Literature DB >> 29618590

Wingless Signaling: A Genetic Journey from Morphogenesis to Metastasis.

Amy Bejsovec1.   

Abstract

This FlyBook chapter summarizes the history and the current state of our understanding of the Wingless signaling pathway. Wingless, the fly homolog of the mammalian Wnt oncoproteins, plays a central role in pattern generation during development. Much of what we know about the pathway was learned from genetic and molecular experiments in Drosophila melanogaster, and the core pathway works the same way in vertebrates. Like most growth factor pathways, extracellular Wingless/Wnt binds to a cell surface complex to transduce signal across the plasma membrane, triggering a series of intracellular events that lead to transcriptional changes in the nucleus. Unlike most growth factor pathways, the intracellular events regulate the protein stability of a key effector molecule, in this case Armadillo/β-catenin. A number of mysteries remain about how the "destruction complex" destabilizes β-catenin and how this process is inactivated by the ligand-bound receptor complex, so this review of the field can only serve as a snapshot of the work in progress.
Copyright © 2018 by the Genetics Society of America.

Entities:  

Keywords:  FlyBook; Wingless; Wnt; beta-catenin; signal transduction

Mesh:

Substances:

Year:  2018        PMID: 29618590      PMCID: PMC5887133          DOI: 10.1534/genetics.117.300157

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  307 in total

1.  Wnt/wingless signaling requires BCL9/legless-mediated recruitment of pygopus to the nuclear beta-catenin-TCF complex.

Authors:  Thomas Kramps; Oliver Peter; Erich Brunner; Denise Nellen; Barbara Froesch; Sandipan Chatterjee; Maximilien Murone; Stephanie Züllig; Konrad Basler
Journal:  Cell       Date:  2002-04-05       Impact factor: 41.582

2.  Kinetic responses of β-catenin specify the sites of Wnt control.

Authors:  Ana R Hernández; Allon M Klein; Marc W Kirschner
Journal:  Science       Date:  2012-11-08       Impact factor: 47.728

3.  Axin-mediated CKI phosphorylation of beta-catenin at Ser 45: a molecular switch for the Wnt pathway.

Authors:  Sharon Amit; Ada Hatzubai; Yaara Birman; Jens S Andersen; Etti Ben-Shushan; Matthias Mann; Yinon Ben-Neriah; Irit Alkalay
Journal:  Genes Dev       Date:  2002-05-01       Impact factor: 11.361

4.  The Drosophila homolog of the mouse mammary oncogene int-1 is identical to the segment polarity gene wingless.

Authors:  F Rijsewijk; M Schuermann; E Wagenaar; P Parren; D Weigel; R Nusse
Journal:  Cell       Date:  1987-08-14       Impact factor: 41.582

5.  Targeted disruption of the murine int-1 proto-oncogene resulting in severe abnormalities in midbrain and cerebellar development.

Authors:  K R Thomas; M R Capecchi
Journal:  Nature       Date:  1990-08-30       Impact factor: 49.962

6.  Many tumors induced by the mouse mammary tumor virus contain a provirus integrated in the same region of the host genome.

Authors:  R Nusse; H E Varmus
Journal:  Cell       Date:  1982-11       Impact factor: 41.582

7.  Essential role of BCL9-2 in the switch between beta-catenin's adhesive and transcriptional functions.

Authors:  Felix H Brembeck; Thomas Schwarz-Romond; Jeroen Bakkers; Sabine Wilhelm; Matthias Hammerschmidt; Walter Birchmeier
Journal:  Genes Dev       Date:  2004-09-01       Impact factor: 11.361

8.  Functional intertwining of Dpp and EGFR signaling during Drosophila endoderm induction.

Authors:  D Szüts; S Eresh; M Bienz
Journal:  Genes Dev       Date:  1998-07-01       Impact factor: 11.361

9.  The Berkeley Drosophila Genome Project gene disruption project: Single P-element insertions mutating 25% of vital Drosophila genes.

