Home LiteratureArticle Details
PMID: 17710407 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Review

p53 and retinoblastoma pathways in bladder cancer.

World journal of urology ·Vol. 25 ·No. 6 ·2007-12-00 ·Pages 563-71

Mitra AP, Birkhahn M, Cote RJ

Abstract

A majority of the aggressive, invasive bladder carcinomas have alterations in the p53 and retinoblastoma genes and pathways. Examination of the alterations in the molecules in these pathways that regulate the cell cycle and their effects on the prognosis of bladder cancer are areas of active research. While defects in the p53-Mdm2-p14 axis have been implicated in urothelial cancer, perturbations in the cyclin-dependent kinases and their inhibitors have also been extensively studied in this context. Genetic alterations of the retinoblastoma gene and aberrant post-translational modifications of its protein have also been incriminated in invasive bladder cancer. This article reviews the individual prognostic roles of alterations in these molecules in the context of bladder cancer. Additionally, we review findings from recent studies that are attempting to analyze these markers in combination in an effort to construct molecular panels that can serve as more robust outcome predictors. More importantly, alterations in these molecules are now becoming enticing targets for novel therapeutics. We also review some of these agents that can restore the tumor cells' altered homeostatic mechanisms, thereby having potential in transitional cell carcinoma therapy. Future management of bladder cancer will employ validated marker panels for outcome prediction, and novel genetic and pharmacologic agents that will be able to target molecular alterations in individual tumors based on their respective profiles.

MeSH Terms
Antineoplastic Agents/therapeutic use Biomarkers, Tumor Carcinoma/drug therapy,genetics,physiopathology Cell Cycle Proteins/genetics,physiology Gene Expression Regulation, Neoplastic/physiology Humans Mutation Prognosis Proteomics Retinoblastoma Protein/genetics,physiology Signal Transduction Tumor Suppressor Protein p53/genetics,physiology Urinary Bladder Neoplasms/drug therapy,genetics,physiopathology
Chemicals
Antineoplastic Agents Biomarkers, Tumor Cell Cycle Proteins Retinoblastoma Protein Tumor Suppressor Protein p53
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Mitra Anirban P
Department of Pathology, University of Southern California Keck School of Medicine, Los Angeles, CA 90033, USA.
Birkhahn Marc
Cote Richard J
References (81)
81 references, click to expand
  1. Retinoblastoma: a prototypic hereditary neoplasm.
    Semin Oncol. 1978 Mar;5(1):57-60 PMID: 635597
  2. Therapeutic approaches to bladder cancer: identifying targets and mechanisms.
    Crit Rev Oncol Hematol. 2003 Jun 27;46 Suppl:S67-83 PMID: 12850529
  3. Mutation and cancer: statistical study of retinoblastoma.
    Proc Natl Acad Sci U S A. 1971 Apr;68(4):820-3 PMID: 5279523
  4. Prediction of progression in pTa and pT1 bladder carcinomas with p53, p16 and pRb.
    Br J Cancer. 2004 Aug 2;91(3):552-7 PMID: 15226775
  5. Differential expression of cell cycle regulators in phenotypic variants of transgenically induced bladder tumors: implications for tumor behavior.
    Cancer Res. 2005 Feb 15;65(4):1150-7 PMID: 15734997
  6. Loss of p27Kip1 enhances tumor progression in chronic hepatocyte injury-induced liver tumorigenesis with widely ranging effects on Cdk2 or Cdc2 activation.
    Carcinogenesis. 2007 Sep;28(9):1859-66 PMID: 17434927
  7. Decreasing of p27(Kip1)and cyclin E protein levels is associated with progression from superficial into invasive bladder cancer.
    Br J Cancer. 2001 May 4;84(9):1242-51 PMID: 11336477
  8. p53 and RB expression predict progression in T1 bladder cancer.
    Clin Cancer Res. 1998 Apr;4(4):829-34 PMID: 9563875
  9. T antigen is bound to a host protein in SV40-transformed cells.
    Nature. 1979 Mar 15;278(5701):261-3 PMID: 218111
  10. Combined effects of p53, p21, and pRb expression in the progression of bladder transitional cell carcinoma.
    J Clin Oncol. 2004 Mar 15;22(6):1007-13 PMID: 14981105
  11. Detection of a transformation-related antigen in chemically induced sarcomas and other transformed cells of the mouse.
