Literature DB >> 17400807

Overexpression of Wnt-1 in thyrocytes enhances cellular growth but suppresses transcription of the thyroperoxidase gene via different signaling mechanisms.

Won Bae Kim1, Christopher J Lewis, Kelly D McCall, Ramiro Malgor, Aimee D Kohn, Randall T Moon, Leonard D Kohn.   

Abstract

Wnt binding to cell surface receptors can activate a 'canonical' pathway that increases cellular beta-catenin or a 'noncanonical' Ca(++) pathway which can increase protein kinase C (PKC) activity. Although components of both Wnt/beta-catenin-signaling pathways exist in thyrocytes, their biological role is largely unknown. In evaluating the biological role of Wnt signaling in differentiated FRTL-5 thyroid cells, we showed that TSH increased canonical Wnt-1 but, surprisingly, decreased the active form of beta-catenin. Transient overexpression of Wnt-1 or beta-catenin in FRTL-5 cells increased active beta-catenin (ABC), decreased thyroperoxidase (TPO) mRNA, and suppressed TPO-promoter activity. The target of beta-catenin suppressive action was a consensus T cell factor/lymphoid enhancing factor (TCF/LEF)-binding site 5'-A/T A/T CAAAG-3', -137 to -129 bp on the rat TPO promoter. beta-Catenin overexpression significantly increased complex formation between beta-catenin/TCF-1 and an oligonucleotide containing the TCF/LEF sequence, suggesting that the beta-catenin/TCF-1 complex acts as a transcriptional repressor of the TPO gene. Stable over-expression of Wnt-1 in FRTL-5 cells significantly increased the growth rate without increasing beta-catenin levels. Increased growth was blunted by a PKC inhibitor, staurosporin. Wnt-1 overexpression increased serine phosphorylation, without affecting tyrosine phosphorylation, of signal transducers and activators of transcription 3 (STAT3) protein. In addition, these final results suggest that TSH-induced increase in Wnt-1 levels in thyrocytes contributes to enhanced cellular growth via a PKC pathway that increases STAT3 serine phosphorylation and activation, whereas TSH-induced decrease in activation of beta-catenin simultaneously relieves transcriptional suppression of TPO. We hypothesize that Wnt signaling contributes to the ability of TSH to simultaneously increase cell growth and functional, thyroid-specific, gene expression.

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Year:  2007        PMID: 17400807     DOI: 10.1677/JOE-06-0025

Source DB:  PubMed          Journal:  J Endocrinol        ISSN: 0022-0795            Impact factor:   4.286


  10 in total

1.  Wnt-independent role of β-catenin in thyroid cell proliferation and differentiation.

Authors:  Ana Sastre-Perona; Pilar Santisteban
Journal:  Mol Endocrinol       Date:  2014-03-19

2.  β-catenin accumulation in nuclei of hepatocellular carcinoma cells up-regulates glutathione-s-transferase M3 mRNA.

Authors:  Yu-Sang Li; Min Liu; Yoshihiro Nakata; He-Bin Tang
Journal:  World J Gastroenterol       Date:  2011-04-07       Impact factor: 5.742

3.  Stat3 activates the receptor tyrosine kinase like orphan receptor-1 gene in chronic lymphocytic leukemia cells.

Authors:  Ping Li; David Harris; Zhiming Liu; Jie Liu; Michael Keating; Zeev Estrov
Journal:  PLoS One       Date:  2010-07-29       Impact factor: 3.240

4.  Comparative study of the primary cilia in thyrocytes of adult mammals.

Authors:  J C Utrilla; F Gordillo-Martínez; A Gómez-Pascual; J M Fernández-Santos; C Garnacho; V Vázquez-Román; J Morillo-Bernal; R García-Marín; A Jiménez-García; I Martín-Lacave
Journal:  J Anat       Date:  2015-07-30       Impact factor: 2.610

5.  Phenylmethimazole decreases Toll-like receptor 3 and noncanonical Wnt5a expression in pancreatic cancer and melanoma together with tumor cell growth and migration.

Authors:  Anthony L Schwartz; Ramiro Malgor; Eric Dickerson; Ashani T Weeraratna; Andrzej Slominski; Jacobo Wortsman; Norikazu Harii; Aimee D Kohn; Randall T Moon; Frank L Schwartz; Douglas J Goetz; Leonard D Kohn; Kelly D McCall
Journal:  Clin Cancer Res       Date:  2009-05-26       Impact factor: 12.531

6.  Wnt/β-catenin signaling pathway is a direct enhancer of thyroid transcription factor-1 in human papillary thyroid carcinoma cells.

Authors:  Marie Gilbert-Sirieix; Joelle Makoukji; Shioko Kimura; Monique Talbot; Bernard Caillou; Charbel Massaad; Liliane Massaad-Massade
Journal:  PLoS One       Date:  2011-07-21       Impact factor: 3.240

7.  Genetic alterations in poorly differentiated and undifferentiated thyroid carcinomas.

Authors:  Paula Soares; Jorge Lima; Ana Preto; Patricia Castro; João Vinagre; Ricardo Celestino; Joana P Couto; Hugo Prazeres; Catarina Eloy; Valdemar Máximo; M Sobrinho-Simões
Journal:  Curr Genomics       Date:  2011-12       Impact factor: 2.236

8.  Role of the wnt pathway in thyroid cancer.

Authors:  Ana Sastre-Perona; Pilar Santisteban
Journal:  Front Endocrinol (Lausanne)       Date:  2012-02-29       Impact factor: 5.555

Review 9.  Estrogens and stem cells in thyroid cancer.

Authors:  Mariangela Zane; Veronica Catalano; Emanuela Scavo; Marco Bonanno; Maria Rosa Pelizzo; Matilde Todaro; Giorgio Stassi
Journal:  Front Endocrinol (Lausanne)       Date:  2014-07-25       Impact factor: 5.555

10.  MiR-509-5p improves the proliferative and invasive abilities of papillary thyroid carcinoma cells by inhibiting SFRP1.

Authors:  Chunxiao Yang; Yingluan Wang; Wenyi Yang; Yujun Gao; Bo Zhao; Xingwang Yang
Journal:  Arch Med Sci       Date:  2019-06-10       Impact factor: 3.318

  10 in total

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