Home LiteratureArticle Details
PMID: 9653180 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Functional and physical interactions of the ARF tumor suppressor with p53 and Mdm2.

Kamijo T, Weber JD, Zambetti G, Zindy F, Roussel MF, Sherr CJ

Abstract

The INK4a-ARF locus encodes two proteins, p16(INK4a) and p19(ARF), that restrain cell growth by affecting the functions of the retinoblastoma protein and p53, respectively. Disruption of this locus by deletions or point mutations is a common event in human cancer, perhaps second only to the loss of p53. Using insect cells infected with baculovirus vectors and NIH 3T3 fibroblasts infected with ARF retrovirus, we determined that mouse p19(ARF) can interact directly with p53, as well as with the p53 regulator mdm2. ARF can bind p53-DNA complexes, and it depends upon functional p53 to transcriptionally induce mdm2 and the cyclin-dependent kinase inhibitor p21(Cip1), and to arrest cell proliferation. Binding of p19(ARF) to p53 requires the ARF N-terminal domain (amino acids 1-62) that is necessary and sufficient to induce cell cycle arrest. Overexpression of p19(ARF) in wild type or ARF-null mouse embryo fibroblasts increases the half-life of p53 from 15 to approximately 75 min, correlating with an increased p53-dependent transcriptional response and growth arrest. Surprisingly, when overexpressed at supra-physiologic levels after introduction into ARF-null NIH 3T3 cells or mouse embryo fibroblasts, the p53 protein is handicapped in inducing this checkpoint response. In this setting, reintroduction of p19(ARF) restores p53's ability to induce p21(Cip1) and mdm2, implying that, in addition to stabilizing p53, ARF modulates p53-dependent function through an additional mechanism.

MeSH Terms
3T3 Cells Animals Gene Expression Regulation, Neoplastic Genes, Tumor Suppressor Humans Mice Neoplasm Proteins/genetics,metabolism Nuclear Proteins Proteins/genetics,metabolism Proto-Oncogene Proteins/genetics,metabolism Proto-Oncogene Proteins c-mdm2 Retroviridae Transfection Tumor Suppressor Protein p14ARF Tumor Suppressor Protein p53/genetics,metabolism
Chemicals
Neoplasm Proteins Nuclear Proteins Proteins Proto-Oncogene Proteins Tumor Suppressor Protein p14ARF Tumor Suppressor Protein p53 MDM2 protein, human Mdm2 protein, mouse Proto-Oncogene Proteins c-mdm2
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Kamijo T
Howard Hughes Medical Institute, St. Jude Children's Research Hospital, 332 North Lauderdale, Memphis, TN 38105, USA.
Weber J D
Zambetti G
Zindy F
Roussel M F
Sherr C J
References (58)
58 references, click to expand
  1. Stabilization and activation of p53 are regulated independently by different phosphorylation events.
    Proc Natl Acad Sci U S A. 1998 Mar 3;95(5):2284-9 PMID: 9482877
  2. The mdm-2 oncogene product forms a complex with the p53 protein and inhibits p53-mediated transactivation.
    Cell. 1992 Jun 26;69(7):1237-45 PMID: 1535557
  3. The Ink4a tumor suppressor gene product, p19Arf, interacts with MDM2 and neutralizes MDM2's inhibition of p53.
    Cell. 1998 Mar 20;92(6):713-23 PMID: 9529248
  4. ARF promotes MDM2 degradation and stabilizes p53: ARF-INK4a locus deletion impairs both the Rb and p53 tumor suppression pathways.
    Cell. 1998 Mar 20;92(6):725-34 PMID: 9529249
  5. Quantitative studies of the growth of mouse embryo cells in culture and their development into established lines.
    J Cell Biol. 1963 May;17:299-313 PMID: 13985244
  6. Protein synthesis required to anchor a mutant p53 protein which is temperature-sensitive for nuclear transport.
    Nature. 1991 Feb 28;349(6312):802-6 PMID: 2000149
  7. Nuclear localization is essential for the activity of p53 protein.
    Oncogene. 1991 Nov;6(11):2055-65 PMID: 1719467
  8. p53 alteration is a common event in the spontaneous immortalization of primary BALB/c murine embryo fibroblasts.
    Genes Dev. 1991 Dec;5(12B):2375-85 PMID: 1752433
  9. Recombinant genomes which express chloramphenicol acetyltransferase in mammalian cells.
    Mol Cell Biol. 1982 Sep;2(9):1044-51 PMID: 6960240
  10. Identification of the p53 protein domain involved in formation of the simian virus 40 large T-antigen-p53 protein complex.