    Proc Natl Acad Sci U S A. 1979 May;76(5):2420-4 PMID: 221923
  12. Hyperphosphorylation of pRb: a mechanism for RB tumour suppressor pathway inactivation in bladder cancer.
    J Pathol. 2004 Jul;203(3):762-70 PMID: 15221935
  13. Loss of heterozygosity at the RB locus is frequent and correlates with muscle invasion in bladder carcinoma.
    Oncogene. 1991 Dec;6(12):2305-9 PMID: 1766677
  14. Regulation of p27 by S-phase kinase-associated protein 2 is associated with aggressiveness in non-small-cell lung cancer.
    J Clin Oncol. 2004 Oct 15;22(20):4165-73 PMID: 15483027
  15. Phase i study of intravesical vaccinia virus as a vector for gene therapy of bladder cancer.
    J Urol. 2001 Oct;166(4):1291-5 PMID: 11547060
  16. Molecular staging of bladder cancer.
    BJU Int. 2005 Jul;96(1):7-12 PMID: 15963111
  17. Gene therapy for bladder cancer.
    World J Urol. 2000 Apr;18(2):148-51 PMID: 10854151
  18. Cyclin D1 expression in transitional cell carcinoma of the bladder: correlation with p53, waf1, pRb and Ki67.
    Br J Cancer. 2001 Jan;84(2):270-5 PMID: 11161387
  19. FGFR3 and TP53 gene mutations define two distinct pathways in urothelial cell carcinoma of the bladder.
    Cancer Res. 2003 Dec 1;63(23):8108-12 PMID: 14678961
  20. The cell cycle: a review.
    Vet Pathol. 1998 Nov;35(6):461-78 PMID: 9823588
  21. Altered cell cycle arrest and gene amplification potential accompany loss of wild-type p53.
    Cell. 1992 Sep 18;70(6):923-35 PMID: 1356076
  22. G1 arrest and down-regulation of cyclin E/cyclin-dependent kinase 2 by the protein kinase inhibitor staurosporine are dependent on the retinoblastoma protein in the bladder carcinoma cell line 5637.
    Proc Natl Acad Sci U S A. 1996 Jun 11;93(12):5941-6 PMID: 8650198
  23. Vaccinia virus mediated p53 gene therapy for bladder cancer in an orthotopic murine model.
    J Urol. 2005 Feb;173(2):604-9 PMID: 15643273
  24. Restoration of the tumor suppressor function to mutant p53 by a low-molecular-weight compound.
    Nat Med. 2002 Mar;8(3):282-8 PMID: 11875500
  25. Successful adenovirus-mediated wild-type p53 gene transfer in patients with bladder cancer by intravesical vector instillation.
    J Clin Oncol. 2002 Feb 15;20(4):957-65 PMID: 11844817
  26. Molecular pathways in invasive bladder cancer: new insights into mechanisms, progression, and target identification.
    J Clin Oncol. 2006 Dec 10;24(35):5552-64 PMID: 17158541
  27. WAF1, a potential mediator of p53 tumor suppression.
    Cell. 1993 Nov 19;75(4):817-25 PMID: 8242752
  28. Genetic alterations and biological pathways in human bladder cancer pathogenesis.
    Urol Oncol. 2000 Sep 1;5(5):191-203 PMID: 10973707
  29. Gene expression profiling of noninvasive primary urothelial tumours using microarrays.
    Br J Cancer. 2005 Nov 14;93(10):1182-90 PMID: 16265353
  30. Allelic loss of chromosome 17p distinguishes high grade from low grade transitional cell carcinomas of the bladder.
    Cancer Res. 1990 Nov 1;50(21):7081-3 PMID: 2208176
  31. A comparison of BTA stat, hemoglobin dipstick, telomerase and Vysis UroVysion assays for the detection of urothelial carcinoma in urine.
    J Urol. 2002 May;167(5):2001-6 PMID: 11956427
  32. 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
  33. Point mutational inactivation of the retinoblastoma antioncogene.
    Science. 1989 Feb 17;243(4893):937-40 PMID: 2521957
  34. Effect of p21WAF1/CIP1 expression on tumor progression in bladder cancer.
    J Natl Cancer Inst. 1998 Jul 15;90(14):1072-9 PMID: 9672255
  35. Cyclin-dependent kinase inhibitor P27(KIP1) is expressed preferentially in early stages of urothelial carcinoma.
    Urology. 2000 Oct 1;56(4):689-95 PMID: 11018640
  36. Retinoblastoma gene mutations in primary human bladder cancer.
    Br J Cancer. 1995 Apr;71(4):831-5 PMID: 7710951
  37. Cooperative effect of cell-cycle regulators expression on bladder cancer development and biologic aggressiveness.
    Mod Pathol. 2007 Apr;20(4):445-59 PMID: 17384651
  38. The p53 proto-oncogene can act as a suppressor of transformation.
    Cell. 1989 Jun 30;57(7):1083-93 PMID: 2525423
  39. The p53-mdm-2 autoregulatory feedback loop.
    Genes Dev. 1993 Jul;7(7A):1126-32 PMID: 8319905
  40. Small-molecule cyclin-dependent kinase modulators.
    Oncogene. 2003 Sep 29;22(42):6609-20 PMID: 14528286
  41. Impact of alterations affecting the p53 pathway in bladder cancer on clinical outcome, assessed by conventional and array-based methods.
