Literature DB >> 20587415

The calcium-binding protein S100B down-regulates p53 and apoptosis in malignant melanoma.

Jing Lin1, Qingyuan Yang, Paul T Wilder, France Carrier, David J Weber.   

Abstract

The S100B-p53 protein complex was discovered in C8146A malignant melanoma, but the consequences of this interaction required further study. When S100B expression was inhibited in C8146As by siRNA (siRNA(S100B)), wt p53 mRNA levels were unchanged, but p53 protein, phosphorylated p53, and p53 gene products (i.e. p21 and PIDD) were increased. siRNA(S100B) transfections also restored p53-dependent apoptosis in C8146As as judged by poly(ADP-ribose) polymerase cleavage, DNA ladder formation, caspase 3 and 8 activation, and aggregation of the Fas death receptor (+UV); whereas, siRNA(S100B) had no effect in SK-MEL-28 cells containing elevated S100B and inactive p53 (p53R145L mutant). siRNA(S100B)-mediated apoptosis was independent of the mitochondria, because no changes were observed in mitochondrial membrane potential, cytochrome c release, caspase 9 activation, or ratios of pro- and anti-apoptotic proteins (BAX, Bcl-2, and Bcl-X(L)). As expected, cells lacking S100B (LOX-IM VI) were not affected by siRNA(S100B), and introduction of S100B reduced their UV-induced apoptosis activity by 7-fold, further demonstrating that S100B inhibits apoptosis activities in p53-containing cells. In other wild-type p53 cells (i.e. C8146A, UACC-2571, and UACC-62), S100B was found to contribute to cell survival after UV treatment, and for C8146As, the decrease in survival after siRNA(S100B) transfection (+UV) could be reversed by the p53 inhibitor, pifithrin-alpha. In summary, reducing S100B expression with siRNA was sufficient to activate p53, its transcriptional activation activities, and p53-dependent apoptosis pathway(s) in melanoma involving the Fas death receptor and perhaps PIDD. Thus, a well known marker for malignant melanoma, S100B, likely contributes to cancer progression by down-regulating the tumor suppressor protein, p53.

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Year:  2010        PMID: 20587415      PMCID: PMC2930747          DOI: 10.1074/jbc.M110.155382

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  81 in total

1.  Proteins of the S100 family regulate the oligomerization of p53 tumor suppressor.

Authors:  Maria Rosario Fernandez-Fernandez; Dmitry B Veprintsev; Alan R Fersht
Journal:  Proc Natl Acad Sci U S A       Date:  2005-03-21       Impact factor: 11.205

2.  An evaluation of the ability of pifithrin-alpha and -beta to inhibit p53 function in two wild-type p53 human tumor cell lines.

Authors:  Mike I Walton; Stuart C Wilson; Ian R Hardcastle; Amin R Mirza; Paul Workman
Journal:  Mol Cancer Ther       Date:  2005-09       Impact factor: 6.261

3.  PIDD: a switch hitter.

Authors:  Zhao-Hui Wu; Angela Mabb; Shigeki Miyamoto
Journal:  Cell       Date:  2005-12-16       Impact factor: 41.582

4.  Restoration of p53 function for selective Fas-mediated apoptosis in human and rat glioma cells in vitro and in vivo by a p53 COOH-terminal peptide.

Authors:  Patrick B Senatus; Yin Li; Christopher Mandigo; Gwen Nichols; Gaetan Moise; Yuehua Mao; Melandee D Brown; Richard C Anderson; Andrew T Parsa; Paul W Brandt-Rauf; Jeffrey N Bruce; Robert L Fine
Journal:  Mol Cancer Ther       Date:  2006-01       Impact factor: 6.261

5.  Down-regulation of p21 contributes to apoptosis induced by HPV E6 in human mammary epithelial cells.

Authors:  Xueli Fan; Yingwang Liu; Jason J Chen
Journal:  Apoptosis       Date:  2005-01       Impact factor: 4.677

6.  p53 plays a central role in UVA and UVB induced cell damage and apoptosis in melanoma cells.

Authors:  Hong Zhang
Journal:  Cancer Lett       Date:  2006-02-28       Impact factor: 8.679

7.  Ablation of either p21 or Bax prevents p53-dependent apoptosis induced by green tea polyphenol epigallocatechin-3-gallate.

Authors:  Kedar Hastak; Mukesh K Agarwal; Hasan Mukhtar; Munna L Agarwal
Journal:  FASEB J       Date:  2005-03-11       Impact factor: 5.191

8.  Regulation of p53 and suppression of apoptosis by the soluble guanylyl cyclase/cGMP pathway in human ovarian cancer cells.