    J Virol. 1986 Sep;59(3):574-83 PMID: 3016321
  11. High-efficiency transformation of mammalian cells by plasmid DNA.
    Mol Cell Biol. 1987 Aug;7(8):2745-52 PMID: 3670292
  12. The murine p53 protein blocks replication of SV40 DNA in vitro by inhibiting the initiation functions of SV40 large T antigen.
    Cell. 1989 May 5;57(3):379-92 PMID: 2541911
  13. Mutant p53 DNA clones from human colon carcinomas cooperate with ras in transforming primary rat cells: a comparison of the "hot spot" mutant phenotypes.
    Cell Growth Differ. 1990 Dec;1(12):571-80 PMID: 2288874
  14. Wild-type p53 mediates positive regulation of gene expression through a specific DNA sequence element.
    Genes Dev. 1992 Jul;6(7):1143-52 PMID: 1628822
  15. Regulation of the specific DNA binding function of p53.
    Cell. 1992 Nov 27;71(5):875-86 PMID: 1423635
  16. Direct binding of cyclin D to the retinoblastoma gene product (pRb) and pRb phosphorylation by the cyclin D-dependent kinase CDK4.
    Genes Dev. 1993 Mar;7(3):331-42 PMID: 8449399
  17. Oncoprotein MDM2 conceals the activation domain of tumour suppressor p53.
    Nature. 1993 Apr 29;362(6423):857-60 PMID: 8479525
  18. Functional interactions of the retinoblastoma protein with mammalian D-type cyclins.
    Cell. 1993 May 7;73(3):487-97 PMID: 8343202
  19. The p53-mdm-2 autoregulatory feedback loop.
    Genes Dev. 1993 Jul;7(7A):1126-32 PMID: 8319905
  20. Mapping of the p53 and mdm-2 interaction domains.
    Mol Cell Biol. 1993 Jul;13(7):4107-14 PMID: 7686617
  21. Sequence-specific DNA binding by p53: identification of target sites and lack of binding to p53 - MDM2 complexes.
    EMBO J. 1993 Jul;12(7):2799-808 PMID: 8334996
  22. A new regulatory motif in cell-cycle control causing specific inhibition of cyclin D/CDK4.
    Nature. 1993 Dec 16;366(6456):704-7 PMID: 8259215
  23. DNA tumor virus oncoproteins and retinoblastoma gene mutations share the ability to relieve the cell's requirement for cyclin D1 function in G1.
    J Cell Biol. 1994 May;125(3):625-38 PMID: 8175885
  24. Several hydrophobic amino acids in the p53 amino-terminal domain are required for transcriptional activation, binding to mdm-2 and the adenovirus 5 E1B 55-kD protein.
    Genes Dev. 1994 May 15;8(10):1235-46 PMID: 7926727
  25. Database of p53 gene somatic mutations in human tumors and cell lines.
    Nucleic Acids Res. 1994 Sep;22(17):3551-5 PMID: 7937055
  26. Retinoblastoma-protein-dependent cell-cycle inhibition by the tumour suppressor p16.
    Nature. 1995 Jun 8;375(6531):503-6 PMID: 7777060
  27. Tumour-derived p16 alleles encoding proteins defective in cell-cycle inhibition.
    Nature. 1995 Jun 8;375(6531):506-10 PMID: 7777061
  28. Growth suppression by p16ink4 requires functional retinoblastoma protein.
    Proc Natl Acad Sci U S A. 1995 Jul 3;92(14):6289-93 PMID: 7603984
  29. Complex structure and regulation of the P16 (MTS1) locus.
    Cancer Res. 1995 Jul 15;55(14):2988-94 PMID: 7606716
  30. A novel p16INK4A transcript.
    Cancer Res. 1995 Jul 15;55(14):2995-7 PMID: 7541708
  31. A new type of p16INK4/MTS1 gene transcript expressed in B-cell malignancies.
    Oncogene. 1995 Jul 6;11(1):21-9 PMID: 7624129
  32. Small peptides activate the latent sequence-specific DNA binding function of p53.
    Cell. 1995 Oct 20;83(2):237-45 PMID: 7585941
  33. Rescue of early embryonic lethality in mdm2-deficient mice by deletion of p53.
    Nature. 1995 Nov 9;378(6553):203-6 PMID: 7477326
  34. Rescue of embryonic lethality in Mdm2-deficient mice by absence of p53.
    Nature. 1995 Nov 9;378(6553):206-8 PMID: 7477327
  35. Alternative reading frames of the INK4a tumor suppressor gene encode two unrelated proteins capable of inducing cell cycle arrest.