    Clin Cancer Res. 2002 Jan;8(1):171-9 PMID: 11801555
  42. Altered expression of retinoblastoma protein and known prognostic variables in locally advanced bladder cancer.
    J Natl Cancer Inst. 1992 Aug 19;84(16):1256-61 PMID: 1640485
  43. The E2F transcription factor is a cellular target for the RB protein.
    Cell. 1991 Jun 14;65(6):1053-61 PMID: 1828392
  44. The retinoblastoma gene functions as a growth and tumor suppressor in human bladder carcinoma cells.
    Proc Natl Acad Sci U S A. 1991 Jun 15;88(12):5257-61 PMID: 2052605
  45. Detecting homozygous deletions in the CDKN2A(p16(INK4a))/ARF(p14(ARF)) gene in urinary bladder cancer using real-time quantitative PCR.
    Clin Cancer Res. 2003 Jan;9(1):235-42 PMID: 12538475
  46. Uncoupling of S phase and mitosis induced by anticancer agents in cells lacking p21.
    Nature. 1996 Jun 20;381(6584):713-6 PMID: 8649519
  47. Novel small molecule cyclin-dependent kinases modulators in human clinical trials.
    Cancer Biol Ther. 2003 Jul-Aug;2(4 Suppl 1):S84-95 PMID: 14508085
  48. Requirement of p27Kip1 for restriction point control of the fibroblast cell cycle.
    Science. 1996 May 10;272(5263):877-80 PMID: 8629023
  49. Radical cystectomy in the treatment of invasive bladder cancer: long-term results in 1,054 patients.
    J Clin Oncol. 2001 Feb 1;19(3):666-75 PMID: 11157016
  50. The use of genetic programming in the analysis of quantitative gene expression profiles for identification of nodal status in bladder cancer.
    BMC Cancer. 2006 Jun 16;6:159 PMID: 16780590
  51. Biomarker profiling for cancer diagnosis, prognosis and therapeutic management.
    Natl Med J India. 2005 Nov-Dec;18(6):304-12 PMID: 16483031
  52. Molecular genetic alterations of chromosome 17 and p53 nuclear overexpression in human bladder cancer.
    Diagn Mol Pathol. 1993 Mar;2(1):4-13 PMID: 7904525
  53. Molecular determinants of outcome in bladder cancer.
    Cancer J Sci Am. 1999 Jan-Feb;5(1):2-15 PMID: 10188054
  54. PRIMA-1(MET) synergizes with cisplatin to induce tumor cell apoptosis.
    Oncogene. 2005 May 12;24(21):3484-91 PMID: 15735745
  55. Altered expression of the retinoblastoma gene product: prognostic indicator in bladder cancer.
    J Natl Cancer Inst. 1992 Aug 19;84(16):1251-6 PMID: 1640484
  56. Accumulation of nuclear p53 and tumor progression in bladder cancer.
    N Engl J Med. 1994 Nov 10;331(19):1259-64 PMID: 7935683
  57. Repeated intravesical instillations of an adenoviral vector in patients with locally advanced bladder cancer: a phase I study of p53 gene therapy.
    J Clin Oncol. 2003 Jun 15;21(12):2247-53 PMID: 12805322
  58. Correlation of cyclin D1 and E1 expression with bladder cancer presence, invasion, progression, and metastasis.
    Hum Pathol. 2006 Dec;37(12):1568-76 PMID: 16949911
  59. Role of Ha-ras activation in superficial papillary pathway of urothelial tumor formation.
    Oncogene. 2001 Apr 12;20(16):1973-80 PMID: 11360181
  60. Chromosome 17 deletions and p53 gene mutations in colorectal carcinomas.
    Science. 1989 Apr 14;244(4901):217-21 PMID: 2649981
  61. Elevated and absent pRb expression is associated with bladder cancer progression and has cooperative effects with p53.
