes on identifica-
tion. Herpetologica 16:183–190
Gould SJ (1977) Ontogeny and phylogeny. Belknap Press of Harvard University Press, Cambridge,
MA


W. Tseng et al.

http://www.ebook3000.com

Free download pdf