Home LiteratureArticle Details
PMID: 8943068 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

The tumorigenic potential and cell growth characteristics of p53-deficient cells are equivalent in the presence or absence of Mdm2.

Jones SN, Sands AT, Hancock AR, Vogel H, Donehower LA, Linke SP, Wahl GM, Bradley A

Abstract

The Mdm2 oncoprotein forms a complex with the p53 tumor suppressor protein and inhibits p53-mediated regulation of heterologous gene expression. Recently, Mdm2 has been found to bind several other proteins that function to regulate cell cycle progression, including the E2F-1/DP1 transcription factor complex and the retinoblastoma tumor-suppressor protein. To determine whether Mdm2 plays a role in cell cycle control or tumorigenesis that is distinct from its ability to modulate p53 function, we have examined and compared both the in vitro growth characteristics of p53-deficient and Mdm2/p53-deficient fibroblasts, and the rate and spectrum of tumor formation in p53-deficient and Mdm2/p53-deficient mice. We find no difference between p53-deficient fibroblasts and Mdm2/p53-deficient fibroblasts either in their rate of proliferation in culture or in their survival frequency when treated with various genotoxic agents. Cell cycle studies indicate no difference in the ability of the two cell populations to enter S phase when treated with DNA-damaging agents or nucleotide antimetabolites, and p53-deficient fibroblasts and Mdm2/p53-deficient fibroblasts exhibit the same rate of spontaneous immortalization following long-term passage in culture. Finally, p53-deficient mice and Mdm2/p53-deficient mice display the same incidence and spectrum of spontaneous tumor formation in vivo. These results demonstrate that deletion of Mdm2 has no additional effect on cell proliferation, cell cycle control, or tumorigenesis when p53 is absent.

