The long term goal of the proposed research is to understand the molecular mechanisms by which Wnts convey developmental information in vertebrates. A primary goal of the present study is to examine the mechanisms by which wnt-8 contributes to abnormal or normal patterning by testing the hypotheses (a) that misexpression of Xwnt-8 in anterior mesoderm either retards the normal involution of this tissue or alters its neural inducing activity thereby leading to a loss of forebrain and (b) that misexpression of Xwnt-8 in prospective dorsal mesoderm leads to identifiable changes in gene expression that promote ventral rather than dorsal differentiation. A number of related Xenopus Wnts have been identified whose developmental functions remain unexplored. One such gene, Xwnt-8b, which is more closely related to Xwnt-8 than it is to other Wnts, is transiently expressed during the same developmental stages as Xwnt-8 but in different cell types. To initiate functional analysis of Xwnt-8b and to examine structure/function relationships to both Xwnt-8b and Xwnt-8, Dr. Christian will test the hypotheses: (a) that maintenance of the usual expression pattern of Xwnt-8b is required for normal embryonic patterning and (b) that specific, identifiable domains of Xwnt-8 and Xwnt-8b mediate their distinct biological activities and biochemical characteristics.
Specific aims are: (1) analysis of mechanisms underlying the Xwnt-8 mediated loss of forebrain; (2) identification and cloning of zygotic genes involved in dorsal or ventral specification; (3) cloning of the complete coding region of the Xwnt-8b cDNA; (4) analysis of embryonic expression of Xwnt-8b transcripts; (5) perturbation of normal expression of Xwnt-8b; and (6) identification of functional domains of Xwnt-8b.

Agency
National Institute of Health (NIH)
Institute
Eunice Kennedy Shriver National Institute of Child Health & Human Development (NICHD)
Type
First Independent Research Support & Transition (FIRST) Awards (R29)
Project #
5R29HD031087-05
Application #
2403347
Study Section
Cellular Biology and Physiology Subcommittee 1 (CBY)
Project Start
1994-01-01
Project End
1999-12-31
Budget Start
1998-01-01
Budget End
1999-12-31
Support Year
5
Fiscal Year
1998
Total Cost
Indirect Cost
Name
Oregon Health and Science University
Department
Anatomy/Cell Biology
Type
Schools of Medicine
DUNS #
009584210
City
Portland
State
OR
Country
United States
Zip Code
97239
Tian, Qi; Jin, Hong; Cui, Yanzhen et al. (2005) Regulation of Wnt gene expression. Dev Growth Differ 47:273-81
Tian, Q; Nakayama, T; Dixon, M P et al. (1999) Post-transcriptional regulation of Xwnt-8 expression is required for normal myogenesis during vertebrate embryonic development. Development 126:3371-80
Cui, Y; Jean, F; Thomas, G et al. (1998) BMP-4 is proteolytically activated by furin and/or PC6 during vertebrate embryonic development. EMBO J 17:4735-43
Nakayama, T; Snyder, M A; Grewal, S S et al. (1998) Xenopus Smad8 acts downstream of BMP-4 to modulate its activity during vertebrate embryonic patterning. Development 125:857-67
Nakayama, T; Gardner, H; Berg, L K et al. (1998) Smad6 functions as an intracellular antagonist of some TGF-beta family members during Xenopus embryogenesis. Genes Cells 3:387-94
Fredieu, J R; Cui, Y; Maier, D et al. (1997) Xwnt-8 and lithium can act upon either dorsal mesodermal or neurectodermal cells to cause a loss of forebrain in Xenopus embryos. Dev Biol 186:100-14
Cui, Y; Brown, J D; Moon, R T et al. (1995) Xwnt-8b: a maternally expressed Xenopus Wnt gene with a potential role in establishing the dorsoventral axis. Development 121:2177-86
Du, S J; Purcell, S M; Christian, J L et al. (1995) Identification of distinct classes and functional domains of Wnts through expression of wild-type and chimeric proteins in Xenopus embryos. Mol Cell Biol 15:2625-34