Literature DB >> 19177135

A Wnt survival guide: from flies to human disease.

Andy J Chien1, William H Conrad, Randall T Moon.   

Abstract

It has been two decades since investigators discovered the link between the Drosophila wingless (Wg) gene and the vertebrate oncogene int-1, thus establishing the family of signaling proteins known as Wnts. Since the inception of the Wnt signaling field, there have been 19 Wnt isoforms identified in humans. These secreted glycoproteins can activate at least two distinct signaling pathways in vertebrate cells, leading to cellular changes that regulate a vast array of biological processes, including embryonic development, cell fate, cell proliferation, cell migration, stem cell maintenance, tumor suppression, and oncogenesis. In certain contexts, one subset of Wnt isoforms activates the canonical Wnt/beta-catenin pathway that is characterized by the activation of certain beta-catenin-responsive target genes in response to the binding of Wnt ligand to its cognate receptors. Similarly, a second subset of Wnt isoforms activates beta-catenin-independent pathways, including the Wnt/calcium (Wnt/Ca) pathway and the Wnt/planar cell polarity (Wnt/PCP) pathway, in certain cellular contexts. In addition, research has identified several secreted proteins known to regulate Wnt signaling, including the Dickkopf (DKK) family, secreted Frizzled-related proteins (sFRPs), and Wnt inhibitory factor-1 (WIF-1). The advent of technologies that can provide genome-wide expression data continues to implicate Wnts and proteins that regulate Wnt signaling pathways in a growing number of disease processes. The aim of this review is to provide a context on the Wnt field that will facilitate the interpretation and study of Wnt signaling in the context of human disease.

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Year:  2009        PMID: 19177135      PMCID: PMC3125088          DOI: 10.1038/jid.2008.445

Source DB:  PubMed          Journal:  J Invest Dermatol        ISSN: 0022-202X            Impact factor:   8.551


  177 in total

1.  New regulators of Wnt/beta-catenin signaling revealed by integrative molecular screening.

Authors:  Michael B Major; Brian S Roberts; Jason D Berndt; Shane Marine; Jamie Anastas; Namjin Chung; Marc Ferrer; XianHua Yi; Cristi L Stoick-Cooper; Priska D von Haller; Lorna Kategaya; Andy Chien; Stephane Angers; Michael MacCoss; Michele A Cleary; William T Arthur; Randall T Moon
Journal:  Sci Signal       Date:  2008-11-11       Impact factor: 8.192

2.  Distinct WNT pathways regulating AER formation and dorsoventral polarity in the chick limb bud.

Authors:  M Kengaku; J Capdevila; C Rodriguez-Esteban; J De La Peña; R L Johnson; J C Izpisúa Belmonte; C J Tabin
Journal:  Science       Date:  1998-05-22       Impact factor: 47.728

3.  RhoA acts downstream of Wnt5 and Wnt11 to regulate convergence and extension movements by involving effectors Rho kinase and Diaphanous: use of zebrafish as an in vivo model for GTPase signaling.

Authors:  Shizhen Zhu; Lihui Liu; Vladimir Korzh; Zhiyuan Gong; Boon Chuan Low
Journal:  Cell Signal       Date:  2005-07-14       Impact factor: 4.315

4.  Cutaneous cancer stem cell maintenance is dependent on beta-catenin signalling.

Authors:  Ilaria Malanchi; Hector Peinado; Deepika Kassen; Thomas Hussenet; Daniel Metzger; Pierre Chambon; Marcel Huber; Daniel Hohl; Amparo Cano; Walter Birchmeier; Joerg Huelsken
Journal:  Nature       Date:  2008-04-03       Impact factor: 49.962

Review 5.  Non-conventional Frizzled ligands and Wnt receptors.

Authors:  Marijke Hendrickx; Luc Leyns
Journal:  Dev Growth Differ       Date:  2008-05       Impact factor: 2.053

6.  Transient activation of beta -catenin signaling in cutaneous keratinocytes is sufficient to trigger the active growth phase of the hair cycle in mice.

Authors:  David Van Mater; Frank T Kolligs; Andrzej A Dlugosz; Eric R Fearon
Journal:  Genes Dev       Date:  2003-05-15       Impact factor: 11.361

7.  Activation of beta-catenin signaling programs embryonic epidermis to hair follicle fate.

Authors:  Yuhang Zhang; Thomas Andl; Steven H Yang; Monica Teta; Fei Liu; John T Seykora; John W Tobias; Stefano Piccolo; Ruth Schmidt-Ullrich; Andras Nagy; Makoto M Taketo; Andrzej A Dlugosz; Sarah E Millar
Journal:  Development       Date:  2008-05-14       Impact factor: 6.868

8.  Characterization of Wnt-1 and Wnt-2 induced growth alterations and signaling pathways in NIH3T3 fibroblasts.

Authors:  A Bafico; A Gazit; S S Wu-Morgan; A Yaniv; S A Aaronson
Journal:  Oncogene       Date:  1998-05-28       Impact factor: 9.867

9.  Pathological responses to oncogenic Hedgehog signaling in skin are dependent on canonical Wnt/beta3-catenin signaling.

