Literature DB >> 16827804

Identification of p53-46F as a super p53 with an enhanced ability to induce p53-dependent apoptosis.

Yasuyuki Nakamura1, Manabu Futamura, Hiroki Kamino, Koji Yoshida, Yusuke Nakamura, Hirofumi Arakawa.   

Abstract

More than half of human cancers contain mutations in the tumor suppressor protein p53, most of which accumulate in the DNA binding domain of the protein. Here we report the identification of a mutant p53, designated p53-46F, in which Ser-46 is replaced with phenylalanine. In vitro, adenovirus-mediated transduction of the p53-46F gene induced apoptosis more efficiently than wild-type p53 in a number of cancer cell lines, whereas Ser-15 phosphorylation of p53-46F was enhanced in all cancer cell lines examined. Moreover, the expression level of the cell cycle inhibitor p21/WAF1 was decreased in cell lines infected with adenovirus p53-46F (Ad-p53-46F). p53-46F caused a more enhanced level of transcriptional activation of several p53-target genes, including Noxa, p53AIP1 and p53RFP, compared with wild-type p53. In vivo, adenovirus-mediated gene transfer of p53-46F enhanced apoptosis, thus suppressing tumor growth of a lung cancer cell line more effectively than wild-type p53 or p53-121F, another p53 mutant. Collectively, our data suggest that p53-46F is an active version of p53 that demonstrates enhanced induction of p53-dependent apoptosis. This is probably mediated by upregulated transactivation of genes downstream of p53, increased Ser-15 phosphorylation and a decrease in p21/WAF1 levels. We propose p53-46F as an alternative candidate to wild-type p53 for use in developing new therapeutic strategies for the treatment of cancer.

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Year:  2006        PMID: 16827804     DOI: 10.1111/j.1349-7006.2006.00214.x

Source DB:  PubMed          Journal:  Cancer Sci        ISSN: 1347-9032            Impact factor:   6.716


  6 in total

1.  The potential role of DFNA5, a hearing impairment gene, in p53-mediated cellular response to DNA damage.

Authors:  Yoshiko Masuda; Manabu Futamura; Hiroki Kamino; Yasuyuki Nakamura; Noriaki Kitamura; Shiho Ohnishi; Yuji Miyamoto; Hitoshi Ichikawa; Tsutomu Ohta; Misao Ohki; Tohru Kiyono; Hiroshi Egami; Hideo Baba; Hirofumi Arakawa
Journal:  J Hum Genet       Date:  2006-08-02       Impact factor: 3.172

2.  Stress-dependent Daxx-CHIP interaction suppresses the p53 apoptotic program.

Authors:  Holly McDonough; Peter C Charles; Eleanor G Hilliard; Shu-Bing Qian; Jin-Na Min; Andrea Portbury; Douglas M Cyr; Cam Patterson
Journal:  J Biol Chem       Date:  2009-05-22       Impact factor: 5.157

3.  Lysines in the tetramerization domain of p53 selectively modulate G1 arrest.

Authors:  Rachel Beckerman; Kathryn Yoh; Melissa Mattia-Sansobrino; Andrew Zupnick; Oleg Laptenko; Orit Karni-Schmidt; Jinwoo Ahn; In-Ja Byeon; Susan Keezer; Carol Prives
Journal:  Cell Cycle       Date:  2016-05-21       Impact factor: 4.534

4.  High glucose dephosphorylates serine 46 and inhibits p53 apoptotic activity.

Authors:  Alessia Garufi; Gabriella D'Orazi
Journal:  J Exp Clin Cancer Res       Date:  2014-09-27

Review 5.  P63 and P73 Activation in Cancers with p53 Mutation.

Authors:  Bi-He Cai; Yun-Chien Hsu; Fang-Yu Yeh; Yu-Rou Lin; Rui-Yu Lu; Si-Jie Yu; Jei-Fu Shaw; Ming-Han Wu; Yi-Zhen Tsai; Ying-Chen Lin; Zhi-Yu Bai; Yu-Chen Shih; Yi-Chiang Hsu; Ruo-Yu Liao; Wei-Hsin Kuo; Chao-Tien Hsu; Ching-Feng Lien; Chia-Chi Chen
Journal:  Biomedicines       Date:  2022-06-23

6.  Functional four-base A/T gap core sequence CATTAG of P53 response elements specifically bound tetrameric P53 differently than two-base A/T gap core sequence CATG bound both dimeric and tetrameric P53.

Authors:  Bi-He Cai; Jang-Yi Chen; Mei-Hua Lu; Li-Tze Chang; Hwang-Chi Lin; Yu-Ming Chang; Chung-Faye Chao
Journal:  Nucleic Acids Res       Date:  2009-02-10       Impact factor: 16.971

  6 in total

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