Literature DB >> 11956596

Expression and regulation of WNT8A and WNT8B mRNAs in human tumor cell lines: up-regulation of WNT8B mRNA by beta-estradiol in MCF-7 cells, and down-regulation of WNT8A and WNT8B mRNAs by retinoic acid in NT2 cells.

Tetsuroh Saitoh1, Tetsuya Mine, Masaru Katoh.   

Abstract

Xenopus wnt-8 (Xwnt-8) is one of the most potent Wnts to activate the WNT - beta-catenin - TCF signaling pathway. We have previously cloned and characterized WNT8A and WNT8B, two human homologues of Xwnt-8. Here, we investigated expression and regulation of WNT8A and WNT8B mRNAs in human tumor cell lines by using cDNA-PCR. WNT8A mRNA was undetectable in 7 pancreatic cancer cell lines, but WNT8B mRNA was detected in pancreatic cancer cell lines PSN-1, BxPC-3, MIA PaCa-2. Both WNT8A and WNT8B mRNAs were undetectable in 7 brain tumor cell lines. Although WNT8A mRNA was undetectable in 3 breast cancer cell lines, WNT8B mRNA was detected in the breast cancer cell line MCF-7. WNT8B mRNA, but not WNT8A mRNA, was significantly up-regulated by beta-estradiol in MCF-7 cells. WNT8A mRNA was detected in embryonal tumor cell lines NEC-14, NCC-IT, and NT2, while WNT8B mRNA was detected in embryonal tumor cell lines NEC-8, NEC-14, and NT2. Because NT2 cells differentiate into neuronal cells after all-trans retinoic-acid treatment, effects of all-trans retinoic acid on mRNA expression of WNT8A and WNT8B were next investigated. WNT8A and WNT8B mRNAs were down-regulated together in NT2 cells after all-trans retinoic-acid treatment. WNT8A and WNT8B might play key roles in embryonal tumors and embryonic stem cells through synergistic activation of the beta-catenin - TCF signaling pathway.

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Year:  2002        PMID: 11956596

Source DB:  PubMed          Journal:  Int J Oncol        ISSN: 1019-6439            Impact factor:   5.650


  8 in total

1.  Morphogenesis of chicken liver: identification of localized growth zones and the role of beta-catenin/Wnt in size regulation.

Authors:  Sanong Suksaweang; Chih-Min Lin; Ting-Xin Jiang; Michael W Hughes; Randall B Widelitz; Cheng-Ming Chuong
Journal:  Dev Biol       Date:  2004-02-01       Impact factor: 3.582

2.  Effects of genetic variants of the bovine WNT8A gene on nine important growth traits in beef cattle.

Authors:  Yong-Zhen Huang; Yong Zou; Qing Lin; Hua He; Li Zheng; Zi-Jing Zhang; Yong-Long Dang; Chu-Zhao Lei; Xian-Yong Lan; Xing-Shan Qi; Hong Chen
Journal:  J Genet       Date:  2017-09       Impact factor: 1.166

3.  Expression profiles and functional analyses of Wnt-related genes in human joint disorders.

Authors:  Yukio Nakamura; Masashi Nawata; Shigeyuki Wakitani
Journal:  Am J Pathol       Date:  2005-07       Impact factor: 4.307

Review 4.  A Wnt survival guide: from flies to human disease.

Authors:  Andy J Chien; William H Conrad; Randall T Moon
Journal:  J Invest Dermatol       Date:  2009-01-29       Impact factor: 8.551

5.  Activation of PPARα by clofibrate sensitizes pancreatic cancer cells to radiation through the Wnt/β-catenin pathway.

Authors:  J Xue; W Zhu; J Song; Y Jiao; J Luo; C Yu; J Zhou; J Wu; M Chen; W-Q Ding; J Cao; S Zhang
Journal:  Oncogene       Date:  2017-10-23       Impact factor: 9.867

6.  Complex expression pattern of Wnt ligands and frizzled receptors in human placenta and its trophoblast subtypes.

Authors:  S Sonderegger; H Husslein; C Leisser; M Knöfler
Journal:  Placenta       Date:  2007-01-02       Impact factor: 3.481

Review 7.  Networking of WNT, FGF, Notch, BMP, and Hedgehog signaling pathways during carcinogenesis.

Authors:  Masaru Katoh
Journal:  Stem Cell Rev       Date:  2007-01       Impact factor: 6.692

8.  WNT8B as an Independent Prognostic Marker for Nasopharyngeal Carcinoma.

Authors:  Chawalit Ngernsombat; Pongphol Prattapong; Noppadol Larbcharoensub; Krittika Khotthong; Tavan Janvilisri
Journal:  Curr Oncol       Date:  2021-07-08       Impact factor: 3.677

  8 in total

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