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Profile Publications(24)
XB-PERS-3745

Publications By Hae-Moon Chung

Results 1 - 20 of 24 results

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Evaluation of the toxic effects of celecoxib on Xenopus embryo development., Yoon YH, Kim JY, Bae YC, Nam SW, Cho HJ, Lee S, Chung HY, Lee HS, Park MJ., Biochem Biophys Res Commun. January 1, 2018; 501 (2): 329-335.        


Proteolytic activation of the human epithelial sodium channel by trypsin IV and trypsin I involves distinct cleavage sites., Haerteis S, Krappitz A, Krappitz M, Murphy JE, Bertog M, Krueger B, Nacken R, Chung H, Hollenberg MD, Knecht W, Bunnett NW, Korbmacher C., J Biol Chem. July 4, 2014; 289 (27): 19067-78.


FGF signal regulates gastrulation cell movements and morphology through its target NRH., Chung HA, Hyodo-Miura J, Nagamune T, Ueno N., Dev Biol. June 1, 2005; 282 (1): 95-110.                          


Screening of FGF target genes in Xenopus by microarray: temporal dissection of the signalling pathway using a chemical inhibitor., Chung HA, Hyodo-Miura J, Kitayama A, Terasaka C, Nagamune T, Ueno N., Genes Cells. August 1, 2004; 9 (8): 749-61.                            


Yin Yang 1, a vertebrate polycomb group gene, regulates antero-posterior neural patterning., Kwon HJ, Chung HM., Biochem Biophys Res Commun. July 11, 2003; 306 (4): 1008-13.        


Xenopus hoxc8 during early development., Ko C, Chung HM., Biochem Biophys Res Commun. January 3, 2003; 300 (1): 9-15.            


Characterization of Xenopus EED pseudogene, a Polycomb group gene., Cho JK, Chung HM., DNA Seq. August 1, 2002; 13 (4): 225-9.


Expression of the Xenopus homologue of the receptor for activated C-kinase 1 (RACK1) in the Xenopus embryo., Kwon HJ, Bae S, Son YH, Chung HM., Dev Genes Evol. April 1, 2001; 211 (4): 195-7.


Neuregulin induces the expression of mesodermal genes in the ectoderm of Xenopus laevis., Chung HG, Chung HM., Mol Cells. October 31, 1999; 9 (5): 497-503.


Evidence that platelet derived growth factor (PDGF) action is required for mesoderm patterning in early amphibian (Xenopus laevis) embryogenesis., Ghil JS, Chung HM., Int J Dev Biol. July 1, 1999; 43 (4): 329-34.


Urodele (e.g., axolotl) embryos in the undergraduate laboratory class: an essay describing a multifaceted learning experience., Malacinski GM, Chung HM., Int J Dev Biol. August 1, 1996; 40 (4): 901-5.


The location of the third cleavage plane of Xenopus embryos partitions morphogenetic information in animal quartets., Chung HM, Yokota H, Dent A, Malacinski GM, Neff AW., Int J Dev Biol. September 1, 1994; 38 (3): 421-8.


Early amphibian (anuran) morphogenesis is sensitive to novel gravitational fields., Neff AW, Yokota H, Chung HM, Wakahara M, Malacinski GM., Dev Biol. January 1, 1993; 155 (1): 270-4.


Biochemical and biological activity of phosphorylated and non-phosphorylated ras p21 mutants., Chung HH, Kim R, Kim SH., Biochim Biophys Acta. February 11, 1992; 1129 (3): 278-86.


Autonomous death of amphibian (Xenopus laevis) cranial myotomes., Chung HM, Neff AW, Malacinski GM., J Exp Zool. September 1, 1989; 251 (3): 290-9.


Amphibian (urodele) myotomes display transitory anterior/posterior and medial/lateral differentiation patterns., Neff AW, Malacinski GM, Chung HM., Dev Biol. April 1, 1989; 132 (2): 529-43.  


Microgravity simulation as a probe for understanding early Xenopus pattern specification., Neff AW, Malacinski GM, Chung HM., J Embryol Exp Morphol. October 1, 1985; 89 259-74.


Influence of clinostat rotation on fertilized amphibian egg pattern specification., Neff AW, Smith RC, Chung HM, Malacinski GM., Physiologist. January 1, 1984; 27 (6 Suppl): S139-40.


Reversal of developmental competence in inverted amphibian eggs., Chung HM, Malacinski GM., J Embryol Exp Morphol. February 1, 1983; 73 207-20.


Pattern formation during early amphibian development: embryogenesis in inverted anuran and urodele eggs., Chung HM, Malacinski GM., Dev Biol. October 1, 1982; 93 (2): 444-52.

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