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Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification

Glycogen synthase kinase 3 (GSK-3) is a constitutively active kinase that negatively regulates its substrates, one of which is β-catenin, a downstream effector of the Wnt signaling pathway that is required for dorsal–ventral axis specification in the Xenopus embryo. GSK-3 activity is regulated throu...

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Autores principales: Farr, Gist H., Ferkey, Denise M., Yost, Cynthia, Pierce, Sarah B., Weaver, Carole, Kimelman, David
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2000
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2169372/
https://www.ncbi.nlm.nih.gov/pubmed/10684251
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author Farr, Gist H.
Ferkey, Denise M.
Yost, Cynthia
Pierce, Sarah B.
Weaver, Carole
Kimelman, David
author_facet Farr, Gist H.
Ferkey, Denise M.
Yost, Cynthia
Pierce, Sarah B.
Weaver, Carole
Kimelman, David
author_sort Farr, Gist H.
collection PubMed
description Glycogen synthase kinase 3 (GSK-3) is a constitutively active kinase that negatively regulates its substrates, one of which is β-catenin, a downstream effector of the Wnt signaling pathway that is required for dorsal–ventral axis specification in the Xenopus embryo. GSK-3 activity is regulated through the opposing activities of multiple proteins. Axin, GSK-3, and β-catenin form a complex that promotes the GSK-3–mediated phosphorylation and subsequent degradation of β-catenin. Adenomatous polyposis coli (APC) joins the complex and downregulates β-catenin in mammalian cells, but its role in Xenopus is less clear. In contrast, GBP, which is required for axis formation in Xenopus, binds and inhibits GSK-3. We show here that GSK-3 binding protein (GBP) inhibits GSK-3, in part, by preventing Axin from binding GSK-3. Similarly, we present evidence that a dominant-negative GSK-3 mutant, which causes the same effects as GBP, keeps endogenous GSK-3 from binding to Axin. We show that GBP also functions by preventing the GSK-3–mediated phosphorylation of a protein substrate without eliminating its catalytic activity. Finally, we show that the previously demonstrated axis-inducing property of overexpressed APC is attributable to its ability to stabilize cytoplasmic β-catenin levels, demonstrating that APC is impinging upon the canonical Wnt pathway in this model system. These results contribute to our growing understanding of how GSK-3 regulation in the early embryo leads to regional differences in β-catenin levels and establishment of the dorsal axis.
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spelling pubmed-21693722008-05-01 Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification Farr, Gist H. Ferkey, Denise M. Yost, Cynthia Pierce, Sarah B. Weaver, Carole Kimelman, David J Cell Biol Original Article Glycogen synthase kinase 3 (GSK-3) is a constitutively active kinase that negatively regulates its substrates, one of which is β-catenin, a downstream effector of the Wnt signaling pathway that is required for dorsal–ventral axis specification in the Xenopus embryo. GSK-3 activity is regulated through the opposing activities of multiple proteins. Axin, GSK-3, and β-catenin form a complex that promotes the GSK-3–mediated phosphorylation and subsequent degradation of β-catenin. Adenomatous polyposis coli (APC) joins the complex and downregulates β-catenin in mammalian cells, but its role in Xenopus is less clear. In contrast, GBP, which is required for axis formation in Xenopus, binds and inhibits GSK-3. We show here that GSK-3 binding protein (GBP) inhibits GSK-3, in part, by preventing Axin from binding GSK-3. Similarly, we present evidence that a dominant-negative GSK-3 mutant, which causes the same effects as GBP, keeps endogenous GSK-3 from binding to Axin. We show that GBP also functions by preventing the GSK-3–mediated phosphorylation of a protein substrate without eliminating its catalytic activity. Finally, we show that the previously demonstrated axis-inducing property of overexpressed APC is attributable to its ability to stabilize cytoplasmic β-catenin levels, demonstrating that APC is impinging upon the canonical Wnt pathway in this model system. These results contribute to our growing understanding of how GSK-3 regulation in the early embryo leads to regional differences in β-catenin levels and establishment of the dorsal axis. The Rockefeller University Press 2000-02-21 /pmc/articles/PMC2169372/ /pubmed/10684251 Text en © 2000 The Rockefeller University Press This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Original Article
Farr, Gist H.
Ferkey, Denise M.
Yost, Cynthia
Pierce, Sarah B.
Weaver, Carole
Kimelman, David
Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification
title Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification
title_full Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification
title_fullStr Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification
title_full_unstemmed Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification
title_short Interaction among Gsk-3, Gbp, Axin, and APC in Xenopus Axis Specification
title_sort interaction among gsk-3, gbp, axin, and apc in xenopus axis specification
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2169372/
https://www.ncbi.nlm.nih.gov/pubmed/10684251
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