Gene expression profiling of mouse p53-deficient epidermal carcinoma defines molecular determinants of human cancer

Ramón García-Escudero1, Ana B Martínez-Cruz, Mirentxu Santos

  • 1Molecular Oncology Unit, Division of Biomedicine, CIEMAT, Ave, Complutense 22, E-28040 Madrid, Spain. ramon.garcia@ciemat.es

Molecular Cancer
|July 16, 2010
PubMed
Abstract

Insights

Mouse models with Trp53 gene ablation develop aggressive tumors, mirroring human cancers. These models show promise for identifying cancer biomarkers and testing therapies for aggressive tumors with p53 alterations.

Area of Science:

  • Oncology
  • Genetics
  • Cancer Biology

Background:

  • Epidermal specific ablation of the Trp53 gene in mice induces aggressive tumors.
  • Simultaneous ablation of the Rb gene accelerates tumor development in these mouse models.
  • These mouse models recapitulate molecular features of aggressive human cancers with p53 pathway alterations.

Purpose of the Study:

  • To evaluate the utility of Trp53-deficient mouse models in cancer research.
  • To identify potential biomarkers for aggressive human tumors.
  • To assess the suitability of these models for preclinical therapy testing.

Main Methods:

  • Gene expression microarray analysis of mouse tumor samples.
  • Cross-species comparison and meta-analytical approaches.
  • Validation of candidate genes (AURKA, UBE2C) in human cancers.

Main Results:

  • Mouse tumors exhibit increased expression of cell cycle and chromosomal instability genes.
  • Tumors are enriched in human embryonic stem cell gene signatures, similar to aggressive human cancers.
  • A 20-gene signature overexpressed in mouse tumors identifies poor-outcome human cancers across multiple tissues.
  • AURKA and UBE2C validated as potential malignancy biomarkers in human breast and cervical cancers.

Conclusions:

  • Trp53-deficient mouse models are valuable preclinical tools for biomarker discovery.
  • These models can be used to test targeted therapies for aggressive human tumors.
  • The identified gene signature and biomarkers hold potential for clinical application in p53-mutated or inactivated cancers.