Literature DB >> 28693271

Expression of tumor suppressor REIC/Dkk-3 by a newly improved adenovirus vector with insertion of a hTERT promoter at the 3'-side of the transgene.

Endy Widya Putranto1,2, Rie Kinoshita1, Masami Watanabe3,4, Takuya Sadahira3, Hitoshi Murata1, Ken-Ichi Yamamoto1, Junichiro Futami5, Ken Kataoka6, Yusuke Inoue7, I Made Winarsa Ruma1,8, I Wayan Sumardika1,8, Chen Youyi1, Miyoko Kubo1, Yoshihiko Sakaguchi9, Kenji Saito1,10, Yasutomo Nasu3, Hiromi Kumon10,11, Nam-Ho Huh1, Masakiyo Sakaguchi1.   

Abstract

Reduced expression in immortalized cells (REIC)/Dickkopf-3 (Dkk-3) overexpression, induced using an adenovirus (Ad)-REIC, has been revealed to have a dramatic therapeutic effect on multiple types of cancer. To achieve an improved therapeutic effect from Ad-REIC on cancer, our group previously developed an enhanced gene expression system, the C-TSC cassette [cytomegalovirus (CMV)-RU5' located upstream (C); another promoter unit composed of triple tandem promoters, human telomerase reverse transcriptase (hTERT), simian virus 40 and CMV, located downstream of the cDNA (TSC); plus a polyadenylation (polyA) signal]. When applied to the conventional Ad-REIC, this novel system induced the development of an enhanced product, Ad-C-TSC-REIC, which exhibited a noticeable anticancer effect. However, there were difficulties in terms of Ad-C-TSC-REIC productivity in HEK293 cells, which are a widely used donor cell line for viral production. Productivity of Ad-C-TSC-REIC was significantly reduced compared with the conventional Ad-REIC, as the Ad-C-TSC-REIC had a significantly higher ability to induce apoptotic cell death of not only various types of cancer cell, but also HEK293 cells. The present study aimed to overcome this problem by modifying the C-TSC structure, resulting in an improved candidate: A C-T cassette (C: CMV-RU5' located upstream; T: another promoter unit composed of a single hTERT promoter, located downstream of the cDNA plus a polyA signal), which demonstrated gene expression comparable to that of the C-TSC system. The improved adenovirus REIC/Dkk-3 product with the C-T cassette, named Ad-C-T-REIC, exhibited a higher expression level of REIC/Dkk3, similar to that of Ad-C-TSC-REIC. Notably, the vector mitigated the cell death of donor HEK293 cells, resulting in a higher rate of production of its adenovirus. These results indicated that Ad-C-T-REIC has the potential to be a useful tool for application in cancer gene therapy.

Entities:  

Keywords:  adenovirus; cancer therapy; gene expression; plasmid; reduced expression in immortalized cells/Dickkopf-3

Year:  2017        PMID: 28693271      PMCID: PMC5494794          DOI: 10.3892/ol.2017.6201

Source DB:  PubMed          Journal:  Oncol Lett        ISSN: 1792-1074            Impact factor:   2.967


  10 in total

1.  A REIC gene shows down-regulation in human immortalized cells and human tumor-derived cell lines.

Authors:  T Tsuji; M Miyazaki; M Sakaguchi; Y Inoue; M Namba
Journal:  Biochem Biophys Res Commun       Date:  2000-02-05       Impact factor: 3.575

2.  Adenovirus-mediated overexpression of REIC/Dkk-3 selectively induces apoptosis in human prostate cancer cells through activation of c-Jun-NH2-kinase.

Authors:  Fernando Abarzua; Masakiyo Sakaguchi; Mikiro Takaishi; Yasutomo Nasu; Kyouhei Kurose; Shin Ebara; Masahiro Miyazaki; Masayoshi Namba; Hiromi Kumon; Nam-ho Huh
Journal:  Cancer Res       Date:  2005-11-01       Impact factor: 12.701

3.  Preferentially enhanced gene expression from a synthetic human telomerase reverse transcriptase promoter in human cancer cells.

