XEDAR as a putative colorectal tumor suppressor that mediates p53-regulated anoikis pathway

C Tanikawa1, Y Furukawa, N Yoshida

  • 1Laboratory of Molecular Medicine, Human Genome Center, The University of Tokyo, Tokyo, Japan.

Oncogene
|June 23, 2009
PubMed

Insights

X-linked ectodermal dysplasia receptor (XEDAR) is a novel p53 target crucial in colorectal cancer. Suppressed XEDAR expression, due to p53 mutations or epigenetic changes, promotes tumor invasion and apoptosis resistance.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Genetics

Background:

  • Colorectal cancers with p53 mutations exhibit invasive properties, but the mechanisms remain unclear.
  • Understanding the role of p53 in colorectal carcinogenesis is critical for developing targeted therapies.

Purpose of the Study:

  • Identify novel p53 targets involved in colorectal cancer.
  • Investigate the role of X-linked ectodermal dysplasia receptor (XEDAR) in colorectal carcinogenesis.

Main Methods:

  • Genome-wide expression profile screening of p53-introduced cells and cancer tissues.
  • Analysis of p53-binding sites within the XEDAR gene.
  • Correlation analysis of XEDAR expression with p53 mutations in various cancer cell lines.
  • Assessment of XEDAR promoter hypermethylation in colorectal cancer.
  • Investigation of XEDAR's interaction with FAS and regulation of FAK.

Main Results:

  • X-linked ectodermal dysplasia receptor (XEDAR) was identified as a novel p53 target gene.
  • p53 upregulates XEDAR expression via binding sites in intron 1.
  • Decreased XEDAR expression correlates with p53 mutations in breast and lung cancer cell lines.
  • XEDAR promoter hypermethylation and p53 mutations lead to suppressed XEDAR expression in colorectal cancers.
  • XEDAR interacts with FAS, accumulates FAS protein, and negatively regulates FAK, impacting cell adhesion and apoptosis.

Conclusions:

  • XEDAR acts as a tumor suppressor in colorectal cancer.
  • Suppression of XEDAR promotes malignant transformation and tumor progression by affecting apoptosis and anoikis.
  • Targeting XEDAR or its regulatory pathways may offer therapeutic strategies for colorectal cancer.

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