Authors:  A C Spradling; D Stern; A Beaton; E J Rhem; T Laverty; N Mozden; S Misra; G M Rubin
Journal:  Genetics       Date:  1999-09       Impact factor: 4.562

10.  Protection of armadillo/β-Catenin by armless, a novel positive regulator of wingless signaling.

Authors:  Gerlinde Reim; Martina Hruzova; Sandra Goetze; Konrad Basler
Journal:  PLoS Biol       Date:  2014-11-04       Impact factor: 8.029

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  13 in total

1.  Cell-Intrinsic Wnt4 Influences Conventional Dendritic Cell Fate Determination to Suppress Type 2 Immunity.

Authors:  Li-Yin Hung; John L Johnson; Yingbiao Ji; David A Christian; Karl R Herbine; Christopher F Pastore; De'Broski R Herbert
Journal:  J Immunol       Date:  2019-06-07       Impact factor: 5.422

2.  Extreme developmental instability associated with wing plasticity in pea aphids.

Authors:  Rachel E Hammelman; Carrie L Heusinkveld; Emily T Hung; Alydia Meineke; Benjamin J Parker; Jennifer A Brisson
Journal:  Proc Biol Sci       Date:  2020-10-21       Impact factor: 5.349

3.  A single WNT enhancer drives specification and regeneration of the Drosophila wing.

Authors:  Elena Gracia-Latorre; Lidia Pérez; Mariana Muzzopappa; Marco Milán
Journal:  Nat Commun       Date:  2022-08-22       Impact factor: 17.694

Review 4.  Regulation of Body Size and Growth Control.

Authors:  Michael J Texada; Takashi Koyama; Kim Rewitz
Journal:  Genetics       Date:  2020-10       Impact factor: 4.562

Review 5.  Biodiversity-based development and evolution: the emerging research systems in model and non-model organisms.

Authors:  Long Zhao; Feng Gao; Shan Gao; Yujun Liang; Hongan Long; Zhiyi Lv; Ying Su; Naihao Ye; Liusuo Zhang; Chengtian Zhao; Xiaoyu Wang; Weibo Song; Shicui Zhang; Bo Dong
Journal:  Sci China Life Sci       Date:  2021-04-22       Impact factor: 6.038

6.  TIMMDC1 Knockdown Inhibits Growth and Metastasis of Gastric Cancer Cells through Metabolic Inhibition and AKT/GSK3β/β-Catenin Signaling Pathway.

Authors:  Yuan Liu; Yuyan Huang; Jingjing Zhang; Cao Pei; Jiahui Hu; Jianxin Lyu; Yao Shen
Journal:  Int J Biol Sci       Date:  2018-07-27       Impact factor: 6.580

7.  WNT5A is transported via lipoprotein particles in the cerebrospinal fluid to regulate hindbrain morphogenesis.

Authors:  Karol Kaiser; Daniel Gyllborg; Jan Procházka; Alena Salašová; Petra Kompaníková; Francisco Lamus Molina; Rocio Laguna-Goya; Tomasz Radaszkiewicz; Jakub Harnoš; Michaela Procházková; David Potěšil; Roger A Barker; Ángel Gato Casado; Zbyněk Zdráhal; Radislav Sedláček; Ernest Arenas; J Carlos Villaescusa; Vítězslav Bryja
Journal:  Nat Commun       Date:  2019-04-02       Impact factor: 14.919

Review 8.  Regulation of Drosophila Hematopoiesis in Lymph Gland: From a Developmental Signaling Point of View.

Authors:  Wenwen Lan; Sumin Liu; Long Zhao; Ying Su
Journal:  Int J Mol Sci       Date:  2020-07-24       Impact factor: 5.923

9.  Arf6 is necessary for senseless expression in response to wingless signalling during Drosophila wing development.

Authors:  Julien Marcetteau; Tamàs Matusek; Frédéric Luton; Pascal P Thérond
Journal:  Biol Open       Date:  2021-12-02       Impact factor: 2.422

10.  New regulators of Drosophila eye development identified from temporal transcriptome changes.

Authors:  Manon Quiquand; Gerard Rimesso; Nan Qiao; Shengbao Suo; Chunyu Zhao; Matthew Slattery; Kevin P White; Jackie J Han; Nicholas E Baker
Journal:  Genetics       Date:  2021-04-15       Impact factor: 4.562

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