    Cancer Res. 1998 Mar 15;58(6):1090-4 PMID: 9515785
  62. Adenoviral-p53 gene transfer to orthotopic and peritoneal murine bladder cancer.
    J Urol. 1996 Feb;155(2):753-6 PMID: 8558719
  63. Deletions of the INK4A gene in superficial bladder tumors. Association with recurrence.
    Am J Pathol. 1999 Jul;155(1):105-13 PMID: 10393843
  64. Cloning of p27Kip1, a cyclin-dependent kinase inhibitor and a potential mediator of extracellular antimitogenic signals.
    Cell. 1994 Jul 15;78(1):59-66 PMID: 8033212
  65. Enhanced tumor suppressor gene therapy via replication-deficient adenovirus vectors expressing an N-terminal truncated retinoblastoma protein.
    Cancer Res. 1996 May 15;56(10):2245-9 PMID: 8625292
  66. p53 nuclear protein accumulation correlates with mutations in the p53 gene, tumor grade, and stage in bladder cancer.
    Am J Pathol. 1993 Nov;143(5):1389-97 PMID: 7901994
  67. Two molecular pathways to transitional cell carcinoma of the bladder.
    Cancer Res. 1994 Feb 1;54(3):784-8 PMID: 8306342
  68. Amplification pattern of 12q13-q15 genes (MDM2, CDK4, GLI) in urinary bladder cancer.
    Oncogene. 2002 Apr 11;21(16):2476-83 PMID: 11971182
  69. Immunohistochemical demonstration of cyclin D1 in bladder cancers as an inverse indicator of invasiveness but not an independent prognostic factor.
    Int J Urol. 2000 Oct;7(10):366-72 PMID: 11144504
  70. Characterization of a 54K dalton cellular SV40 tumor antigen present in SV40-transformed cells and uninfected embryonal carcinoma cells.
    Cell. 1979 May;17(1):43-52 PMID: 222475
  71. Frequent association of p53 gene mutation in invasive bladder cancer.
    Cancer Res. 1992 Mar 15;52(6):1393-8 PMID: 1540947
  72. Adenoviral p53 gene transfer in human bladder cancer cell lines: cytotoxicity and synergy with cisplatin.
    Urol Oncol. 2003 Nov-Dec;21(6):456-62 PMID: 14693272
  73. p53, p21, pRB, and p16 expression predict clinical outcome in cystectomy with bladder cancer.
    J Clin Oncol. 2004 Mar 15;22(6):1014-24 PMID: 14981102
  74. p53 and treatment of bladder cancer.
    Nature. 1997 Jan 9;385(6612):123-5 PMID: 8990112
  75. Adenoviral-mediated retinoblastoma 94 produces rapid telomere erosion, chromosomal crisis, and caspase-dependent apoptosis in bladder cancer and immortalized human urothelial cells but not in normal urothelial cells.
    Cancer Res. 2003 Feb 15;63(4):760-5 PMID: 12591722
  76. Frequent inactivation of the retinoblastoma anti-oncogene is restricted to a subset of human tumor cells.
    Proc Natl Acad Sci U S A. 1990 Apr;87(7):2775-9 PMID: 2181449
  77. Molecular biology of bladder cancer: prognostic and clinical implications.
    Clin Genitourin Cancer. 2006 Jun;5(1):67-77 PMID: 16859582
  78. Cancer statistics, 2007.
    CA Cancer J Clin. 2007 Jan-Feb;57(1):43-66 PMID: 17237035
  79. Loss of P27Kip1 expression correlates with tumor grade and with reduced disease-free survival in primary superficial bladder cancers.
    Cancer Res. 1999 Jul 1;59(13):3245-50 PMID: 10397272
  80. The predictive value of p53, p27(kip1), and alpha-catenin for progression in superficial bladder carcinoma.
    Eur Urol. 2006 Jul;50(1):76-82 PMID: 16413663
  81. Association of p27Kip1 levels with recurrence and survival in patients with stage C prostate carcinoma.
    J Natl Cancer Inst. 1998 Jun 17;90(12):916-20 PMID: 9637141
Article Info
Journal
World journal of urology
Abbr.
World J Urol
ISSN
0724-4983
Published
2007-12-00
Epub
2007-00-21
Pages
563-71
Language
English
Region
Germany
NLM ID
8307716
Subset
IM
Grants
NCI NIH HHS · CA-103455 · United States
NCI NIH HHS · CA-14089 · United States
NCI NIH HHS · CA-70903 · United States
NCI NIH HHS · CA-71921 · United States
NCI NIH HHS · CA-86871 · 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