    Cell. 1995 Dec 15;83(6):993-1000 PMID: 8521522
  36. Abnormal centrosome amplification in the absence of p53.
    Science. 1996 Mar 22;271(5256):1744-7 PMID: 8596939
  37. Role of the INK4a locus in tumor suppression and cell mortality.
    Cell. 1996 Apr 5;85(1):27-37 PMID: 8620534
  38. Genetic alterations of cyclins, cyclin-dependent kinases, and Cdk inhibitors in human cancer.
    Adv Cancer Res. 1996;68:67-108 PMID: 8712071
  39. Cell-cycle control and its watchman.
    Nature. 1996 Jun 20;381(6584):643-4 PMID: 8649505
  40. Regulation of mutant p53 temperature-sensitive DNA binding.
    J Biol Chem. 1996 Oct 11;271(41):25468-78 PMID: 8810317
  41. Mutation of phosphoserine 389 affects p53 function in vivo.
    J Biol Chem. 1996 Nov 15;271(46):29380-5 PMID: 8910602
  42. When checkpoints fail.
    Cell. 1997 Feb 7;88(3):315-21 PMID: 9039258
  43. p53, the cellular gatekeeper for growth and division.
    Cell. 1997 Feb 7;88(3):323-31 PMID: 9039259
  44. Identification of redox/repair protein Ref-1 as a potent activator of p53.
    Genes Dev. 1997 Mar 1;11(5):558-70 PMID: 9119221
  45. Mdm2 promotes the rapid degradation of p53.
    Nature. 1997 May 15;387(6630):296-9 PMID: 9153395
  46. Regulation of p53 stability by Mdm2.
    Nature. 1997 May 15;387(6630):299-303 PMID: 9153396
  47. The p53 activation and apoptosis induced by DNA damage are reversibly inhibited by salicylate.
    Oncogene. 1997 May 29;14(21):2503-10 PMID: 9191050
  48. Expression of the p16INK4a tumor suppressor versus other INK4 family members during mouse development and aging.
    Oncogene. 1997 Jul 10;15(2):203-11 PMID: 9244355
  49. Activation of p53 sequence-specific DNA binding by acetylation of the p53 C-terminal domain.
    Cell. 1997 Aug 22;90(4):595-606 PMID: 9288740
  50. DNA damage-induced phosphorylation of p53 alleviates inhibition by MDM2.
    Cell. 1997 Oct 31;91(3):325-34 PMID: 9363941
  51. Tumor suppression at the mouse INK4a locus mediated by the alternative reading frame product p19ARF.
    Cell. 1997 Nov 28;91(5):649-59 PMID: 9393858
  52. DNA damage induces phosphorylation of the amino terminus of p53.
    Genes Dev. 1997 Dec 15;11(24):3471-81 PMID: 9407038
  53. Nucleo-cytoplasmic shuttling of the hdm2 oncoprotein regulates the levels of the p53 protein via a pathway used by the human immunodeficiency virus rev protein.
    EMBO J. 1998 Jan 15;17(2):554-64 PMID: 9430646
  54. The candidate tumour suppressor p33ING1 cooperates with p53 in cell growth control.
    Nature. 1998 Jan 15;391(6664):295-8 PMID: 9440695
  55. Characterization of the p53-dependent postmitotic checkpoint following spindle disruption.
    Mol Cell Biol. 1998 Feb;18(2):1055-64 PMID: 9448003
  56. Oncoprotein MDM2 is a ubiquitin ligase E3 for tumor suppressor p53.
    FEBS Lett. 1997 Dec 22;420(1):25-7 PMID: 9450543
  57. Oncogenic forms of p53 inhibit p53-regulated gene expression.
    Science. 1992 May 8;256(5058):827-30 PMID: 1589764
  58. Functional activation of p53 via phosphorylation following DNA damage by UV but not gamma radiation.
    Proc Natl Acad Sci U S A. 1998 Mar 17;95(6):2834-7 PMID: 9501176
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
1998-07-07
Pages
8292-7
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC20969
Subset
IM
Grants
NCI NIH HHS · P01 CA071907 · United States
NCI NIH HHS · CA-21765 · United States
NCI NIH HHS · P30 CA021765 · United States
NCI NIH HHS · CA-71907 · United States
NCI NIH HHS · CA-63230 · United States
NCI NIH HHS · R01 CA063230 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com