Authors:  M Fraser; S L Chan; S S L Chan; R R Fiscus; B K Tsang
Journal:  Oncogene       Date:  2006-04-06       Impact factor: 9.867

9.  Survivin and p53 modulate quercetin-induced cell growth inhibition and apoptosis in human lung carcinoma cells.

Authors:  Pao-Chen Kuo; Huei-Fang Liu; Jui-I Chao
Journal:  J Biol Chem       Date:  2004-09-29       Impact factor: 5.157

Review 10.  The P53 pathway: what questions remain to be explored?

Authors:  A J Levine; W Hu; Z Feng
Journal:  Cell Death Differ       Date:  2006-06       Impact factor: 15.828

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  43 in total

1.  Small Molecule Inhibitors of Ca(2+)-S100B Reveal Two Protein Conformations.

Authors:  Michael C Cavalier; Mohd Imran Ansari; Adam D Pierce; Paul T Wilder; Laura E McKnight; E Prabhu Raman; David B Neau; Padmavani Bezawada; Milad J Alasady; Thomas H Charpentier; Kristen M Varney; Eric A Toth; Alexander D MacKerell; Andrew Coop; David J Weber
Journal:  J Med Chem       Date:  2016-01-13       Impact factor: 7.446

2.  S100B protein as a possible participant in the brain metastasis of NSCLC.

Authors:  Xiaowen Pang; Jie Min; Lili Liu; Yi Liu; Ningqiang Ma; Helong Zhang
Journal:  Med Oncol       Date:  2012-12       Impact factor: 3.064

3.  Integrative genetic, epigenetic and pathological analysis of paraganglioma reveals complex dysregulation of NOTCH signaling.

Authors:  Alessandro Cama; Fabio Verginelli; Lavinia Vittoria Lotti; Francesco Napolitano; Annalisa Morgano; Andria D'Orazio; Michele Vacca; Silvia Perconti; Felice Pepe; Federico Romani; Francesca Vitullo; Filippo di Lella; Rosa Visone; Massimo Mannelli; Hartmut P H Neumann; Giancarlo Raiconi; Carlo Paties; Antonio Moschetta; Roberto Tagliaferri; Angelo Veronese; Mario Sanna; Renato Mariani-Costantini
Journal:  Acta Neuropathol       Date:  2013-08-18       Impact factor: 17.088

4.  X-ray crystal structure of human calcium-bound S100A1.

Authors:  Zephan Melville; Ehson Aligholizadeh; Laura E McKnight; Dylan J Weber; Edwin Pozharski; David J Weber
Journal:  Acta Crystallogr F Struct Biol Commun       Date:  2017-03-22       Impact factor: 1.056

5.  An efficient expression and purification strategy for the production of S100 proteins in Escherichia coli.

Authors:  Honglin He; Lei Han; Wen Guan; Jingjing Li; Wei Han; Yan Yu
Journal:  Bioengineered       Date:  2012-09-18       Impact factor: 3.269

6.  Target binding to S100B reduces dynamic properties and increases Ca(2+)-binding affinity for wild type and EF-hand mutant proteins.

Authors:  Melissa A Liriano; Kristen M Varney; Nathan T Wright; Cassandra L Hoffman; Eric A Toth; Rieko Ishima; David J Weber
Journal:  J Mol Biol       Date:  2012-07-21       Impact factor: 5.469

7.  S100A16 up-regulates Oct4 and Nanog expression in cancer stem-like cells of Yumoto human cervical carcinoma cells.

Authors:  Nariaki Tomiyama; Ryuji Ikeda; Yukihiko Nishizawa; Shogo Masuda; Yusuke Tajitsu; Yasuo Takeda
Journal:  Oncol Lett       Date:  2018-04-25       Impact factor: 2.967

8.  In vivo screening of S100B inhibitors for melanoma therapy.

Authors:  Danna B Zimmer; Rena G Lapidus; David J Weber
Journal:  Methods Mol Biol       Date:  2013

Review 9.  The evolution of S100B inhibitors for the treatment of malignant melanoma.

Authors:  Kira G Hartman; Laura E McKnight; Melissa A Liriano; David J Weber
Journal:  Future Med Chem       Date:  2013-01       Impact factor: 3.808

10.  S100B protein in tissue development, repair and regeneration.

Authors:  Guglielmo Sorci; Francesca Riuzzi; Cataldo Arcuri; Claudia Tubaro; Roberta Bianchi; Ileana Giambanco; Rosario Donato
Journal:  World J Biol Chem       Date:  2013-02-26
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