Authors:  Steven Hoseong Yang; Thomas Andl; Vladimir Grachtchouk; Aiqin Wang; Jianhong Liu; Li-Jyun Syu; Jenny Ferris; Timothy S Wang; Adam B Glick; Sarah E Millar; Andrzej A Dlugosz
Journal:  Nat Genet       Date:  2008-09       Impact factor: 38.330

10.  Sustained epithelial beta-catenin activity induces precocious hair development but disrupts hair follicle down-growth and hair shaft formation.

Authors:  Katja Närhi; Elina Järvinen; Walter Birchmeier; Makoto M Taketo; Marja L Mikkola; Irma Thesleff
Journal:  Development       Date:  2008-02-06       Impact factor: 6.868

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  171 in total

Review 1.  Cancer cell signaling pathways targeted by spice-derived nutraceuticals.

Authors:  Bokyung Sung; Sahdeo Prasad; Vivek R Yadav; Bharat B Aggarwal
Journal:  Nutr Cancer       Date:  2011-12-09       Impact factor: 2.900

2.  WLS-dependent secretion of WNT3A requires Ser209 acylation and vacuolar acidification.

Authors:  Gary S Coombs; Jia Yu; Claire A Canning; Charles A Veltri; Tracy M Covey; Jit K Cheong; Velani Utomo; Nikhil Banerjee; Zong Hong Zhang; Raquel C Jadulco; Gisela P Concepcion; Tim S Bugni; Mary Kay Harper; Ivana Mihalek; C Michael Jones; Chris M Ireland; David M Virshup
Journal:  J Cell Sci       Date:  2010-09-07       Impact factor: 5.285

Review 3.  Epithelial repair mechanisms in the lung.

Authors:  Lynn M Crosby; Christopher M Waters
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2010-04-02       Impact factor: 5.464

Review 4.  The catenin family at a glance.

Authors:  Pierre D McCrea; Dongmin Gu
Journal:  J Cell Sci       Date:  2010-03-01       Impact factor: 5.285

Review 5.  Molecular function of TCF7L2: Consequences of TCF7L2 splicing for molecular function and risk for type 2 diabetes.

Authors:  Ola Hansson; Yuedan Zhou; Erik Renström; Peter Osmark
Journal:  Curr Diab Rep       Date:  2010-12       Impact factor: 4.810

Review 6.  Development of small molecules targeting the Wnt pathway for the treatment of colon cancer: a high-throughput screening approach.

Authors:  Wei Chen; Minyong Chen; Larry S Barak
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2010-05-27       Impact factor: 4.052

7.  Sonic hedgehog acts as a negative regulator of {beta}-catenin signaling in the adult tongue epithelium.

Authors:  Fabian T Schneider; Anne Schänzer; Cathrin J Czupalla; Sonja Thom; Knut Engels; Mirko H H Schmidt; Karl H Plate; Stefan Liebner
Journal:  Am J Pathol       Date:  2010-05-27       Impact factor: 4.307

8.  Human SMC2 protein, a core subunit of human condensin complex, is a novel transcriptional target of the WNT signaling pathway and a new therapeutic target.

Authors:  Verónica Dávalos; Lucía Súarez-López; Julio Castaño; Anthea Messent; Ibane Abasolo; Yolanda Fernandez; Angel Guerra-Moreno; Eloy Espín; Manel Armengol; Eva Musulen; Aurelio Ariza; Joan Sayós; Diego Arango; Simó Schwartz
Journal:  J Biol Chem       Date:  2012-10-24       Impact factor: 5.157

9.  WNT3A gene expression is associated with isolated Hirschsprung disease polymorphism and disease status.

Authors:  Dong Chen; Jie Mi; Xiaomei Liu; Juan Zhang; Weilin Wang; Hong Gao
Journal:  Int J Clin Exp Pathol       Date:  2014-03-15

10.  The anti-helminthic niclosamide inhibits Wnt/Frizzled1 signaling.

Authors:  Minyong Chen; Jiangbo Wang; Jiuyi Lu; Michael C Bond; Xiu-Rong Ren; H Kim Lyerly; Larry S Barak; Wei Chen
Journal:  Biochemistry       Date:  2009-11-03       Impact factor: 3.162

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