Literature DB >> 1973356

Reversible alteration in the expression of the gap junctional protein connexin 32 during tumor promotion in rat liver and its role during cell proliferation.

M J Neveu1, J R Hully, D L Paul, H C Pitot.   

Abstract

Although numerous biochemical markers can identify putative preneoplastic altered hepatic foci (AHF) in rat liver, no consistent pattern of expression during hepatocarcinogenesis has emerged. Using quantitative stereologic analyses we demonstrated that decreased expression of the major hepatocyte gap junction protein, connexin 32 (Cx32), in rat AHF is a consistent observation in several protocols of multistage hepatocarcinogenesis. This change was observed after initiation by either ethylnitrosourea (ENU) or diethylnitrosamine (DEN), followed by promotion with phenobarbital (PB), dioxin, chlorendic acid, C.I. Solvent Yellow, or tamoxifen. AHF generated by Wy-14,643, ciprofibrate, and a choline/methionine-deficient dietary regimen also showed decreased Cx32 expression. The decrease of Cx32 in AHF was rapidly reversible after withdrawal of PB, and this change preceded a reduction in placental isozyme of glutathione-S-transferase (GST) expression in the same AHF. Within 20 days of withdrawal, fewer than 4% of GST-positive AHF were Cx32 deficient, while the volume of total AHF decreased 30%. Chronic PB treatment also resulted in a reversible decrease in Cx32 specifically in mid- and centro-lobular hepatocytes. Continuous thymidine labeling demonstrated that Cx32 could be uncoupled from the cell cycle, suggesting that some liver promoters may act directly to alter the expression of Cx32. These observations suggest that a decrease in Cx32 content was a relatively common epigenetic change in AHF induced during hepatocarcinogenesis by a number of initiating and promoting agents but that this change was not sufficient for carcinogenesis. This change, however, may be necessary for the mechanism(s) of tumor promotion, since Cx32-positive AHF did not proliferate as readily as Cx32-deficient AHF.

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Year:  1990        PMID: 1973356     DOI: 10.3727/095535490820874731

Source DB:  PubMed          Journal:  Cancer Commun        ISSN: 0955-3541


  9 in total

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Authors:  C Tateno; S Ito; M Tanaka; A Yoshitake
Journal:  Cell Biol Toxicol       Date:  1993 Jul-Sep       Impact factor: 6.691

3.  Transgenic hepatocarcinogenesis in the rat.

Authors:  J R Hully; Y Su; J K Lohse; A E Griep; C A Sattler; M J Haas; Y Dragan; J Peterson; M Neveu; H C Pitot
Journal:  Am J Pathol       Date:  1994-08       Impact factor: 4.307

4.  Effects of fenvalerate and esfenvalerate on hepatic gap junctional intercellular communication in rats.

Authors:  S Ito; C Tateno; M Tanaka; A Yoshitake
Journal:  Cell Biol Toxicol       Date:  1993 Apr-Jun       Impact factor: 6.691

5.  Basal promoter of the rat connexin 32 gene: identification and characterization of an essential element and its DNA-binding protein.

Authors:  S Bai; A Schoenfeld; A Pietrangelo; R D Burk
Journal:  Mol Cell Biol       Date:  1995-03       Impact factor: 4.272

Review 6.  Biochemical markers associated with the stages of promotion and progression during hepatocarcinogenesis in the rat.

Authors:  H C Pitot; Y Dragan; L Sargent; Y H Xu
Journal:  Environ Health Perspect       Date:  1991-06       Impact factor: 9.031

7.  Connexin-based signaling and drug-induced hepatotoxicity.

Authors:  Michaël Maes; Mathieu Vinken
Journal:  J Clin Transl Res       Date:  2017-02-12

8.  Expression and Functionality of Connexin-Based Channels in Human Liver Cancer Cell Lines.

Authors:  Kaat Leroy; Cícero Júlio Silva Costa; Alanah Pieters; Bruna Dos Santos Rodrigues; Raf Van Campenhout; Axelle Cooreman; Andrés Tabernilla; Bruno Cogliati; Mathieu Vinken
Journal:  Int J Mol Sci       Date:  2021-11-10       Impact factor: 5.923

9.  Differential changes in expression of gap junction proteins connexin 26 and 32 during hepatocarcinogenesis in rats.

Authors:  H Sakamoto; M Oyamada; K Enomoto; M Mori
Journal:  Jpn J Cancer Res       Date:  1992-11
  9 in total

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