MeSH Terms
Animals Cell Cycle Cell Division/drug effects,radiation effects Cell Transformation, Neoplastic Cells, Cultured Crosses, Genetic Embryo, Mammalian Fibroblasts/cytology Gene Expression Regulation Genotype Heterozygote Mice Mice, Knockout Mitomycin/pharmacology Neoplasm Proteins/biosynthesis Neoplasms, Experimental/genetics,physiopathology Nuclear Proteins Proto-Oncogene Proteins/biosynthesis,deficiency,genetics Proto-Oncogene Proteins c-mdm2 Tumor Suppressor Protein p53/biosynthesis,deficiency,genetics Ultraviolet Rays
Chemicals
Neoplasm Proteins Nuclear Proteins Proto-Oncogene Proteins Tumor Suppressor Protein p53 Mitomycin Mdm2 protein, mouse Proto-Oncogene Proteins c-mdm2
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Jones S N
Department of Molecular and Human Genetics, Baylor College of Medicine, Houston, TX 77030, USA.
Sands A T
Hancock A R
Vogel H
Donehower L A
Linke S P
Wahl G M
Bradley A
References (43)
43 references, click to expand
  1. Genetic background alters the spectrum of tumors that develop in p53-deficient mice.
    FASEB J. 1993 Jul;7(10):938-43 PMID: 8344491
  2. Interaction between the retinoblastoma protein and the oncoprotein MDM2.
    Nature. 1995 Jun 22;375(6533):694-8 PMID: 7791904
  3. Loss of a p53-associated G1 checkpoint does not decrease cell survival following DNA damage.
    Cancer Res. 1993 Sep 15;53(18):4164-8 PMID: 8364909
  4. The human MDM-2 oncogene is overexpressed in leukemias.
    Blood. 1993 Nov 1;82(9):2617-23 PMID: 8219216
  5. Wild type p53 can mediate sequence-specific transactivation of an internal promoter within the mdm2 gene.
    Oncogene. 1993 Dec;8(12):3411-6 PMID: 8247544
  6. Spontaneous and carcinogen-induced tumorigenesis in p53-deficient mice.
    Nat Genet. 1993 Nov;5(3):225-9 PMID: 8275085
  7. DNA damage increases the levels of MDM2 messenger RNA in wtp53 human cells.
    Cancer Res. 1994 Feb 15;54(4):896-9 PMID: 8313378
  8. Interactions between p53 and MDM2 in a mammalian cell cycle checkpoint pathway.
    Proc Natl Acad Sci U S A. 1994 Mar 29;91(7):2684-8 PMID: 8146175
  9. The MDM2 oncogene overexpression in chronic lymphocytic leukemia and low-grade lymphoma of B-cell origin.
    Blood. 1994 Nov 1;84(9):3158-65 PMID: 7949188
  10. Cellular targets for activation by the E2F1 transcription factor include DNA synthesis- and G1/S-regulatory genes.
    Mol Cell Biol. 1995 Aug;15(8):4215-24 PMID: 7623816
  11. A subset of p53-deficient embryos exhibit exencephaly.
    Nat Genet. 1995 Jun;10(2):175-80 PMID: 7663512
  12. Mice lacking p21CIP1/WAF1 undergo normal development, but are defective in G1 checkpoint control.
    Cell. 1995 Aug 25;82(4):675-84 PMID: 7664346
  13. p53 deficiency does not affect the accumulation of point mutations in a transgene target.
    Proc Natl Acad Sci U S A. 1995 Aug 29;92(18):8517-21 PMID: 7667322
  14. Rescue of early embryonic lethality in mdm2-deficient mice by deletion of p53.
    Nature. 1995 Nov 9;378(6553):203-6 PMID: 7477326
  15. Rescue of embryonic lethality in Mdm2-deficient mice by absence of p53.
    Nature. 1995 Nov 9;378(6553):206-8 PMID: 7477327
  16. Regulation of transcription functions of the p53 tumor suppressor by the mdm-2 oncogene.
    Mol Med. 1995 Jan;1(2):142-52 PMID: 8529093
  17. A reversible, p53-dependent G0/G1 cell cycle arrest induced by ribonucleotide depletion in the absence of detectable DNA damage.
    Genes Dev. 1996 Apr 15;10(8):934-47 PMID: 8608941
  18. 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
  19. Kinetics of N-(phosphonacetyl)-L-aspartate and pyrazofurin depletion of pyrimidine ribonucleotide and deoxyribonucleotide pools and their relationship to nucleic acid synthesis in intact and permeabilized cells.
    Cancer Res. 1982 Nov;42(11):4525-31 PMID: 7127293
  20. Molecular analysis and chromosomal mapping of amplified genes isolated from a transformed mouse 3T3 cell line.
    Somat Cell Mol Genet. 1987 May;13(3):235-44 PMID: 3474784
  21. Homozygous deletion of the retinoblastoma gene in an acute lymphoblastic leukemia (T) cell line.
    Blood. 1990 Feb 1;75(3):730-5 PMID: 2404525
  22. p53 functions as a cell cycle control protein in osteosarcomas.
    Mol Cell Biol. 1990 Nov;10(11):5772-81 PMID: 2233717
  23. Growth suppression induced by wild-type p53 protein is accompanied by selective down-regulation of proliferating-cell nuclear antigen expression.
    Proc Natl Acad Sci U S A. 1991 Mar 1;88(5):1958-62 PMID: 1705714
  24. Tumorigenic potential associated with enhanced expression of a gene that is amplified in a mouse tumor cell line.
    EMBO J. 1991 Jun;10(6):1565-9 PMID: 2026149
  25. Mice deficient for p53 are developmentally normal but susceptible to spontaneous tumours.
    Nature. 1992 Mar 19;356(6366):215-21 PMID: 1552940
  26. Amplification of a gene encoding a p53-associated protein in human sarcomas.
    Nature. 1992 Jul 2;358(6381):80-3 PMID: 1614537
  27. 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
  28. Altered cell cycle arrest and gene amplification potential accompany loss of wild-type p53.
    Cell. 1992 Sep 18;70(6):923-35 PMID: 1356076
  29. Growth arrest induced by wild-type p53 protein blocks cells prior to or near the restriction point in late G1 phase.
    Proc Natl Acad Sci U S A. 1992 Oct 1;89(19):9210-4 PMID: 1409626
  30. MDM2 gene amplification in metastatic osteosarcoma.
    Cancer Res. 1993 Jan 1;53(1):16-8 PMID: 8416741
  31. The mdm-2 oncogene can overcome wild-type p53 suppression of transformed cell growth.
    Mol Cell Biol. 1993 Jan;13(1):301-6 PMID: 8417333
  32. mdm2 expression is induced by wild type p53 activity.
    EMBO J. 1993 Feb;12(2):461-8 PMID: 8440237
  33. p53 Mutation and MDM2 amplification in human soft tissue sarcomas.
    Cancer Res. 1993 May 15;53(10 Suppl):2231-4 PMID: 8387391
  34. Amplification and overexpression of the MDM2 gene in a subset of human malignant gliomas without p53 mutations.
    Cancer Res. 1993 Jun 15;53(12):2736-9 PMID: 8504413
  35. The p53-mdm-2 autoregulatory feedback loop.
    Genes Dev. 1993 Jul;7(7A):1126-32 PMID: 8319905
  36. The p53-binding protein MDM2 gene is differentially expressed in human breast carcinoma.
    Cancer Res. 1993 Jul 15;53(14):3226-8 PMID: 8324731
  37. Cell cycle regulation of gene amplification.
    Cold Spring Harb Symp Quant Biol. 1993;58:655-67 PMID: 7956082
  38. DNA damage triggers a prolonged p53-dependent G1 arrest and long-term induction of Cip1 in normal human fibroblasts.
    Genes Dev. 1994 Nov 1;8(21):2540-51 PMID: 7958916
  39. Evidence for a second cell cycle block at G2/M by p53.
    Oncogene. 1995 Jan 5;10(1):109-15 PMID: 7529916
  40. Accumulation of wild-type p53 protein upon gamma-irradiation induces a G2 arrest-dependent immunoglobulin kappa light chain gene expression.
    EMBO J. 1995 Apr 3;14(7):1392-401 PMID: 7729417
  41. A mutant p53 transgene accelerates tumour development in heterozygous but not nullizygous p53-deficient mice.
    Nat Genet. 1995 Mar;9(3):305-11 PMID: 7773294
  42. Stimulation of E2F1/DP1 transcriptional activity by MDM2 oncoprotein.
    Nature. 1995 Jun 22;375(6533):691-4 PMID: 7791903
  43. In vitro growth characteristics of embryo fibroblasts isolated from p53-deficient mice.
    Oncogene. 1993 Sep;8(9):2457-67 PMID: 8103211
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
1996-11-26
Pages
14106-11
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC19502
Subset
IM
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: [email protected]