Authors:  Sung Jin Kim; Han Saem Lee; June Ho Shin; Chul Geun Kim; Sunjoo Jeong; Keerang Park; Han Choe; Heuiran Lee
Journal:  Oncol Rep       Date:  2006-11       Impact factor: 3.906

4.  Antiproliferative activity of REIC/Dkk-3 and its significant down-regulation in non-small-cell lung carcinomas.

Authors:  T Tsuji; I Nozaki; M Miyazaki; M Sakaguchi; H Pu; Y Hamazaki; O Iijima; M Namba
Journal:  Biochem Biophys Res Commun       Date:  2001-11-23       Impact factor: 3.575

5.  Overexpression of REIC/Dkk-3 in normal fibroblasts suppresses tumor growth via induction of interleukin-7.

Authors:  Masakiyo Sakaguchi; Ken Kataoka; Fernando Abarzua; Ryuta Tanimoto; Masami Watanabe; Hitoshi Murata; Swe Swe Than; Kaoru Kurose; Yuji Kashiwakura; Kazuhiko Ochiai; Yasutomo Nasu; Hiromi Kumon; Nam-ho Huh
Journal:  J Biol Chem       Date:  2009-03-11       Impact factor: 5.157

6.  Down-regulation of inhibition of differentiation-1 via activation of activating transcription factor 3 and Smad regulates REIC/Dickkopf-3-induced apoptosis.

Authors:  Yuji Kashiwakura; Kazuhiko Ochiai; Masami Watanabe; Fernando Abarzua; Masakiyo Sakaguchi; Munenori Takaoka; Ryuta Tanimoto; Yasutomo Nasu; Nam-Ho Huh; Hiromi Kumon
Journal:  Cancer Res       Date:  2008-10-15       Impact factor: 12.701

7.  REIC/Dkk-3 overexpression downregulates P-glycoprotein in multidrug-resistant MCF7/ADR cells and induces apoptosis in breast cancer.

Authors:  K Kawasaki; M Watanabe; M Sakaguchi; Y Ogasawara; K Ochiai; Y Nasu; H Doihara; Y Kashiwakura; N-h Huh; H Kumon; H Date
Journal:  Cancer Gene Ther       Date:  2008-07-25       Impact factor: 5.987

8.  An N-terminal 78 amino acid truncation of REIC/Dkk-3 effectively induces apoptosis.

Authors:  Fernando Abarzua; Yuji Kashiwakura; Munenori Takaoka; Masami Watanabe; Kazuhiko Ochiai; Masakiyo Sakaguchi; Takao Iwawaki; Ryuta Tanimoto; Yasutomo Nasu; Nam-Ho Huh; Hiromi Kumon
Journal:  Biochem Biophys Res Commun       Date:  2008-08-24       Impact factor: 3.575

9.  A novel gene expression system strongly enhances the anticancer effects of a REIC/Dkk-3-encoding adenoviral vector.

Authors:  Masami Watanabe; Masakiyo Sakaguchi; Rie Kinoshita; Haruki Kaku; Yuichi Ariyoshi; Hideo Ueki; Ryuta Tanimoto; Shin Ebara; Kazuhiko Ochiai; Junichiro Futami; Shun-Ai Li; Peng Huang; Yasutomo Nasu; Nam-Ho Huh; Hiromi Kumon
Journal:  Oncol Rep       Date:  2013-12-31       Impact factor: 3.906

10.  Dramatic increase in expression of a transgene by insertion of promoters downstream of the cargo gene.

Authors:  Masakiyo Sakaguchi; Masami Watanabe; Rie Kinoshita; Haruki Kaku; Hideo Ueki; Junichiro Futami; Hitoshi Murata; Yusuke Inoue; Shun-Ai Li; Peng Huang; Endy Widya Putranto; I Made Winarsa Ruma; Yasutomo Nasu; Hiromi Kumon; Nam-Ho Huh
Journal:  Mol Biotechnol       Date:  2014-07       Impact factor: 2.695

  10 in total

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