Literature DB >> 9528861

Nuclear factor - kappaB-dependent regulation of p53 gene expression induced by daunomycin genotoxic drug.

A C Hellin1, P Calmant, J Gielen, V Bours, M P Merville.   

Abstract

Anthracycline drugs are widely used for the treatment of solid tumors and leukemia, but the molecular basis of their biological effect is still poorly understood. In the HCT116 colon carcinoma cell line, which retains a wild-type inducible p53 gene, we show that the anthracycline daunomycin is a potent inducer of p53 and NF-kappaB transcription factors. Nuclear accumulation of p53 protein occurred because of increased protein stability and enhanced gene expression. In addition, daunomycin induced the p53 promoter through the binding of p50/p65 NF-kappaB heterodimers to the kappaB site in the p53 promoter. Under our conditions, the free radical scavengers NAC and PDTC were not able to block NF-kappaB activation or p53 induction, indicating that reactive oxygen intermediates were not involved in the cellular response to daunomycin stimulation. Overexpression of a stable unresponsive IkappaBalpha mutant in HCT116 cells resulted in a complete inhibition of the NF-kappaB activation but only a partial impairment of the p53 protein accumulation induced by daunomycin. We conclude that the p53-activating signal generated by daunomycin is partially regulated by NF-kappaB.

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Year:  1998        PMID: 9528861     DOI: 10.1038/sj.onc.1201638

Source DB:  PubMed          Journal:  Oncogene        ISSN: 0950-9232            Impact factor:   9.867


  14 in total

1.  NF-kappaB prevents cells from undergoing Cr(VI)-induced apoptosis.

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2.  Regulation of ΔNp63α by NFκΒ.

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3.  Inactivation of p53 by human T-cell lymphotropic virus type 1 Tax requires activation of the NF-kappaB pathway and is dependent on p53 phosphorylation.

Authors:  C A Pise-Masison; R Mahieux; H Jiang; M Ashcroft; M Radonovich; J Duvall; C Guillerm; J N Brady
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Review 4.  NFkappaB in neurons? The uncertainty principle in neurobiology.

Authors:  Paul T Massa; Hossein Aleyasin; David S Park; Xianrong Mao; Steven W Barger
Journal:  J Neurochem       Date:  2006-03-29       Impact factor: 5.372

5.  The roles of transcription and genotoxins underlying p53 mutagenesis in vivo.

Authors:  Barbara E Wright; Karen H Schmidt; Aaron T Hunt; J Stephen Lodmell; Michael F Minnick; Dennis K Reschke
Journal:  Carcinogenesis       Date:  2011-07-29       Impact factor: 4.944

6.  Characterization of the 5'-flanking region of the human TP53 gene and its response to the natural compound, Resveratrol.

Authors:  Fumiaki Uchiumi; Koichiro Shoji; Yuki Sasaki; Moe Sasaki; Yamato Sasaki; Takahiro Oyama; Kyoko Sugisawa; Sei-ichi Tanuma
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7.  Identification of Akt interaction protein PHF20/TZP that transcriptionally regulates p53.

Authors:  Sungman Park; Donghwa Kim; Han C Dan; Huihua Chen; Joseph R Testa; Jin Q Cheng
Journal:  J Biol Chem       Date:  2012-02-14       Impact factor: 5.157

8.  Protein kinase C delta induces transcription of the TP53 tumor suppressor gene by controlling death-promoting factor Btf in the apoptotic response to DNA damage.

Authors:  Hanshao Liu; Zheng-Guang Lu; Yoshio Miki; Kiyotsugu Yoshida
Journal:  Mol Cell Biol       Date:  2007-10-15       Impact factor: 4.272

9.  p53 represses cyclin D1 transcription through down regulation of Bcl-3 and inducing increased association of the p52 NF-kappaB subunit with histone deacetylase 1.

Authors:  Sonia Rocha; Anthea M Martin; David W Meek; Neil D Perkins
Journal:  Mol Cell Biol       Date:  2003-07       Impact factor: 4.272

10.  BAC transgenic mice provide evidence that p53 expression is highly regulated in vivo.

Authors:  L Chen; G X Zhang; Y Zhou; C X Zhang; Y Y Xie; C Xiang; X Y He; Q Zhang; G Liu
Journal:  Cell Death Dis       Date:  2015-09-17       Impact factor: 8.469

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